Prepared in cooperation with the Hopi Tribe
Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona
Scientific Investigations Report 2025–5038 U.S. Department of the Interior U.S. Geological Survey
Cover. Chevelon Canyon, about 7 miles upstream from the confluence of Chevelon Creek and the Little Colorado River, Arizona. Coconino sandstone is exposed. Photograph by Jon Mason, U.S. Geological Survey, June 27, 2020.
Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona By Casey J.R. Jones
Prepared in cooperation with the Hopi Tribe
Scientific Investigations Report 2025–5038
U.S. Department of the Interior U.S. Geological Survey
U.S. Geological Survey, Reston, Virginia: 2025
For more information on the USGS—the Federal source for science about the Earth, its natural and living resources, natural hazards, and the environment—visit https://www.usgs.gov or call 1–888–392–8545. For an overview of USGS information products, including maps, imagery, and publications, visit https://store.usgs.gov/ or contact the store at 1–888–275–8747. Any use of trade, firm, or product names is for descriptive purposes only and does not imply endorsement by the U.S. Government. Although this information product, for the most part, is in the public domain, it also may contain copyrighted materials as noted in the text. Permission to reproduce copyrighted items must be secured from the copyright owner. Suggested citation: Jones, C.J.R., 2025, Assessment of water chemistry of the Coconino aquifer in northeastern Arizona: U.S. Geological Survey Scientific Investigations Report 2025–5038, 30 p., https://doi.org/10.3133/sir20255038. ISSN 2328-0328 (online)
iii
Acknowledgments The author would like to acknowledge Celeste Journey, U.S. Geological Survey hydrologist Emeritus, for her statistical expertise. Jon Mason, U.S. Geological Survey hydrologist Emeritus, proposed the initial study. The author also would like to acknowledge the many women and men who have sampled and analyzed groundwater in the area since 1933.
v
Contents Acknowledgments����������������������������������������������������������������������������������������������������������������������������������������iii Abstract�����������������������������������������������������������������������������������������������������������������������������������������������������������1 Introduction����������������������������������������������������������������������������������������������������������������������������������������������������1 Purpose and Scope������������������������������������������������������������������������������������������������������������������������������3 Previous Investigations�����������������������������������������������������������������������������������������������������������������������3 Description of Study Area����������������������������������������������������������������������������������������������������������������������������3 Geology���������������������������������������������������������������������������������������������������������������������������������������������������3 Evaporites����������������������������������������������������������������������������������������������������������������������������������������������5 Groundwater Movement���������������������������������������������������������������������������������������������������������������������7 Approach and Methods��������������������������������������������������������������������������������������������������������������������������������7 Data Compilation�����������������������������������������������������������������������������������������������������������������������������������7 Quality Assurance������������������������������������������������������������������������������������������������������������������������������11 Graphical and Statistical Analysis���������������������������������������������������������������������������������������������������11 Results�����������������������������������������������������������������������������������������������������������������������������������������������������������12 Discussion�����������������������������������������������������������������������������������������������������������������������������������������������������16 Potential for Use as Potable Water�������������������������������������������������������������������������������������������������17 Conclusions��������������������������������������������������������������������������������������������������������������������������������������������������17 References Cited�����������������������������������������������������������������������������������������������������������������������������������������28
Figures 1.
2. 3.
4. 5.
6. 7. 8. 9.
Map of the approximate extent of the Coconino aquifer, boundaries of the Hopi Reservation and Navajo Nation, and the locations of the Coconino aquifer groundwater sites included in this study, northeastern Arizona������������������������������������������2 Generalized stratigraphic section of rock units in the study area and surrounding areas, northeastern Arizona��������������������������������������������������������������������������������4 Map of the approximate extent of halite, the Holbrook Anticline, and three surface solution-collapse features—McCauley Sinks, Richard Lake, and an area referred to as “The Sinks,” in northeastern Arizona�����������������������������������������������������6 Aerial photograph of McCauley Sinks as seen looking north�����������������������������������������������6 Graph showing distribution of the concentration of total dissolved solids in Coconino aquifer groundwater samples from 117 sites in the northeastern Arizona study area����������������������������������������������������������������������������������������������������������������������12 Interpolated total dissolved solids and major ion chemistry distribution in the Coconino aquifer in the northeastern Arizona study area���������������������������������������������������13 Trilinear diagram and water-type classification of groundwater samples in the Coconino aquifer in the study area������������������������������������������������������������������������������������������14 Groundwater types of sites in the Coconino aquifer in the study area, based on the ratios of major ions present�����������������������������������������������������������������������������������������������15 Principal component analysis of major ions in the groundwater sites in the Coconino aquifer in the study area������������������������������������������������������������������������������������������16
vi
Tables 1.
Well and spring locations and selected construction data for Coconino aquifer groundwater sites included in this study, northeastern Arizona������������������������������������������8 2. Selected field parameters and water-chemistry data for Coconino aquifer groundwater sites included in this study, northeastern Arizona����������������������������������������18 3. Ranges of constituents in the study area and corresponding Environmental Protection Agency maximum contaminant levels, treatment techniques, and (or) secondary maximum contaminant levels, Coconino aquifer, northeastern Arizona�����������������������������������������������������������������������������������������������������������������16
Conversion Factors U.S. customary units to International System of Units
Multiply
By
To obtain
Length inch (in.)
2.54
centimeter (cm)
inch (in.)
25.4
millimeter (mm)
foot (ft)
0.3048
meter (m)
mile (mi)
1.609
kilometer (km)
Area square mile (mi2) square mile (mi2)
259.0 2.590
hectare (ha) square kilometer (km2)
Volume cubic foot (ft3)
28.32
cubic decimeter (dm3)
cubic foot (ft3)
0.02832
cubic meter (m3)
Flow rate foot per year (ft/yr)
0.3048
meter per year (m/yr)
cubic foot per second (ft3/s)
0.02832
cubic meter per second (m3/s)
inch per year (in/yr)
25.4
millimeter per year (mm/yr)
vii
International System of Units to U.S. customary units
Multiply
By
To obtain
Length centimeter (cm)
0.3937
inch (in.)
millimeter (mm)
0.03937
inch (in.)
meter (m)
3.281
foot (ft)
kilometer (km)
0.6214
mile (mi)
Area hectare (ha)
0.003861
square mile (mi2)
square kilometer (km2)
0.3861
square mile (mi2)
Volume cubic decimeter (dm3)
0.03531
cubic foot (ft3)
cubic meter (m3)
35.31
cubic foot (ft3)
Flow rate meter per year (m/yr)
3.281
foot per year ft/yr)
cubic meter per second (m3/s)
35.31
cubic foot per second (ft3/s)
millimeter per year (mm/yr)
0.03937
inch per year (in/yr)
Temperature in degrees Fahrenheit (°F) may be converted to degrees Celsius (°C) as follows: °C = (°F – 32) / 1.8. Temperature in degrees Celsius (°C) may be converted to degrees Fahrenheit (°F) as follows: °F = (1.8 × °C) + 32.
Datums Vertical coordinate information is referenced to the North American Vertical Datum of 1988 (NAVD 88). Horizontal coordinate information is referenced to the North American Datum of 1983 (NAD 83).
Supplemental Information Specific conductance is given in microsiemens per centimeter at 25 degrees Celsius (µS/cm at 25 °C). Concentrations of chemical constituents in water are given in either milligrams per liter (mg/L) or micrograms per liter (µg/L).
Abbreviations EPA
U.S. Environmental Protection Agency
MCL
maximum contaminant level
NWIS
U.S. Geological Survey National Water Information System
PCA
principal component analysis
SMCL
secondary maximum contaminant level
TDS
total dissolved solids
USGS
U.S. Geological Survey
Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona By Casey J.R. Jones
Abstract The Coconino aquifer was investigated as a potential groundwater resource for the Hopi Tribe and Navajo Nation in northeastern Arizona. Basic groundwater chemistry, including major ions, total dissolved solids, and selected trace metal concentrations, are presented and analyzed to characterize the Coconino aquifer. The geochemical compositions of groundwater are associated with changes in geology and groundwater movement and are compared to drinking-water standards to determine suitable areas for potential groundwater resource development. Dissolved-solids concentrations in much of the Coconino aquifer water were higher than the U.S. Environmental Protection Agency’s secondary drinking-water standard of 500 milligrams per liter (mg/L) due to a buried halite body in the southeastern part of the study area. However, trace metal concentrations were generally low. Groundwater may need to be treated for high dissolved-solids concentrations before it is suitable for use as a resource for the Hopi Tribe and Navajo Nation.
Introduction The Coconino aquifer is a multiple-aquifer system that extends throughout northeastern Arizona, northwestern New Mexico, southwestern Colorado, and southeastern Utah (fig. 1). In northern Arizona, the Coconino aquifer underlies most of the Navajo Nation and the entirety of the Hopi Reservation. Despite its substantial area, wells drilled into the Coconino aquifer are most common in the southern and eastern extent of the aquifer. The Coconino aquifer is deeply buried elsewhere, likely buried to depths greater than 3,000 feet (ft) in some areas to the north. Total dissolved solids (TDS) concentrations are likely high in the Coconino aquifer water [greater than 2,000 milligrams per liter (mg/L)] in much of these areas (Bills and others, 2007). Shallower, more accessible aquifers overlie the Coconino aquifer in this region, including the Navajo aquifer, the primary water source for the Hopi Tribe and the southwestern Navajo Nation (Mason,
2021). Sustainable water resources for the Hopi Tribe and Navajo Nation are limited due to their location in an arid to semi-arid desert environment with minimal precipitation and groundwater recharge. However, as groundwater demand increases to keep up with population growth, the Coconino aquifer has the potential to serve as a source of water for a larger portion of the Hopi Tribe and Navajo Nation. Increased water production from the regional Coconino aquifer has the potential to provide greater water security to both Tribes. This report focuses on groundwater chemistry of the Coconino aquifer between Flagstaff, Arizona, and the area just east of Holbrook, Arizona, and from south of the Little Colorado River to the southern end of the Hopi Reservation (fig. 1). Coconino aquifer water users in the study area include the southwestern part of the Navajo Nation and the cities of Flagstaff, Winslow, and Holbrook (including their surrounding communities; Hart and others, 2002). Although previous studies and production from existing wells have shown that the Coconino aquifer can produce large quantities of water (for example, Mann, 1976), less has been done to examine the suitability of the water quality for development throughout the region. Water chemistry is extremely variable in this area, partially due to high dissolved solids from evaporite deposits near the base of the Coconino aquifer in the southeastern part of the study area (Cooley and others, 1969; Mann, 1976). The U.S. Environmental Protection Agency (EPA) has established non-mandatory secondary drinking-water standards of 500 mg/L for TDS. Above this level, water may taste bad and (or) cause staining and corrosion. However, potable drinking water generally has TDS concentrations of less than 3,000 mg/L (U.S. Environmental Protection Agency, 1987; Stanton and others, 2017). The EPA formally defined potential underground sources of drinking water as having a TDS concentration less than 10,000 mg/L (U.S. Environmental Protection Agency, 1987). Although TDS concentrations in some groundwater in the study area far exceed the EPA secondary maximum contaminant level (SMCL) of 500 mg/L, other areas show substantially lower dissolved-solids concentrations (Hoffmann and others, 2006; Bills and others, 2007).
2 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona 111°30'
111°
110°30'
110°
HOPI RESERVATION 35°30' 87 89
San Fran cis co
t t le
Wa s h
NAVAJO NATION RESERVATION
Color ado
ver Ri
Flagstaff
Li
40
77
35°
17
Winslow 40
re ek
r
ee
rC
C lon ve e Ch
COCONINO COUNTY NAVAJO COUNTY
YAVAPAI COUNTY
C lea
34°30' Base from U.S. Geological Survey digital data, various scales and dates; Web Mercator projection; World Geodetic System of 1984
lo r
87
o tle C Lit
k
Holbrook
ad
377
o Riv er
77
0 0
180
20 20
40 MILES 40 KILOMETERS
EXPLANATION
UTAH
Navajo Nation Reservation COLORADO
Hopi Reservation Coconino aquifer Wells and springs Coconino Sandstone well Coconino Sandstone spring
Map area
ARIZONA
Kaibab Formation well NEW MEXICO
Kaibab Formation spring Supai Formation well
Figure 1. Approximate extent of the Coconino aquifer, boundaries of the Hopi Reservation and Navajo Nation, and the locations of the Coconino aquifer groundwater sites included in this study, northeastern Arizona. Figure is modified from Robson and Banta (1995).
Description of Study Area 3 Besides TDS, other constituents, such as major cations and anions (calcium, magnesium, sodium, potassium, sulfate, chloride, and bicarbonate) and trace metals (arsenic, uranium, barium, lead, copper, and fluoride, among others), influence the suitability of groundwater for development. The U.S. Geological Survey (USGS), in cooperation with the Hopi Tribe, led this study to describe the basic groundwater chemistry of the Coconino aquifer. This effort provides information to identify potential areas for groundwater resource development.
Purpose and Scope The purpose of this report is to describe the basic groundwater chemistry of the Coconino aquifer along the Interstate-40 corridor between Flagstaff, Ariz., and the area just east of Holbrook, Arizona. Specifically, major ion, trace metal, and TDS concentrations are presented and analyzed to identify differing groundwater chemistry in association with changes in geology and groundwater movement, and to compare groundwater chemistry to drinking-water standards to determine suitable areas for potential groundwater-resource development.
Previous Investigations The hydrogeology and chemistry of the Coconino aquifer in the study area have been described in several previous studies. Darton (1910) compiled some of the first geologic data from the area between Kingman, Arizona, and Albuquerque, New Mexico, to explore groundwater prospects for the Atchison, Topeka, and Santa Fe Railway. Gregory (1916) described the geography, climate, surface water, and groundwater of the Navajo Nation and Hopi Reservations; the hydrogeology in this area was later expanded on by Cooley and others (1969). Harrell and Eckel (1939) presented a comprehensive groundwater study of the Holbrook area, including chemical analyses from 118 wells and springs. Bills and Flynn (2002) and Bills and others (2007) summarized the hydrogeology of the Coconino Plateau. Hart and others (2002) compiled existing Coconino aquifer data from the Little Colorado River Basin to produce a generalized groundwater budget. Hoffmann and others (2006) presented geological, hydrological, and chemical data from the Coconino aquifer near Leupp, Arizona, and Jones and Robinson (2021) presented groundwater levels and basic chemistry of the Coconino aquifer in northeastern Arizona. Evaporites in the study area also have been explored. Bahr (1962) described evaporite karst features on the Holbrook Anticline. Mann (1976) characterized Coconino aquifer water in southern Navajo County and produced an early delineation of the extent of salt beds. Neal and others (1998, 2013) and Rauzi (2000) described evaporite karst in the Holbrook sedimentary basin. Neal and Colpitts (1997)
and Neal and Johnson (2002) described specific Holbrook Basin karst expressions (Richard Lake and McCauley Sinks, respectively).
Description of Study Area The study area is within the Little Colorado River Basin in the southern part of the Colorado Plateau, specifically between Flagstaff, Arizona, and the area just east of Holbrook, Arizona, and from south of the Little Colorado River to the southern end of the Hopi Reservation (Fenneman and Johnson, 1946; fig. 1). Most of the topography is developed on nearly horizontal sedimentary rocks around 5,000 ft in elevation (Hart and others, 2002). The primary surface feature is the Little Colorado River, which parallels Interstate-40 and discharges into the Colorado River northwest of the study area. The Little Colorado River, along with its tributaries, flows through incised canyons in the Coconino Sandstone. Other local topographic relief is provided by folds and solution-collapse features. More detail will be provided on the solution-collapse features in the “Geology” section of this report. The climate in the study area is classified as arid to semi-arid (Bills and others, 2007). Average annual precipitation near Winslow was less than 8 inches (in.) from 1991 to 2020 (PRISM Climate Group, 2022). The months with the highest amount of rainfall, July–September, coincide with the North American monsoon (Adams and Comrie, 1997). Mean monthly temperature values from 1991 to 2020 near Winslow were highest in July and August at more than 75 degrees Fahrenheit, with the lowest temperatures in December and January at around 35 degrees Fahrenheit (PRISM Climate Group, 2022).
Geology The Coconino aquifer is named after the primary water-bearing rock unit within the aquifer, the Coconino Sandstone, but the saturated and hydraulically connected parts of the Kaibab Formation, the Toroweap Formation, the Schnebly Hill Formation, and the upper and middle part of the Supai Formation also constitute part of the Coconino aquifer in the study area (fig. 2; Bills and others, 2000; Bills and Flynn, 2002; Hart and others, 2002; Bills and others, 2007). The Supai Formation ranges in age from Pennsylvanian to Permian and consists of red siltstone and sandstone (Irwin and others, 1971; Blakey, 1990). Divided into three parts, only the upper and middle parts of the Supai Formation are hydraulically connected to the Coconino aquifer; the lower part of the Supai Formation acts as a confining layer for underlying groundwater in the Redwall-Muav aquifer (Bills and others, 2000).
4 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona
0–150
The Moenkopi Formation forms a confining layer where present
MOENKOPI FORMATION
Solution channels and caves
10–650
KAIBAB FORMATION
0–150
TOROWEAP FORMATION
300–960
COCONINO SANDSTONE
Coconino aquifer
Relative thickness, in feet
0–1,700
SCHNEBLY HILL FORMATION
UPPER PART OF SUPAI FORMATION
600–2,000
MIDDLE PART OF SUPAI FORMATION
LOWER PART OF SUPAI FORMATION
50–300
0–400 0–200
Supai Formation
Confining layer
Redwall-Muav aquifer
REDWALL LIMESTONE
TEMPLE BUTTE AND MARTIN FORMATIONS, UNDIVIDED MUAV LIMESTONE BRIGHT ANGEL SHALE TAPEATS SANDSTONE
GRANITOID AND METAMORPHIC ROCKS
Figure 2. Generalized stratigraphic section of rock units in the study area and surrounding areas, northeastern Arizona. Modified from Bills and others (2007, fig. 11). Muav Limestone and Bright Angel Shale refer to the Muav Limestone and Bright Angel Shale of the Tonto Group. Thickness ranges for the Tapeats Sandstone and Bright Angel Shale are not noted due to lack of data in the study area.
Description of Study Area 5 The Hermit Formation overlies the Supai Formation in some areas of northern Arizona. Consisting of red-brown siltstone and sandstone, the Hermit Formation is lithologically similar to the Supai Formation. In much of the study area, the boundary becomes unclear and the Hermit and Supai Formations are indistinguishable. For this reason, the Hermit Formation is usually omitted from stratigraphic columns in this area (Irwin and others, 1971; Blakey, 1990; Bills and others, 2000). The Permian Schnebly Hill Formation is an important Coconino-aquifer component in the Holbrook Basin, with a thickness as much as 1,700 ft (fig. 2; Blakey, 1990; Bills and others, 2000). The Schnebly Hill Formation is reddish brown to reddish orange and comprises sandstone, mudstone, limestone, and evaporites (Blakey, 1990). East of Holbrook, the Corduroy Member of the Schnebly Hill Formation contains halite and other evaporites of early Permian age as much as 650 ft thick (Blakey, 1990; Conway and Cook, 2013). When present, the Schnebly Hill Formation intertongues with the overlying Coconino Sandstone (Bills and others, 2000; Hoffmann and others, 2006). The Permian Coconino Sandstone is typically the main water-bearing unit of the aquifer (Hart and others, 2002). The Coconino Sandstone is a tan to white, crossbedded, quartz sandstone of eolian origin (Darton, 1910; Blakey, 1990). In Leupp, geologic logs indicate thicknesses from 300 to 960 ft (Hoffmann and others, 2006). Near Winslow, Coconino Sandstone thickness is about 800 ft (Mann, 1976). The Permian Toroweap Formation is only known to be present in the western part of the study area. Bills and others (2000; p. 26) describe the formation as beds of “carbonate sandstone, red beds, silty sandstone, siltstone, limestone, and thin layers of gypsum.” The formation is often indistinguishable from Coconino Sandstone, but according to Sorauf and Billingsley (1991), a distinction between the Toroweap Formation and the white, quartz sandstone of the Coconino Sandstone can be observed near Flagstaff to the west of the study area; where indistinct, the Toroweap Formation is often considered to be part of the Coconino Sandstone (Bills and others, 2000). The Permian Kaibab Formation is often expressed as a light-gray limestone from 10 to 650 ft thick. Sinkholes and depressions formed by dissolution are present on the surface, as well as fractures formed by jointing and faulting in the subsurface (Irwin and others, 1971; Bills and others, 2000). In parts of the study area where the Coconino aquifer is not exposed, the red to reddish-brown Triassic Moenkopi Formation overlies the aquifer (Mann, 1976). Consisting largely of mudstone and siltstone, the Moenkopi Formation acts as a confining layer when not heavily fractured. In some areas, the Moenkopi Formation can supply small amounts of water to wells (Cooley and others, 1969; Bills and others, 2000). North of the study area, the shallower Navajo, Dakota, and Toreva aquifers are present and often used for water supply (Mason, 2021).
Evaporites Beds of halite underlie about 3,500 mi2 in the southeastern part of the study area, with a maximum thickness near the center of an aggregate of 655 ft of salt in 1,500 ft of Schnebly Hill Formation strata (fig. 3). Close to the depositional center of the halite, a zone of potash covers about 600 mi2. The potash, consisting of sylvite, carnallite, and polyhalite, is nearly 40 ft thick and overlies the halite (Rauzi, 2000). To the south and southeast, halite transitions into gypsum and anhydrite and extends farther than the halite (Rauzi, 2000, pl. 2). Dissolution of evaporite beds by the movement of Coconino aquifer groundwater has led to numerous solution-collapse features in the study area. Solution-collapse features in evaporite rocks are developed similarly to those in limestone, but the time scale is shorter. Evaporites such as halite and gypsum can form karst features in a matter of days to years due to their high solubility. Evaporite karst features form near the outer edges of a salt deposit (Johnson, 1997). In the study area, the dissolution front is currently migrating to the northeast, and karst features are forming in real time (Bahr, 1962; Johnson, 1997; Neal and others, 1998). The Holbrook Anticline is present near the southwestern extent of halite, and the axis can be mapped at the surface for more than 60 miles (mi; fig. 3). The northern flank follows a regional dip of about 2 degrees. On the southern side, the regional dip is interrupted and the average dip is about 15 degrees, although some dips can be steeper. Numerous karst sinks are present on the southern flank (Bahr, 1962). More than 500 sinkholes, joints, compression ridges, and other solution-collapse features have been identified along the Holbrook Anticline and the parallel Dry Lake Syncline to the immediate southwest (Mann, 1976; Conway and Cook, 2013). The Holbrook Anticline is not expressed below the salt layer, which may suggest that dissolution is a factor of its formation (Neal and others, 1998). Just west of the Holbrook Anticline, near the western limits of evaporites of the Schnebly Hill Formation, McCauley Sinks provide a conspicuous karst surface expression (fig. 4). McCauley Sinks include about 50 sinkholes up to 50 meters (m) deep and 100 m in diameter. They appear in three semi-circular “rings” within a 3-kilometer (km) wide depression (Neal and Johnson, 2002). Along with several other, smaller depressions west of the Holbrook Anticline, these structures are related to the dissolution front of the halite and appear similar to breccia pipes on the Colorado Plateau (Neal and Johnson, 2002). However, where these other breccia pipes originate in the Mississippian Redwall Limestone and (or) the Cambrian Muav Limestone of the Tonto Group, the McCauley Sinks and Richard Lake likely originate due to collapse following salt dissolution in the Schnebly Hill Formation. Similar to other karst features in the area, pressure ridges following the general trend of the Holbrook Anticline are present near both structures (Neal and Johnson, 2002). To the southeast of the study location is an area known as “The Sinks,” which includes more than 250 sinkholes, joint fissures, and other collapse features also related to halite dissolution (Neal and others, 1998).
6 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona 111°30'
111°
110°30'
110°
109°30'
109°
EXPLANATION
35°30'
Coconino-aquifer boundary
Flagstaff
40
ARIZONA NEW MEXICO
Study area
Winslow
35°'
Approximate extent of halite Anticline
Holbrook
17
Richard Lake 34°30'
McCauley Sinks HO
LB
The Sinks
RO
OK
Map area
TIC
ARIZONA
Saint Johns
Snowflake
AN
NEW MEXICO
LIN
Payson
E Show Low
Base from U.S. Geological Survey digital data, various scales and dates; Web Mercator projection; World Geodetic System of 1984
0 0
25 25
50 MILES 50 KILOMETERS
Figure 3. Approximate extent of halite, the Holbrook Anticline, and three surface solution-collapse features—McCauley Sinks, Richard Lake, and an area referred to as “The Sinks,” in northeastern Arizona. Halite extent is from the U.S. Geological Survey (USGS) National Map (https://www.usgs.gov/programs/national-geospatial-program/national-map).
Chevelon Canyon
McCauley Sinks
Pressure ridges
Figure 4. McCauley Sinks as seen looking north. Chevelon Canyon is in the background of the photograph. Pressure ridges are present in the foreground of the photograph. Photograph by Jon Mason, U.S. Geological Survey, June 27, 2020.
Approach and Methods 7
Groundwater Movement Groundwater in the Coconino aquifer generally moves northward, parallel to the regional dip of the strata (Mann, 1976; Hart and others, 2002). Most recharge occurs as snowmelt near the Mogollon Rim to the south; rain events are often flashy and contribute to runoff (Mann, 1976). The Coconino aquifer is unconfined in most of the study area. To the north, the Moenkopi Formation creates confined conditions. The age of groundwater in the Coconino aquifer around Flagstaff in the eastern part of the study area has been estimated as modern to about 7,000 years (Bills and others, 2000). Well yields from Coconino aquifer wells inventoried by previous studies varied substantially in the study area, from a few gallons per minute to about 2,800 gallons per minute (Mann, 1976; Bills and others, 2000; Hoffmann and others, 2006). Although several factors affect well yields, including pump design and formation lithology, Bills and others (2000) suggested that the greatest effect on Coconino aquifer well efficiency probably is due to proximity to faults and fractures. Jones and Robinson (2021) discussed wells monitored as part of the USGS C-Aquifer Monitoring Program between Flagstaff and Holbrook, Arizona. They found that measured groundwater levels fluctuate seasonally, and suggested that infiltration from surface water from summer monsoon events and spring snowmelt have the potential to influence wells, as does higher rates of pumping in the summer months. Although some monitored wells have shown little change in groundwater levels (for example, USGS site number 351023111062002, near Leupp), others have shown decreasing water-level trends (for example, USGS site number 345023110111401, south of Holbrook, has decreased about 11 ft from 1969 to 2018; Jones and Robinson, 2021; U.S. Geological Survey, 2023).
Approach and Methods This report assesses the distribution of major ions, trace metals, and total dissolved solids in the Coconino aquifer. Data used in this report were limited to water-chemistry results from well and spring samples available in the USGS National Water Information System (NWIS) database (U.S. Geological Survey, 2023). No new samples were collected as part of this study. Results within this report provide a representation of the
groundwater resource in the Coconino aquifer area in relation to potential potable water based on major-ion chemistry, TDS, and selected trace elements.
Data Compilation The USGS NWIS database was queried to find existing groundwater sites (wells and springs) that had water-chemistry data associated with them. Those groundwater sites with wells screened-in or springs discharging from the Coconino aquifer and having major ion and (or) TDS data were selected for inclusion in this study. A total of 130 sites with samples dating from 1933 to 2008 were identified (fig. 1; table 1; U.S. Geological Survey, 2023). These sites were generally in proximity to the Little Colorado River and Interstate-40. Few wells are drilled into the Coconino aquifer in Hopi Tribal Lands or Navajo Nation north of Interstate-40. Some wells may be screened in multiple formations, and it is not always clear which unit(s) the well is producing from. The aquifer coded in NWIS is considered to be the producing unit for this study. Most wells used (118) were screened in the Coconino Sandstone (fig. 1). Additionally, four of the spring sites discharge from the Coconino Sandstone where it is exposed in canyon walls along Clear and Chevelon Creeks. Three wells and one spring are sourced by the Kaibab Formation in the western part of the study area. Four wells are screened in the Supai Formation. No wells or springs sourced from the Hermit, Toroweap, or Schnebly Hill Formations were present in NWIS in the study area. Numerous study sites have been sampled multiple times. When computing the median values from all sites for the parameters of pH, specific conductance, and total dissolved solids, the most recent values from each site were used. In three cases, the date when the most recent sample was collected had two samples collected; in those cases, the average value of the two samples was used in the statistical analysis. Additionally, there were 23 samples with estimated results for TDS that were used in the statistical analysis. When computing the water type for sites with multiple samples the most recent sample collected containing all the constituents necessary to compute water type was used.
8 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona Table 1. Well and spring locations and selected construction data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023). [ft, feet; bls, below land surface; N/A, not applicable; --, information not available]
USGS site number
USGS station name
Site type
Geologic formation well is completed in (or spring discharges from)
Well depth (ft bls)
342526110155501
A-18-20 30CCD
Well
Coconino Sandstone
145
343149110002701
A-13-22 10CCA
Well
Coconino Sandstone
260
343225110545001
A-13-13 01DDB2
Well
Coconino Sandstone
997
343239110340001
A-13-17 05CAA
Well
Coconino Sandstone
843
343314111183801
A-14-10 32DBD
Well
Coconino Sandstone
600
343423111194001
A-14-10 30ACA
Well
Coconino Sandstone
1,050
343438110155001
A-14-20 30CAA
Well
Coconino Sandstone
400
343640110353001
A-14-17 18BBB
Well
Coconino Sandstone
800
343756111154001
A-14-10 02ACB
Well
Kaibab Formation
420
343914110082601
A-15-21 32ACB
Well
Coconino Sandstone
430
343918110121301
A-15-21 36BCB
Well
Coconino Sandstone
340
343950110061201
A-15-21 27DBD
Well
Coconino Sandstone
816
344058111033101
A-15-12 15DDC
Well
Coconino Sandstone
780
344104110375201
A-15-16 15DDC
Well
Coconino Sandstone
900
344221110081801
A-15-21 08DDC
Well
Coconino Sandstone
400
344239109595701
A-15-22 10DBA
Well
Coconino Sandstone
300
344303111124301
A-15-11 05BDC
Well
Coconino Sandstone
800
344349110064201
A-15-21 03BAC1
Well
Coconino Sandstone
715
344407110171801
A-16-19 36CCB1
Well
Coconino Sandstone
800
344457110065001
A-16-21 27CCD
Well
Coconino Sandstone
635
344502110261601
A-16-18 28DCB
Well
Coconino Sandstone
750
344516110320301
A-16-17 27BCA
Well
Coconino Sandstone
815
344644110023301
A-16-22 17CDC
Well
Coconino Sandstone
160
344644110024201
A-16-22 17CCD
Well
Coconino Sandstone
450
344720109585001
A-16-22 14ADB
Well
Coconino Sandstone
309
344720110135201
A-16-20 16BAC
Well
Coconino Sandstone
450
344749111051901
A-16-12 09BBB
Well
Coconino Sandstone
1,000
344757110261201
A-16-18 09ACD1
Well
Supai Formation
620
344908110202901
A-16-19 04BBC
Well
Coconino Sandstone
328
345011110201101
A-17-19 28CCB
Well
Coconino Sandstone
280
345212110012901
A-17-22 17DDB
Well
Coconino Sandstone
240
345223110522301
A-17-14 17ADD
Well
Coconino Sandstone
600
345308110125301
A-17-20 10CAA3
Well
Coconino Sandstone
110
345316110170910
A-17-19 12CBD
Well
Coconino Sandstone
475
345320110144710
A-17-20 08BDB
Well
Coconino Sandstone
200
345340110193001
A-17-19 04DDC
Well
Coconino Sandstone
550
345344110165101
A-17-19 01CDA
Well
Coconino Sandstone
470
345345110175201
A-17-19 02DBC
Well
Supai Formation
495
345350111015501
A-18-12H35DAD
Well
Coconino Sandstone
680
345410110153201
A-17-20 06DBA
Well
Coconino Sandstone
325
345415110200801
A-17-19 04BDB
Well
Coconino Sandstone
430
Approach and Methods 9 Table 1. Well and spring locations and selected construction data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).—Continued [ft, feet; bls, below land surface; N/A, not applicable; --, information not available]
USGS site number
USGS station name
Site type
Geologic formation well is completed in (or spring discharges from)
Well depth (ft bls)
345425110562101
A-17-13 02BBA
Well
Coconino Sandstone
600
345444110192501
A-18-19 33DAD2
Well
Coconino Sandstone
410
345500110210301
A-18-19 32BDD
Well
Coconino Sandstone
500
345519110314201
A-18-17 34ABB
Spring
Coconino Sandstone
N/A
345548110480201
A-18-15 30BCC
Well
Coconino Sandstone
560
345653110394001
A-18-16 20AAD
Spring
Coconino Sandstone
N/A
345707110552001
A-18-13 13CCD
Well
Coconino Sandstone
475
345730110483001
A-18-14 13ACC
Well
Coconino Sandstone
1,000
345730110485001
A-18-14 13BDC
Well
Coconino Sandstone
900
345746110483701
A-18-14 13BAD
Well
Coconino Sandstone
1,100
345750110482501
A-18-14 13ABD2
Well
Coconino Sandstone
620
345750110482701
A-18-14 13ABD1
Well
Coconino Sandstone
315
345750110482801
A-18-14 13ABD3
Well
Coconino Sandstone
293
345757110484301
A-18-14 13BAA
Well
Coconino Sandstone
700
345800111184701
A-18-10 02CCB
Spring
Kaibab Formation
N/A
345821110295101
A-18-17 12CBA
Well
Coconino Sandstone
330
345840110513001
A-18-14 09AAC
Well
Coconino Sandstone
450
345859110381801
A-18-16 10CBC2
Spring
Coconino Sandstone
N/A
345906110383301
A-18-16 10CAC
Spring
Coconino Sandstone
N/A
345910110352001
A-18-17 06CBB2
Well
Coconino Sandstone
106
345942110462401
A-18-15 05ABB
Well
Coconino Sandstone
350
350002110355501
A-19-16 36DDB [Winslow I-40 Well]
Well
Coconino Sandstone
610
350030110420901
A-19-15 36ABA
Well
Coconino Sandstone
400
350040110384401
A-19-16 28DDD
Well
Coconino Sandstone
150
350042110425601
A-19-15 26DDA
Well
Coconino Sandstone
227
350050110424801
A-19-15 25CBC
Well
Coconino Sandstone
303
350051110430001
A-19-15 26DAC
Well
Coconino Sandstone
120
350124110450901
A-19-15 28AAC
Well
Coconino Sandstone
400
350125110450801
A-19-15 28AAB
Well
Coconino Sandstone
220
350150111040001
A-19-12H15CBB
Well
Coconino Sandstone
760
350158110403601
A-19-16 20BCD
Well
Coconino Sandstone
198
350205110513301
A-19-14 21ACA
Well
Coconino Sandstone
220
350210110560001
A-19-13 23ABB
Well
Coconino Sandstone
450
350210111011001
A-19-12H13BAD
Well
Coconino Sandstone
690
350400111004001
A-19-13 07BBB
Well
Coconino Sandstone
570
350407110332101
A-19-17 05DDD
Well
Coconino Sandstone
680
350414110412201
A-19-16 06CAD
Well
Coconino Sandstone
282
350417110413301
A-19-16 06CDB
Well
Coconino Sandstone
195
350420110590001
A-19-13 05DAB
Well
Coconino Sandstone
570
350427110512501
A-19-14 04DAB
Well
Coconino Sandstone
410
10 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona Table 1. Well and spring locations and selected construction data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).—Continued [ft, feet; bls, below land surface; N/A, not applicable; --, information not available]
USGS site number
USGS station name
Site type
Geologic formation well is completed in (or spring discharges from)
Well depth (ft bls)
350428110484901
A-19-14 01CAB
Well
Coconino Sandstone
270
350440110411801
A-19-16 06ACC
Well
Coconino Sandstone
185
350446110502501
A-19-14 03AAC2
Well
Coconino Sandstone
650
350447110502301
A-19-14 03AAC1
Well
Coconino Sandstone
800
350450110522001
A-19-14 04BBB
Well
Coconino Sandstone
600
350451110494901
A-19-14 02BAC
Well
Coconino Sandstone
727
350518110554801
A-20-13 35DDA
Well
Coconino Sandstone
400
350538110560401
A-20-13 35BDA
Well
Coconino Sandstone
400
350600111015001
A-20-12H24CBB
Well
Coconino Sandstone
640
350618111015601
A-20-12H23ADD
Well
Coconino Sandstone
650
350637110485401
A-20-14 25B
Well
Coconino Sandstone
320
350653110573801
A-20-13 22CCB
Well
Coconino Sandstone
350
350700111054001
A-20-12 14CAC
Well
Coconino Sandstone
650
350706111014701
A-20-12H13CBB [Sunshine Well]
Well
Coconino Sandstone
1,155
350756111154001
A-20-11 07ADD
Well
Coconino Sandstone
950
350810111105001
A-20-11 12BAA
Well
Coconino Sandstone
3,628
350816110531001
A-20-14 17B
Well
Coconino Sandstone
250
350839111005301
A-20-12H01DDA
Well
Coconino Sandstone
650
350845110540101
A-20-14 07C
Well
Coconino Sandstone
200
350909111165401
A-20-10S01AAA
Well
Coconino Sandstone
935
350957110562601
05 144-10.76X05.75 [PW-3]
Well
Coconino Sandstone
1,096
350958110562201
05 144-10.67X05.72(1)
Well
Coconino Sandstone
1,180
351001110562601
05 144-10.79X05.73
Well
Coconino Sandstone
426
351022111061801
05 145-05.92x05.31 [OW-1]
Well
Coconino Sandstone
--
351023111062002
05 145-05.96X05.28 (2) [PW-1A]
Well
Coconino Sandstone
--
351052110491701
05 144-04.07X04.75
Well
Coconino Sandstone
440
351053110332501
05 143-03.22X04.73
Well
Coconino Sandstone
907
351122111101301
05 145-09.63X04.20
Well
Coconino Sandstone
717
351142110563401
05 144-10.91X03.80
Well
Coconino Sandstone
253
351144111161201
A-21-11 19BCB
Well
Coconino Sandstone
935
351214111022101
05 145-02.25X03.18 [OW-2B]
Well
Coconino Sandstone
1,069
351215111021701
05 145-02.17X03.15
Well
Coconino Sandstone
388
351238111084101
05 145-08.18X02.71
Well
Coconino Sandstone
717
351442110581601
05 144-12.50X00.37
Well
Coconino Sandstone
425
351448111012701
05 145-01.37X00.22
Well
Coconino Sandstone
570
351519111120701
05 132-11.42X16.88
Well
Supai Formation
351525111035801
05 132-03.74X16.74
Well
Coconino Sandstone
635
351739111001501
05 132-00.32X14.24
Well
Kaibab Formation
425
351748110592301
05 131-13.51X13.98
Well
Kaibab Formation
200
351749111003401
05 132-00.52X14.00
Well
Coconino Sandstone
400
351758111000901
05 132-00.14X13.82
Well
Coconino Sandstone
405
UNSURV
UNSURV UNSURV
1,161
Approach and Methods 11 Table 1. Well and spring locations and selected construction data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).—Continued [ft, feet; bls, below land surface; N/A, not applicable; --, information not available]
USGS site number
USGS station name
Site type
Geologic formation well is completed in (or spring discharges from)
Well depth (ft bls)
351804111060301
05 132-05.70X13.70
Well
Coconino Sandstone
391
351815110505001
05 131-05.50X13.50
Well
Coconino Sandstone
510
351818110054901
05 132-05.47X13.45
Well
Coconino Sandstone
687
351831111054501
05 132-05.41X13.21
Well
Coconino Sandstone
351930111184801
A-22-10 03ACD
Well
Supai Formation
582 2,400
352117111132901
05 132-12.70X10.02
Well
Coconino Sandstone
806
352119111132901
05 132-12.70X09.98
Well
Coconino Sandstone
716
352226111081401
05 132-07.77X08.69
Well
Coconino Sandstone
422
Quality Assurance
Graphical and Statistical Analysis
Water-chemistry samples were analyzed using methods described in Fishman and Friedman (1989), Fishman (1993), and Fishman and others (1994). Major ion data included dissolved calcium, magnesium, sodium, potassium, chloride, sulfate, and bicarbonate (computed from alkalinity or acid-neutralizing capacity). When potassium was not measured, sodium was used by itself in the ion balance and analyses; potassium concentrations are considered minor. In order to validate the dissolved-ion data, the ion balance of samples was checked by converting the concentrations of cations and anions in the sample from milligrams per liter to milliequivalents per liter for comparison. Theoretically, if all ions have been correctly determined, the total milliequivalents per liter of cations should equal the total milliequivalents per liter of anions in a sample (Hem, 1985). Most samples had differences of less than 5 percent between cation and anion concentrations expressed as milliequivalents per liter. Four samples had ion balances with differences from 6 to 12 percent; these samples are included in this study because the percent differences are low, and other unmeasured ions and trace metals may potentially contribute to the ion balances (Hem, 1985). Potassium was not measured in all water samples which undoubtably affected the ion balance of samples where it was missing. However, because potassium is usually a minor constituent of natural waters the omission was considered acceptable. The TDS of groundwater was analyzed using the sum of constituents method (Fishman and Friedman, 1989). Specific conductance, or the ability of a solution to conduct an electric current, is a function of the concentration and charge of the ions (Hem, 1985; Fishman and Friedman, 1989). Specific conductance and TDS from samples used in this study showed a strong relationship as should be expected with an R2 value of 0.98.
The geochemical compositions of water-chemistry samples were graphically depicted with stiff and trilinear diagrams (similar to Piper [1944]). Analyses were performed using R statistical software (v.4.2.2; R Core Team, 2022). Water-chemistry data were downloaded from NWIS using the dataRetrieval package (De Cicco and others, 2022), and stiff diagrams and piper diagrams were created using the smwrGraphs package (Lorenz and Diekoff, 2017). Prior to plotting, concentration data, in milligrams per liter, were transformed to milliequivalents per liter. TDS were plotted in ArcMap (v. 10.8.1, Esri, Redlands, California) and interpolated using the “spline with barriers” method. In addition to the graphical methods described above, principal component analysis (PCA) on the major ion data was performed in Primer 7 (Clarke and others, 2014; v7.0.17, PRIMER-E Ltd., Plymouth, United Kingdom) to investigate associations in the data. PCA was conducted on transformed and normalized major ion data to better understand how the selected factors explained the observed variation among sites (Clarke and others, 2014). Briefly, PCA captures as much of the variability in the original multi-dimensional space as possible within the two axes of the plane. Output from the PCA includes eigenvalues (variances of each principal component axis), eigenvectors (coefficients for the linear combination of input factors that defines the plane), and principal component scores (coordinates of the samples on the PC axes computed using eigenvector coefficients). A percent variance explained (from eigenvalues) is computed to quantify the extent to which the two principal component axes of the plane provide an accurate representation of the true association between the factors in the original multi-dimensional space.
12 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona
Results Water chemistry of the Coconino aquifer varied throughout the study area. The pH values for 112 sites ranged from 6.7 to 11.1, with a median of 7.6 (table 2, found at the end of this report). Three sites had samples that exceeded the SMCL range for pH for drinking water (6.5–8.5; U.S. Environmental Protection Agency, 2015). SMCLs are not enforced or considered to cause health effects, but may affect the taste, color, or corrosiveness of water. USGS site number 345757110484301 exceeded the SMCL with 1 pH value of 8.6, although 16 other samples from the site ranged from 7.4 to 8.1. USGS site number 351758111000901 exceeded the SMCL with a pH value of 9.2, and USGS site number 350407110332101 had the highest pH value of the sites with a pH of 11.1. Specific conductance values from 126 sites ranged from 110 to 15,200 microsiemens per centimeter (µS/cm), with a median of 1,220 µS/cm. Total dissolved solids ranged from 199 to 10,400 milligram per liter (mg/L) from 117 sites, with a median of 755 mg/L (table 2, found at the end of this report). Maximum TDS exceeded the SMCL in about 73 percent of sites with data (85 of 117; fig. 5). TDS was highest (10,400 mg/L) at USGS site number 344407110171801. This 800-ft well is completed in the Coconino Sandstone and is located south of Holbrook in the southeastern
part of the study area. Other sites with high TDS (USGS site number 350407110332101, 6,580 mg/L; USGS site number 351815110505001, 5,800 mg/L; USGS site number 351053110332501, 5,470 mg/L; and USGS site number 351052110491701, 5,030 mg/L; figs. 5 and 6) are located north of Winslow (table 2, found at the end of this report; fig. 5). A map of interpolated TDS concentrations was created for the study area (fig. 6). Areas of high TDS include the area northwest of The Sinks and Snowflake in the southeastern part of the study area and a broad area north of Winslow. This broad area is unconstrained by TDS sample data; however, a well drilled in the mid-2000s by the Hopi Tribe at the Village of Moenkopi north of the study area required reverse osmosis treatment for municipal use demonstrating that salinity concentrations are elevated in that area (Jon Mason, oral commun., 2023). Spatial distributions of TDS are consistent with a similar map of the southeastern part of the study area from Mann (1976). Figure 6 also displays water-chemistry stiff diagrams at sites with available data. These stiff diagrams are used to spatially compare ionic composition of water samples (Stiff, 1951). Water-chemistry data were adequate to create stiff diagrams for 111 sites; when sites were too close together to distinguish, a representative diagram from one site is displayed in figure 6.
100
Percentage of sites below a certain concentration
351052110491701
350407110332101 351815110505001 351053110332501
344407110171801
75
50
Environmental Protection Agency (EPA) secondary maximum contaminant level (SMCL) of 500 milligrams per liter for total dissolved solids
25
0
0
2,000
4,000
6,000
8,000
10,000
12,000
Maximum measured total dissolved solids concentration in groundwater at a site, in milligrams per liter
Figure 5. Distribution of the concentration of total dissolved solids (TDS) in Coconino aquifer groundwater samples from 117 sites in the northeastern Arizona study area. Five sites with the highest TDS are labeled with the corresponding U.S. Geological Survey site number.
20 0 20
Chloride Bicarbonate Sulfate
87
C lea
r
ee Cr
Winslow
351052110491701
Base from U.S. Geological Survey digital data, various scales and dates; Web Mercator projection; World Geodetic System of 1984
sh
r
350407110332101
351053110332501
RESERVATION
NAVAJO NATION
Richard Lake
Cr lon e McCauley ev Sinks Ch
377
87
0
0 10
344407110171801
40
77
10 20 KILOMETERS
Snowflake
The Sinks
Holbrook
77
Ri
20 MILES
v er
180
110°
o
Figure 6. Interpolated total dissolved solids (TDS) and major ion chemistry distribution (U.S. Geological Survey, 2023) in the Coconino aquifer in the northeastern Arizona study area. Not all sites with TDS have major ion data to display. When sites with major ion data were too close together to distinguish, one representative diagram is displayed.
34°30'
o Wa
R
ad olor
ARIZONA
35°
40
San F ran cis c
ive
351815110505001
110°30'
C tle Lit
Map area
Milliequivalents per liter
Sodium+potassium Calcium Magnesium
Stiff diagram of total dissolved solids measurements
Total dissolved solids measurement location
0 to 500 501 to 1,243 1,244 to 2,041 2,042 to 2,971 2,972 to 3,946 3,947 to 5,009 5,010 to 6,028 6,029 to 7,180 7,181 to 8,598 8,599 to 10,415
Li ttl
k
Total dissolved solids, in milligrams per liter
NAVAJO COUNTY
111°
COCONINO COUNTY
o k
ad lor o eC ee
EXPLANATION
Results 13
14 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona The chemical composition of groundwater was further characterized based on the ratios of major ions present in the water (Hem, 1985). This classification is typically called the water type. Water type is determined by comparing the relative concentrations in milliequivalents of the cations and anions in water separately. To be classified as a specific water type, there must be a dominant cation and anion each making up more than 50 percent of the total. For example, if calcium makes up more than 50 percent of the cations and bicarbonate makes up more than 50 percent of the anions in the water, it is classified as a calcium-bicarbonate water type (or just calcium-bicarbonate water). If no cations and anions make up more than 50 percent of the total, the water is classified as a mixed water type (Hem, 1985). The water types correspond to areas of a trilinear diagram (fig. 7).
Using this method of classification, 42 percent of the sites (47 of 111) have a sodium-chloride water type. These sites correlate with high TDS in the study area, located to the southeast and north of the Little Colorado River (figs. 6, 7, and 8; table 2, found at the end of this report). Another 14 percent (15 of 111) of the sites are a calcium-sulfate water type. About 15 percent (17 of 111) of the sites are considered calcium-bicarbonate water. The calcium-dominated water is mostly located to the west of the study area (fig. 8; table 2, found at the end of this report). The remaining 29 percent (32 of 111) are a mixed water type. They are referred to as calcium-magnesium-chloride sulfate type because combinations of these cations and anions make the majority of the ions (fig. 7; table 2, found at the end of this report).
100
100
EXPLANATION Water type
de
80 60
Sodium-bicarbonate type
40
lfat
40
m
Su
gne
e+
ma
chl
Calcium-sulfate type
VI
siu
Calcium-sodium-bicarbonate type
V
m+
IV
V
lciu
Calcium-magnesium-chloride sulfate type
Ca
Sodium-chloride type
60
II III
ori
III 20
Total dissolved solids, in milligrams per liter 199 0
0
20
Calcium-bicarbonate type
80
I
0
II
0
I
10,400 20
Bic
60 80
100
20
Calcium
60
40
0
20
0
20
40
60
80
100
0
100
100
80
80
40
Chloride
Percent
Figure 7. Trilinear diagram and water-type classification of groundwater samples in the Coconino aquifer in the study area. The relative size of the circles represents total dissolved-solids concentrations.
100
40
e
arb ona t
40
20
60
e
60
Ma
lfat
Su
60
80
0
m
80
40
siu
20
40
100
20
80
um
ssi
gne
100
ota
+p
VI
60
um
60
40
0
0
IV di So
80
20
100
Results 15 111°30'
111°
110°30'
110°
HOPI RESERVATION 35°30'
Map area 87
ARIZONA 89
San Fran cis co
t t le
Wa s h
Color ado
NAVAJO NATION RESERVATION
ver Ri
Flagstaff
Li
40
77
35°
Winslow
17
40
rC
re ek
r
ee
C lea
C lon ve e Ch
lo r
EXPLANATION
87
o tle C Lit
k
Holbrook
ad
Sodium-chloride type Calcium-magnesiumchloride sulfate type 34°30'
Calcium-sulfate type Base from U.S. Geological Survey digital data, various scales and dates; Web Mercator projection; World Geodetic System of 1984
COCONINO COUNTY NAVAJO COUNTY
YAVAPAI COUNTY
Water type Calcium-bicarbonate type
377
o Riv er
77
0 0
180
20 20
40 MILES 40 KILOMETERS
Figure 8. Groundwater types of sites in the Coconino aquifer in the study area, based on the ratios of major ions present.
The loading plot depicts computed PCA of the normalized major ion data and explains 66 percent of the cumulative variability among the data (fig. 9). The principal component along axis 1 (PC1) accounted for 46.1 percent of variation. The principal component along axis 2 (PC2) accounted for an additional 19.9 percent of variation. Vectors plotted on the PC1 represented a positive loading for bicarbonate and negative loading for all other variables. Vectors plotted on the PC2 represented a positive loading in calcium, magnesium, and sulfate, and a negative loading in sodium (+potassium), chloride, and bicarbonate ions. Additionally, non-sodium-chloride water types plotted along a line defined by the bicarbonate vector on one end to magnesium, calcium, and sulfate on the other end, whereas sodium-chloride water types changed along a different line that included the sodium and chloride vectors. Of these major ions, chloride and sulfate have Environmental Protection Agency (EPA) SMCLs that affect drinking water (table 3; U.S. Environmental Protection Agency, 2015). The SMCL for both ions is 250 mg/L;
exceedances can cause the water to taste salty. Chloride exceeded the SMCL in 122 samples from 50 sites (about 45 percent of the sites) in the study area. Sulfate exceeded the SMCL in 68 samples from 46 sites (about 41 percent of the sites). Either chloride, sulfate, or both ions exceeded the SMCL in 154 samples from 69 sites (about 62 percent of the sites) Selected trace metals also were analyzed. Although most sites did not have any data (with the exception of fluoride, which was measured at 126 sites), available data are presented along with EPA regulations (table 3). Only one sample exceeded the EPA maximum contaminant limit (MCL) for any of the trace metals measured. Unlike SMCLs, MCLs are legal limits of constituents in drinking water that are designed to protect human health (U.S. Environmental Protection Agency, 2009). USGS site number 344407110171801, an 800-foot well in the Coconino Sandstone, exceeded the MCL and SMCL for fluoride (MCL is 4 mg/L; SMCL is 2 mg/L; and sample concentration was 5.4 mg/L). Fluoride concentrations for 126 sites ranged from 0 to 5.4 mg/L.
16 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona 10
EXPLANATION
Principal component analysis axis 2 (19.9 percent of variation)
Water type Calcium-bicarbonate type 5
Sodium-chloride type
Magnesium
Calcium-magnesium-chloride sulfate type
Sulfate Calcium
Calcium-chloride type Total dissolved solids, in milligrams per liter
0
1,000
Sodium (+ Potassium)
−5
Chloride
4,000 Bicarbonate
8,000 14,000
−10 −10
−5 0 5 Principal component analysis axis 1 (46.1 percent of variation)
10
20,000
Figure 9. Principal component analysis (PCA) of major ions in the groundwater sites in the Coconino aquifer in the study area. Table 3. Ranges of constituents in the study area and corresponding Environmental Protection Agency (EPA) maximum contaminant levels (MCLs), treatment techniques (TT), and (or) secondary maximum contaminant levels (SMCLs; U.S. Environmental Protection Agency, 2015), Coconino aquifer, northeastern Arizona. [Abbreviations: µg/L, micrograms per liter; mg/L, milligrams per liter; --, not applicable; TT*, treatment techniques; <, less than]
Chemical symbol
No. of sites with measurement
Range
EPA MCL (or TT*)
EPA SMCL
--
112
6.8–11.1
--
6.5–8.5
Total dissolved solids
--
117
199–10,400 mg/L
--
500 mg/L
Chloride
Cl-
50
0.01–3,980 mg/L
--
250 mg/L
Sulfate
SO42-
46
1.3–2,620 mg/L
--
250 mg/L
Arsenic
As
22
<1–7 µg/L
10 µg/L
--
Constituent pH
Barium
Ba
22
11.8–262 µg/L
2,000 µg/L
Copper
Cu
22
0.32–30 µg/L
1,300 µg/L*
1,000 µg/L
Lead
Pb
22
<0.08–30 µg/L
15 µg/L*
--
Fluoride
F-
126
0–5.4 mg/L
4 mg/L
2 mg/L
Arsenic, barium, copper, and lead were measured at 22 sites for a total of 38 samples. Arsenic concentrations ranged from less than 1 to 7 µg/L (MCL is 10 µg/L). Barium concentrations ranged from 11.8 to 262 µg/L (MCL is 2,000 µg/L). Copper and lead do not have an MCL, but instead are regulated in water systems by treatment techniques (TT). Treatment techniques do not apply to single elements, but no more than 10 percent of tap water samples can exceed the TT action level, or corrective measures must be used (U.S. Environmental Protection Agency, 2009). Copper concentrations ranged from 0.32 to 30 µg/L (TT action level is 1,300 µg/L). Lead concentrations ranged from less than 0.08 to 30 µg/L (TT action level is 15 µg/L). Uranium
concentrations were only measured at two sites near Leupp, Arizona, in 2005, and were 2.45 and 4.60 µg/L (MCL is 30 µg/L).
Discussion Subsurface deposits of halite in the southeastern part of the study area influence the groundwater chemistry. High TDS, which can occur naturally in groundwater due to the dissolution of rocks, likely results from the solution of halite along the regional groundwater flow path. Sodium-chloride
Conclusions 17 is highly soluble in water but is concentrated in many of the groundwater sites in the study area, suggesting a persistent source. Despite the salt-dissolution features at McCauley Sinks and Richard Lake, TDS is interpreted to be in a low range for the study area near these features (Neal and Johnson, 2002; fig. 6). This supports Neal and Johnson’s (2002) conclusion that dissolution here may indeed be less active than in the past, as the dissolution front migrates to the northeast. Another hypothesis presented by Neal and Johnson (2002) is that wells are too shallow to penetrate deep groundwater with high TDS. The top of the saltwater zone is variable, and well logs are not always available. Mann (1976) attributes this irregularity to fractures in the siltstone of the Supai Formation beneath the Coconino aquifer. Other evaporites that are often present along with naturally forming halite can supply additional ions to groundwater (Richter and Kreitler, 1991). Calcium and sulfate in groundwater likely result from dissolution of gypsum (CaSO4 2H20) and anhydrite (CaSO4), which extend beyond the halite bed. Mann (1976) suggested that sodium, sulfate, and chloride in the Coconino aquifer also may be contaminated from the Moenkopi Formation when wells are open in both stratigraphic layers. However, due to the mudstone and siltstone present, the Moenkopi Formation acts as a confining unit unless heavily fractured. The calcium, magnesium, and bicarbonate present in the west and southwest may be from water moving downward through the carbonate Kaibab Formation (Mann, 1976). Bills and others (2007) recorded low strontium-isotope (87Sr/86Sr) measurements from wells and springs near Flagstaff that indicate inflow interacting with the Kaibab Formation and volcanic rocks.
Potential for Use as Potable Water High concentrations of TDS in much of the study area affect the quality of Coconino aquifer water for potential potable use. In the southeastern part of the study area, and north of the Little Colorado River, about 73 percent of Coconino aquifer samples contain TDS greater than the SMCL of 500 milligrams per liter (mg/L) up to concentrations greater than 10,000 mg/L. Although this falls into the TDS range that can be potentially remediated, desalination of groundwater for potable use can be costly and energy intensive (Stanton and others, 2017). Trace metals have not been widely measured, but most concentrations are less than the MCLs for drinking water. Fluoride exceeded the MCL in one sample (table 3). Although both arsenic and uranium samples were less than the MCLs (10 µg/L As and 30 µg/L U), these elements have been a concern for the Navajo Nation and Hopi Tribe. Jones and others (2020) found that both arsenic and uranium exceeded the EPA MCL in western Navajo Nation in unregulated water sources, including around Leupp, Arizona.
Water containing elevated TDS can be used for livestock watering and (or) irrigation in some cases. Irrigation water with specific conductance values ranging from 750 to 1,500 µS/cm may have detrimental effects on sensitive crops, whereas higher specific conductance values may affect many crops (Zaman and others, 2018). Sodium hazard, which describes how sodium affects the soil, and ion toxicity are other potential hurdles. Less is known about Coconino aquifer water north of the study area on the Hopi Reservation and Navajo Nation. Wells in these areas penetrate the shallower Navajo, Dakota, and Toreva aquifers (Mason, 2021). The Hopi Tribe did drill a single municipal well into the Coconino aquifer at the Village of Moenkopi north of the study area. Water from that well required reverse osmosis treatment demonstrating that salinity concentrations are elevated in that area (Jon Mason, oral commun., 2023). However, to the northeast of the study area, near Arizona’s border with New Mexico, Coconino aquifer water contains less dissolved solids (less than 500 mg/L; U.S. Geological Survey, 2023).
Conclusions As population and development increase in the arid Hopi Reservation and Navajo Nation of northeastern Arizona, the Coconino aquifer has been considered for development as a supplemental groundwater resource. In cooperation with the Hopi Tribe and analyzing existing groundwater samples collected since 1933, the water chemistry of the Coconino aquifer was characterized to determine its potential suitability as a source of drinking water for the Hopi Tribe and Navajo Nation. Buried halite bodies in the southeastern part of the study area influence the dissolved-solids concentrations in the area. As groundwater moves along the regional dip to the north, sodium, chloride, and other ions are dissolved and transported through the system. The resulting plume of sodium-chloride groundwater differs from the groundwater to the south and west. Total dissolved solids (TDS), sulfate, and chloride exceed the U.S. Environmental Protection Agency (EPA) secondary maximum contaminant level for taste and odor in many samples. Measured trace metals are less than the EPA maximum contaminant level (MCL), except for one sample of fluoride. Water chemistry data from this study indicate that in much of this area, while the aquifer is potentially productive, it will likely need treatment before it is suitable for human consumption. Few Coconino aquifer wells exist north of the study area in the Hopi Reservation and (or) Navajo Nation. Characterizing the groundwater chemistry of the aquifer resource in this area could reveal its suitability for development as a water supply.
[Sample date: MM/DD/YYYY, month/day/year. Water type: Water type refers to major ion distribution and is only listed if used in the analysis (most recent complete sample). Abbreviations: SC, specific conductance; µS/cm, microsiemens per centimeter; Ca2+ , calcium; Mg+, magnesium; mg/L, milligrams per liter, Na+ + K+, sodium+potassium; SO42-, sulfate; Cl, chloride; HCO-, bicarbonate; TDS, total dissolved solids; --, no data available; E, estimate; <, less than]
USGS site number
Sample
SC
date
(µS/cm)
pH
Ca2+
Mg+
Na+ + K+
SO42-
Cl-
HCO-
TDS
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
Water type
Arsenic
Uranium
Barium
Lead
Copper
Fluoride
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(mg/L)
342526110155501
6/14/1946
2,220
--
112
53
290
281
470
206
1,330
sodium-chloride
--
--
--
--
--
0.5
343149110002701
9/5/1972
1,060
7.1
150
45
17.2
350
13
289
729
calcium-sulfate
--
--
--
--
--
0.7
343225110545001
5/15/1952
540
--
62
34
5
12
6
346
--
--
--
--
--
--
--
0.4
343225110545001
5/11/1966
--
7.8
60
38
6.7
110
13
226
--
--
--
--
--
--
--
0.1
343225110545001
8/3/1992
519
7.5
65
31
4.8
1.3
1
352
285
calcium-bicarbonate
--
--
--
--
--
<0.1
343239110340001
6/20/1972
499
7.6
56
30
3.3
18
4.1
310
275
calcium-bicarbonate
--
--
--
--
--
0
343314111183801
8/5/1994
540
7.4
63
31
2.3
1.7
1.9
--
285
--
3
--
47
4
2
0.1
343423111194001
8/26/1975
476
--
--
--
--
--
--
--
265
--
--
--
--
--
--
0.1
343438110155001
9/21/1972
1,870
7.7
53
29
292.1
90
430
219
1,020
--
--
--
--
--
--
0.3
--
--
--
--
--
0.3
--
--
--
--
--
0.3 0.11
343438110155001
8/5/1992
1,840
7.8
53
28
272
84
430
221
990
343640110353001
7/5/1969
454
--
63
19
--
8
9
232
--
sodium-chloride --
343640110353001
8/17/2000
450
7.9
54.7
29
4.89
12.1
5.51
--
E 268
--
7
--
262
4
3.7
343756111154001
7/13/1978
640
7.4
85
29
4.9
7.2
12
350
331
calcium-bicarbonate
--
--
--
--
--
0.1
343914110082601
6/11/1958
2,260
7
296
99
130
930
150
30
1,780
calcium-sulfate type
--
--
--
--
--
1
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.2
--
--
--
--
--
-0
343918110121301
9/12/1972
638
7.7
37
13
76.9
50
83
180
371
343950110061201
1/1/1974
1,080
--
--
--
--
--
--
--
702
--
344058111033101
6/17/1966
532
7.5
66
33
2.8
26
6
330
308
calcium-bicarbonate
--
--
--
--
--
344104110375201
1/1/1966
449
7.8
--
--
--
--
--
--
252
--
--
--
--
--
--
0
344104110375201
9/12/2000
410
7.3
49.9
27.5
4.95
13.4
5.04
--
E 246
--
7
--
216
<1
E 0.6
0.17
--
--
--
--
--
--
0.4
--
--
--
--
--
0.3
344221110081801
2/14/1934
--
--
71
31
120*
120
160
252
--
344221110081801
6/11/1946
110
--
71
28
120*
110
160
260
--
344239109595701
9/5/1972
1,150
8.2
66
74
66.5
350
71
204
733
calcium-sulfate
--
--
--
--
--
0.6
344303111124301
6/22/1966
475
7.5
57
28
4.8
18
6.5
294
274
calcium-bicarbonate
--
--
--
--
--
0 --
calcium-magnesium-chloride sulfate
344349110064201
4/1/1974
670
--
--
--
--
--
--
--
436
344407110171801
5/8/1968
15,200
6.8
670
190
2,800
2,620
3,980
276
10,400
344457110065001
4/1/1974
600
--
--
--
--
--
--
--
390
344502110261601
7/24/1969
5,500
7.9
80
28
944.4
27
1,500
217
2,700
sodium-chloride
344516110320301
7/24/1969
4,930
7.9
88
42
913.8
330
1,400
152
2,860
sodium-chloride
344644110023301
8/5/1986
1,270
7.2
100
34
100.1
270
140
--
765
344644110024201
5/17/1968
--
7.2
84
29
83
180
91
236
--
344644110024201
8/19/1992
1,090
7.8
--
--
--
--
--
--
661
344720109585001
9/12/1972
4,230
7.3
210
51
794
1,600
350
364
3,200
344720110135201
6/15/1965
1,110
7.7
72
35
110
120
138
303
--
-sodium-chloride --
-calcium-magnesium-chloride sulfate -sodium-chloride --
--
--
--
--
--
--
--
--
--
--
5.4
--
--
--
--
--
--
--
--
--
--
--
0.4
--
--
--
--
--
0.2
<1
--
19
<10
<10
0.3
--
--
--
--
--
0.6
--
--
--
--
--
0.2
--
--
--
--
--
2
--
--
--
--
--
0.2
18 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona
Table 2. Selected field parameters and water-chemistry data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).
Table 2. Selected field parameters and water-chemistry data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).—Continued [Sample date: MM/DD/YYYY, month/day/year. Water type: Water type refers to major ion distribution and is only listed if used in the analysis (most recent complete sample). Abbreviations: SC, specific conductance; µS/cm, microsiemens per centimeter; Ca2+ , calcium; Mg+, magnesium; mg/L, milligrams per liter, Na+ + K+, sodium+potassium; SO42-, sulfate; Cl, chloride; HCO-, bicarbonate; TDS, total dissolved solids; --, no data available; E, estimate; <, less than]
USGS site number
Sample
SC
date
(µS/cm)
pH
Ca2+
Mg+
Na+ + K+
SO42-
Cl-
HCO-
TDS
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
344720110135201
8/5/1986
1,120
7.2
66
37
112.1
130
140
--
639
344720110135201
8/20/1992
1,650
7.8
69
37
111.9
120
140
301
639
344749111051901
11/10/1933
315
7.5
--
--
--
--
--
--
205
344757110261201
9/6/1972
5,470
8
94
54
1,003.4
370
1,500
179
3,120
344757110261201
9/14/1995
5,200
8.1
93
50
953.4
340
1,500
--
3,020
Water type -calcium-magnesium-chloride sulfate -sodium-chloride ---
Arsenic
Uranium
Barium
Lead
Copper
Fluoride
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(mg/L)
<1
--
39
<10
<10
0.3
--
--
--
--
--
0.2
--
--
--
--
--
0.2
--
--
--
--
--
0.2
--
--
--
--
--
0.2
344908110202901
6/18/1946
413
--
82
39
770
273
1,110
225
--
--
--
--
--
--
--
344908110202901
4/23/1968
4,190
7.1
78
37
760
240
1,100
236
2,350
sodium-chloride
--
--
--
--
--
0.9
345011110201101
4/24/1968
2,800
6.7
16
11
540
166
700
129
1,500
sodium-chloride
--
--
--
--
--
0.8
345011110201101
8/4/1986
3,500
7.4
70
38
563.2
320
820
--
1,940
<1
--
31
30
<30
0.6
345212110012901
8/18/1992
6,500
7.8
140
40
1,107.2
250
1,600
204
3,250
--
--
--
--
--
0.2
-sodium-chloride
345223110522301
5/3/1966
--
7.5
78
34
8.7
123
0.1
259
--
calcium-bicarbonate
--
--
--
--
--
--
345308110125301
8/5/1986
840
7.4
56
35
59.5
150
69
--
487
--
<1
--
27
<10
20
0.4
345316110170910
8/17/1972
1,320
7.4
72
43
142.5
230
180
232
794
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.5
345320110144710
9/12/1972
885
7.7
39
26
102.1
83
130
201
491
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.5
345340110193001
6/5/2007
1,220
7.6
60.3
35.6
134.42
128
168
--
E 673
--
0.23
--
24.8
<0.12
E 0.32
0.4
345340110193001
6/19/2008
1,300
7.3
61.2
37.1
138.52
131
178
--
E 687
--
0.66
--
24.1
0.118
<1
0.37 0.3
345344110165101
8/13/1992
1,160
8
61
37
132.2
170
160
219
680
calcium-magnesium-chloride sulfate
--
--
--
--
--
345345110175201
1/12/1968
1,140
7.3
55
31
140
114
169
256
651
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.6
345350111015501
5/12/1966
637
7.4
80
34
15
154
9
240
425
--
--
--
--
--
--
0.3
345350111015501
10/5/1978
650
7.4
71
33
13.2
150
13
220
403
calcium-bicarbonate
--
--
--
--
--
0.2
345350111015501
8/17/1995
635
7.6
73
34
11
140
5.4
--
390
--
--
--
--
--
--
0.2
--
0.4
345410110153201
7/24/1968
839
7.4
42
26
84
68
113
198
445
--
--
--
--
345415110200801
6/5/2007
1,900
7.5
83
38.6
240.67
204
347
--
E 1060
calcium-magnesium-chloride sulfate --
0.27
--
20.2
<0.12
345425110562101
5/11/1966
626
7.7
75
36
10
128
12
252
398
--
--
--
--
--
0.51
0.4
--
0.1 0.2
10/19/1978
650
7.5
83
34
12.4
150
19
240
430
calcium-bicarbonate
--
--
--
--
--
8/16/1995
620
7.6
75
33
10.6
130
7.9
--
390
--
--
--
--
--
--
0.2
345444110192501
5/25/1994
1,430
7.5
57
33
182.4
130
260
--
790
--
<1
--
27
<1
<1
0.4
345444110192501
5/4/1995
1,500
7.6
59
34
192.6
130
280
--
826
--
--
--
--
--
--
0.4
345444110192501
5/7/1996
1,520
7.8
71
36
202.5
190
270
--
909
--
--
--
--
--
--
0.4
345444110192501
4/17/1997
1,480
7.5
56.6
32.8
194.49
134
279
--
822
--
--
--
--
--
--
0.45
345444110192501
4/9/1998
1,500
7.8
56.5
34.4
203.45
133
289
--
836
--
--
--
--
--
--
0.38
345444110192501
6/2/1999
1,550
7.8
56.2
32.1
187.4
127
282
--
810
--
--
--
--
--
--
0.35
345444110192501
7/26/2001
1,540
7.6
57
34
202.4
130
290
--
830
--
--
--
--
--
--
0.34
Conclusions 19
345425110562101 345425110562101
[Sample date: MM/DD/YYYY, month/day/year. Water type: Water type refers to major ion distribution and is only listed if used in the analysis (most recent complete sample). Abbreviations: SC, specific conductance; µS/cm, microsiemens per centimeter; Ca2+ , calcium; Mg+, magnesium; mg/L, milligrams per liter, Na+ + K+, sodium+potassium; SO42-, sulfate; Cl, chloride; HCO-, bicarbonate; TDS, total dissolved solids; --, no data available; E, estimate; <, less than]
USGS site number 345500110210301
Sample
SC
date
(µS/cm)
8/17/1992
1,290
Ca2+
Mg+
Na+ + K+
SO42-
Cl-
HCO-
TDS
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
7.9
64
34
152.2
150
190
262
730
pH
Arsenic
Uranium
Barium
Lead
Copper
Fluoride
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(mg/L)
calcium-magnesium-chloride sulfate type
--
--
--
--
--
0.2
--
1.2
--
23.1
<0.16
1
0.31
1.6
--
25.4
<0.16
<0.8
0.31
Water type
345519110314201
7/6/2005
4,800
6.9
86.8
58.5
796.63
255
1,280
245
E 2610
345519110314201
6/23/2006
4,660
7.1
78.7
49.9
769.83
251
1,270
248
2,550
345519110314201
12/1/2010
4,680
7.9
--
--
--
--
--
--
--
--
--
--
--
--
--
--
345519110314201
12/1/2010
4,680
7.9
--
--
--
--
--
--
--
--
--
--
--
--
--
--
sodium-chloride
345519110314201
9/18/2012
4,730
7.7
--
--
--
--
--
--
--
--
--
--
--
--
--
--
345519110314201
9/19/2017
4,720
7.4
--
--
--
--
--
--
--
--
--
--
--
--
--
--
345519110314201
9/25/2018
4,520
7.6
--
--
--
--
--
--
--
--
--
--
--
--
--
--
345519110314201
9/25/2018
4,520
7.6
--
--
--
--
--
--
--
--
--
--
--
--
--
--
345519110314201
6/18/2019
4,730
7.3
--
--
--
--
--
--
--
--
--
--
--
--
--
--
345548110480201
5/3/1966
345548110480201
10/19/1978
--
7.6
82
41
480
168
745
236
1,630
2,900
7.4
82
38
462.5
170
740
230
1,620
-sodium-chloride
--
--
--
--
--
0.2
--
--
--
--
--
0.2 --
345653110394001
2/28/2006
2,280
7.5
--
--
--
--
--
--
--
--
--
--
--
--
--
345653110394001
6/28/2006
2,300
7.6
53
25.4
372.98
41.2
601
--
E 1230
--
0.28
--
85.4
<0.08
0.4
0.15
345653110394001
12/2/2010
2,370
7.8
--
--
--
--
--
--
--
--
--
--
--
--
--
--
345653110394001
9/20/2017
2,320
7.7
--
--
--
--
--
--
--
--
--
--
--
--
--
--
345653110394001
6/19/2019
2,140
7.5
--
--
--
--
--
--
--
--
--
--
--
--
--
--
345653110394001
6/19/2019
2,320
7.5
--
--
--
--
--
--
--
--
--
--
--
--
--
--
345653110394001
6/10/2022
2,320
7.7
--
--
--
--
--
--
--
--
--
--
--
--
--
--
--
--
--
--
--
0
--
--
--
--
--
0 0
345707110552001
11/20/1933
2,270
7.6
66
41
14
136
21
232
--
345730110483001
4/27/1955
--
7.8
65
35
13*
110
12
246
361
sodium-chloride --
345730110483001
7/13/1955
--
7.7
64
37
30*
145
16
249
421
--
--
--
--
--
--
345730110483001
11/14/1955
--
8
62
38
20*
120
16
251
387
--
--
--
--
--
--
0.1
345730110483001
1/2/1957
--
7.4
59
39
5*
90
12
254
338
--
--
--
--
--
--
0.1 0.1
345730110483001
6/5/1957
--
7.7
63
32
2*
70
10
252
308
--
--
--
--
--
--
345730110483001
12/6/1957
--
7.6
64
31
8*
90
16
229
331
--
--
--
--
--
--
0.1
345730110483001
5/2/1958
--
7.6
62
33
2*
80
16
229
311
--
--
--
--
--
--
0.1
345730110483001
1/4/1959
--
8.1
61
34
7*
60
16
271
318
--
--
--
--
--
--
0.1
345730110483001
11/17/1959
--
7.3
66
40
8*
100
20
261
374
--
--
--
--
--
--
0.1 0.2
345730110483001
6/16/1960
--
7.7
64
40
1*
90
20
249
351
--
--
--
--
--
--
345730110483001
2/17/1961
--
7.6
68
36
26*
120
28
256
422
--
--
--
--
--
--
0.4
345730110483001
6/3/1963
--
7.7
84
20
33*
115
24
256
412
--
--
--
--
--
--
0
345730110483001
10/16/1964
--
7.6
108
6
37*
112
14
295
433
calcium-bicarbonate
--
--
--
--
--
0.3
20 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona
Table 2. Selected field parameters and water-chemistry data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).—Continued
Table 2. Selected field parameters and water-chemistry data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).—Continued [Sample date: MM/DD/YYYY, month/day/year. Water type: Water type refers to major ion distribution and is only listed if used in the analysis (most recent complete sample). Abbreviations: SC, specific conductance; µS/cm, microsiemens per centimeter; Ca2+ , calcium; Mg+, magnesium; mg/L, milligrams per liter, Na+ + K+, sodium+potassium; SO42-, sulfate; Cl, chloride; HCO-, bicarbonate; TDS, total dissolved solids; --, no data available; E, estimate; <, less than]
USGS site number
Sample
SC
date
(µS/cm)
pH
Ca2+
Mg+
Na+ + K+
SO42-
Cl-
HCO-
TDS
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
Water type
Arsenic
Uranium
Barium
Lead
Copper
Fluoride
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(mg/L)
345730110483001
10/25/1965
--
7.6
74
9
133*
215
36
288
609
--
--
--
--
--
--
0.2
345730110483001
9/17/1901
--
8
--
--
--
--
--
--
--
--
--
--
--
--
--
0.1
345730110485001
10/20/1953
--
7.4
53
38
35*
110
18
268
397
--
--
--
--
--
--
0
345730110485001
1/8/1955
--
7.9
64
32
14*
90
16
251
348
--
--
--
--
--
--
0
345730110485001
4/27/1955
--
8.1
64
34
22*
120
12
251
380
--
--
--
--
--
--
0
345730110485001
7/13/1955
--
7.7
65
36
31*
150
16
242
425
--
--
--
--
--
--
0
345730110485001
11/14/1955
--
8.2
61
38
39*
130
12
249
412
--
--
--
--
--
--
0
345730110485001
1/2/1957
--
7.7
59
38
4*
90
8
251
333
--
--
--
--
--
--
0.1
345730110485001
6/5/1957
--
7.5
66
29
2*
65
14
244
303
--
--
--
--
--
--
0.1
345730110485001
12/6/1957
--
7.5
65
30
9*
90
16
229
333
--
--
--
--
--
--
0.1
345730110485001
5/2/1958
--
7.7
63
33
3*
80
20
229
318
--
--
--
--
--
--
0.1
345730110485001
1/4/1959
--
8.1
62
30
2*
50
16
254
291
--
--
--
--
--
--
0.1
345730110485001
11/17/1959
--
7.3
66
37
9*
80
22
271
359
--
--
--
--
--
--
0.1
345730110485001
6/16/1960
--
7.6
70
34
1*
92
14
246
--
--
--
--
--
--
--
--
345730110485001
2/17/1961
--
7.6
68
33
33*
120
18
276
425
--
--
--
--
--
--
0.3
345730110485001
6/3/1963
--
7.7
87
16
42*
135
14
261
433
--
--
--
--
--
--
0 0.3
345730110485001
10/16/1964
--
7.7
118
0
23*
84
16
278
388
--
--
--
--
--
--
345730110485001
10/25/1965
--
7.5
68
11
76*
110
24
281
437
--
--
--
--
--
--
0.3
345730110485001
3/3/1966
587
7.6
66
36
7.1*
99
11
257
348
--
--
--
--
--
--
0.2
345730110485001
1/4/1979
570
7.5
68
34
8.9*
110
13
250
370
calcium-bicarbonate
--
--
--
--
--
0.1
345746110483701
1/10/1963
--
7.6
61
42
64*
106
91
--
537
--
--
--
--
--
--
0.3 0.4
345746110483701
1/10/1963
--
7.6
113
12
64*
111
106
249
539
--
--
--
--
--
--
345746110483701
10/16/1964
--
7.6
116
8
152*
100
214
300
748
--
--
--
--
--
--
0.3
345746110483701
10/25/1965
--
7.6
76
12
288*
250
254
300
1,030
--
--
--
--
--
--
0.2 0.2
3/1/1966
1,720
8.1
54
54
230
134
360
263
975
--
--
--
--
--
--
3/1/1966
1,610
8.2
55
54
200
128
315
260
888
--
--
--
--
--
--
0.1
345746110483701
3/2/1966
1,490
8
63
49
180
124
290
263
851
--
--
--
--
--
0.3
345750110482501
8/22/1953
--
7.5
68
38
87*
120
124
256
572
--
--
--
--
--
--
0
sodium-chloride
345750110482501
8/25/1953
--
7.5
60
34
79*
110
92
264
524
--
--
--
--
--
--
0
345750110482501
1/8/1955
--
7.7
75
29
166*
110
252
237
751
--
--
--
--
--
--
0
345750110482501
4/27/1955
--
7.9
75
39
167*
135
258
249
803
--
--
--
--
--
--
0
345750110482501
8/12/1955
--
7.9
76
43
169*
120
290
240
822
--
--
--
--
--
--
0
345750110482501
11/14/1955
--
8
74
40
228*
140
296
242
902
--
--
--
--
--
--
0
Conclusions 21
345746110483701 345746110483701
[Sample date: MM/DD/YYYY, month/day/year. Water type: Water type refers to major ion distribution and is only listed if used in the analysis (most recent complete sample). Abbreviations: SC, specific conductance; µS/cm, microsiemens per centimeter; Ca2+ , calcium; Mg+, magnesium; mg/L, milligrams per liter, Na+ + K+, sodium+potassium; SO42-, sulfate; Cl, chloride; HCO-, bicarbonate; TDS, total dissolved solids; --, no data available; E, estimate; <, less than]
USGS site number
Sample
SC
date
(µS/cm)
pH
Ca2+
Mg+
Na+ + K+
SO42-
Cl-
HCO-
TDS
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
Water type
Arsenic
Uranium
Barium
Lead
Copper
Fluoride
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(mg/L)
345750110482501
1/2/1957
--
7.6
80
37
297*
120
468
246
1,130
--
--
--
--
--
--
0.1
345750110482501
6/5/1957
--
7.6
78
38
163*
15
346
242
765
--
--
--
--
--
--
0.1
345750110482501
12/6/1957
--
7.6
79
34
171*
140
262
232
808
--
--
--
--
--
--
0.1
345750110482501
5/2/1958
--
7.9
77
38
207*
80
372
229
892
--
--
--
--
--
--
0.1
345750110482501
1/4/1959
--
8.1
79
34
267*
150
402
232
1,050
--
--
--
--
--
--
0.1 0.4
345750110482501
11/17/1959
--
7.2
90
39
254*
110
432
256
1,060
--
--
--
--
--
--
345750110482501
6/16/1960
--
7.6
86
41
243*
150
394
239
1,050
--
--
--
--
--
--
-
345750110482501
2/17/1961
--
7.6
86
40
164*
150
260
256
839
--
--
--
--
--
--
0.3
345750110482501
6/3/1963
--
7.8
136
7
331*
155
486
288
1,270
--
--
--
--
--
--
0
345750110482501
10/16/1964
--
7.7
135
0
382*
220
500
273
1,380
--
--
--
--
--
--
0.3
345750110482501
10/25/1965
345750110482501
3/2/1966
--
7.5
98
3
389*
325
390
251
1,340
--
--
--
--
--
--
0.4
2,100
8.1
60
45
310
140
500
183
1,150
--
--
--
--
--
--
0.2
345750110482501
3/3/1966
1,850
7.5
82
44
250
130
410
258
1,040
--
--
--
--
--
--
0.2
345750110482501
6/13/1989
2,500
7.7
83
39
350*
140
520
--
1,270
--
<1
--
<100
3
6
0.2
345750110482501
5/1/1990
2,400
7.7
72
35
310*
130
560
--
1,250
--
--
--
--
--
--
0.3
345750110482501
7/9/1991
2,300
7.7
73
38
340*
140
500
260
1,230
--
--
--
--
--
--
0.2 0.1
345750110482501
5/21/1992
2,270
7.7
74
44
350*
140
490
255
1,240
--
--
--
--
--
345750110482501
5/5/1993
2,450
--
80
40
360*
140
570
--
1,330
sodium-chloride --
--
--
--
--
--
0.3
345750110482501
5/26/1994
2,440
7.6
82
40
360*
130
570
--
1,320
--
--
--
--
--
--
0.2
345750110482501
5/4/1995
2,400
7.5
81
40
340*
130
510
--
1,240
--
--
--
--
--
--
0.2
345750110482501
5/7/1996
2,340
7.5
74
37
340*
130
510
--
1,230
--
--
--
--
--
--
0.2 0.17
345750110482501
4/17/1997
2,410
7.7
81.7
36.9
373*
139
615
--
1,390
--
--
--
--
--
--
345750110482501
6/1/1999
2,300
7.7
73.3
35.9
322*
131
528
--
1,230
--
--
--
--
--
--
0.18
345750110482501
6/13/2000
2,290
7.7
77
36.7
324*
135
517
--
E 1230
--
--
--
--
--
--
0.17 0.2
345750110482501
9/5/2001
2,350
7.5
81
39
330*
130
490
--
1,210
--
--
--
--
--
--
345750110482501
5/23/2007
1,110
7.8
80.2
36.4
323*
135
526
--
E 1240
--
0.68
--
29.2
0.13
1.5
0.2
345750110482501
6/18/2008
2,400
7.6
80
36.2
326*
137
506
--
E 1220
--
0.79
--
27
0.352
11.4
0.22
345750110482701
11/21/1933
--
--
67
37
3.5
105
11
246
--
calcium-bicarbonate
--
--
--
--
--
0
345750110482801
3/2/1966
2,100
8.1
60
45
310
140
500
183
--
345750110482801
5/4/1966
1,870
7.6
80
42
250
132
395
262
--
-sodium-chloride
--
--
--
--
--
0.2
--
--
--
--
--
0.1
345757110484301
11/15/1953
--
7.4
60
40
161*
140
212
276
762
--
--
--
--
--
--
0
345757110484301
1/8/1955
--
7.7
70
37
93*
100
246
276
689
--
--
--
--
--
--
0
345757110484301
4/27/1955
--
8.1
66
42
140*
125
208
264
714
--
--
--
--
--
--
0
22 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona
Table 2. Selected field parameters and water-chemistry data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).—Continued
Table 2. Selected field parameters and water-chemistry data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).—Continued [Sample date: MM/DD/YYYY, month/day/year. Water type: Water type refers to major ion distribution and is only listed if used in the analysis (most recent complete sample). Abbreviations: SC, specific conductance; µS/cm, microsiemens per centimeter; Ca2+ , calcium; Mg+, magnesium; mg/L, milligrams per liter, Na+ + K+, sodium+potassium; SO42-, sulfate; Cl, chloride; HCO-, bicarbonate; TDS, total dissolved solids; --, no data available; E, estimate; <, less than]
USGS site number
Sample
SC
date
(µS/cm)
pH
Ca2+
Mg+
Na+ + K+
SO42-
Cl-
HCO-
TDS
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
Water type
Arsenic
Uranium
Barium
Lead
Copper
Fluoride
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(mg/L)
345757110484301
7/13/1955
--
7.9
66
49
117*
120
202
254
688
--
--
--
--
--
--
0
345757110484301
11/14/1955
--
7.9
63
47
143*
120
226
264
736
--
--
--
--
--
--
0.2
345757110484301
1/2/1957
--
7.6
62
44
140*
140
200
256
720
--
--
--
--
--
--
0.1
345757110484301
6/5/1957
--
7.5
66
46
169*
95
284
266
798
--
--
--
--
--
--
0.1
345757110484301
12/6/1957
--
7.5
76
35
147*
140
216
244
742
--
--
--
--
--
--
0.1
345757110484301
5/2/1958
--
7.6
67
38
115*
80
206
242
631
--
--
--
--
--
--
0.1
345757110484301
1/4/1959
--
7.9
68
44
193*
160
258
290
872
--
--
--
--
--
--
0.1
345757110484301
11/17/1959
--
7.3
70
43
133*
90
226
276
708
--
--
--
--
--
--
0.5
345757110484301
6/16/1960
--
7.6
75
44
144*
135
224
271
769
--
--
--
--
--
--
0.1
345757110484301
2/17/1961
--
7.7
78
37
158*
140
224
276
793
--
--
--
--
--
--
0.4
345757110484301
6/3/1963
--
7.7
101
22
215*
135
312
276
931
--
--
--
--
--
--
0
345757110484301
10/16/1964
--
7.7
125
7
202*
120
294
293
903
--
--
--
--
--
--
0.3
345757110484301
11/17/1964
1,370
8.6
38
44
180
123
280
150
--
--
--
--
--
--
--
0.2
345757110484301
10/25/1965
--
7.5
92
10
294*
230
308
288
807
--
--
--
--
--
0.3
--
--
--
--
--
0.4
--
--
--
--
--
0.7
sodium-chloride
345800111184701
8/4/1995
530
7.8
54
22
18.4
23
27
--
307
345821110295101
3/3/1970
6,670
--
320
58
1,100*
830
1,760
164
--
345840110513001
8/22/1995
570
7.7
67
31
9
98
9
--
342
--
--
--
--
--
--
0.2
345859110381801
6/30/2005
6,250
7.2
92.9
65.3
1,148.58
301
1,750
284
E 3500
--
<0.6
--
23.3
0.25
1.4
0.32
<1.2
0.32
345859110381801
6/28/2006
6,390
7.4
90.6
58.9
1,108.08
296
1,750
248
E 3430
345859110381801
9/20/2017
6,110
7.2
--
--
--
--
--
--
--
345859110381801
6/19/2019
6,040
7.1
--
--
--
--
--
--
--
345906110383301
6/30/2005
6,300
7.3
98.3
68.1
1,188.86
299
1,710
280
E 3510
345906110383301
6/28/2006
6,180
7.6
89.8
57.2
1,087.97
288
1,680
280
E 3340
345910110352001
3/8/1967
4,500
7.2
280
39
730
680
1,060
274
2,930
345910110352001
8/12/1992
4,650
7.9
80
37
816
220
1,200
282
2,510
345942110462401
11/20/1933
--
--
218
63
340
632
510
198
--
-sodium-chloride
sodium-chloride
E
0.75
--
23.4
--
--
--
--
--
--
--
--
--
--
--
--
--
--
1.4
0.33
0.18
E
<0.6
--
29
0.75
--
28.2
<0.08
E 0.36
0.32
--
--
--
--
--
--
0.6
--
--
--
--
--
0.2
--
--
--
--
--
--
0 0.3
sodium-chloride sodium-chloride
0.14
345942110462401
3/2/1966
2,080
7.5
78
39
300
140
470
246
--
sodium-chloride
--
--
--
--
--
350002110355501
6/16/1972
5,870
7.5
150
64
1007.5
52
1,500
267
3,380
sodium-chloride
--
--
--
--
--
0.2
350030110420901
4/16/1971
2,380
--
64
26
386*
65
690
--
--
--
--
--
--
--
0.33
--
350040110384401
6/13/1966
--
--
105
49
920*
300
1,360
283
--
sodium-chloride
--
--
--
--
--
0.3
350042110425601
2/8/1979
4,400
--
70
38
773.9
100
1,200
200
2,290
sodium-chloride
--
--
--
--
--
0.2
350050110424801
1/21/1954
--
7.6
53
38
630
120
920
260
2,040
sodium-chloride
--
--
--
--
--
0.2
Conclusions 23
--
[Sample date: MM/DD/YYYY, month/day/year. Water type: Water type refers to major ion distribution and is only listed if used in the analysis (most recent complete sample). Abbreviations: SC, specific conductance; µS/cm, microsiemens per centimeter; Ca2+ , calcium; Mg+, magnesium; mg/L, milligrams per liter, Na+ + K+, sodium+potassium; SO42-, sulfate; Cl, chloride; HCO-, bicarbonate; TDS, total dissolved solids; --, no data available; E, estimate; <, less than]
USGS site number
Sample
SC
date
(µS/cm)
pH
Ca2+
Mg+
Na+ + K+
SO42-
Cl-
HCO-
TDS
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
Water type
Arsenic
Uranium
Barium
Lead
Copper
Fluoride
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(mg/L)
350050110424801
8/12/1992
3,500
8.1
58
37
572.4
98
920
--
1,820
--
--
--
--
--
--
0.1
350051110430001
1/9/1979
4,500
7.9
64
36
854.5
110
1,300
230
2,490
--
--
--
--
--
--
0.2
350051110430001
8/12/1992
4,550
8
70
38
802.9
130
1,200
227
2,360
sodium-chloride
--
--
--
--
--
0.1
350124110450901
11/2/1978
2,750
--
92
34
412.3
170
670
230
1,500
sodium-chloride
--
--
--
--
--
0.2
350125110450801
11/28/1967
2,760
7.5
84
40
430
155
665
244
1,500
--
--
--
--
--
--
0.4
350125110450801
1/21/1972
2,500
7.8
80
38
373*
110
750
192
--
sodium-chloride
--
--
--
--
--
--
350150111040001
6/22/1966
652
7.2
50
49
17
154
12
230
417
calcium-bicarbonate
--
--
--
--
--
0.1
350158110403601
2/27/1979
6,650
7.7
79
60
1212
300
1,800
190
3,550
sodium-chloride
--
--
--
--
--
0.2
350205110513301
11/11/1933
--
--
79
47
240
135
392
264
--
--
--
--
--
--
--
0
350205110513301
5/11/1966
1,890
7.3
73
47
260
135
413
265
--
--
--
--
--
--
--
0.1
350205110513301
10/5/1978
1,880
7.3
76
42
241.9
150
390
250
1,030
calcium-bicarbonate
--
--
--
--
--
0.2
350210110560001
6/18/1966
512
8
--
--
--
--
--
--
309
--
--
--
--
--
--
0.2
350210110560001
11/28/1967
814
7.4
80
38
27*
123
60
248
465
calcium-bicarbonate
--
--
--
--
--
0.4
350210111011001
11/1/1966
992
7.7
103
54
46
358
34
194
706
--
--
--
--
--
--
0.3
--
--
--
--
--
--
0.2
--
--
--
--
--
<0.1 0
350210111011001
6/22/1978
950
7.4
110
49
38.8
320
37
190
660
350210111011001
8/10/1992
1,000
7.8
110
47
39.6
340
37
181
674
350400111004001
11/20/1933
--
--
94
44
16
226
21
224
512
350400111004001
6/10/1966
778
7.5
91
40
18
205
21
230
502
350400111004001
8/2/1995
720
7.9
72
35
23.3
200
20
--
435
350407110332101
5/2/1966
12,100
11.1
--
--
--
--
--
--
6,580
350414110412201
4/30/1965
3,390
7.4
57
26
620
200
840
254
2,200
calcium-sulfate --
--
--
--
--
--
--
--
--
--
--
0.2
--
--
--
--
--
--
0.1
--
--
--
--
--
--
0.5
--
--
--
--
--
0.7 0.6
calcium-magnesium-chloride sulfate
sodium-chloride
350417110413301
4/30/1965
3,370
7.6
51
27
620
190
840
246
2,190
sodium-chloride
--
--
--
--
--
350420110590001
6/18/1966
805
7.5
101
34
28
212
29
236
537
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.3
350427110512501
3/8/1954
1,420
--
76
42
160
132
250
258
798
sodium-chloride
--
--
--
--
--
0.6 0.1
350428110484901
10/11/1965
3,400
7.9
100
42
584.9
224
898
231
1,970
350428110484901
9/21/1966
3,800
7.2
158
50
574*
328
930
238
2,170
350428110484901
8/16/1995
3,300
7.6
70
44
551.8
160
840
--
1,800
350440110411801
4/30/1965
2,560
7.6
78
25
430
160
595
272
--
-sodium-chloride -sodium-chloride
--
--
--
--
--
--
--
--
--
--
0.2
--
--
--
--
--
0.2
--
--
--
--
--
0.6
350446110502501
8/22/2006
2,870
8.1
75.5
35.6
429.99
145
698
239
1,510
sodium-chloride
1.2
--
28.8
1.28
2.3
0.19
350447110502301
10/25/1978
2,850
7.5
84
38
462.6
160
760
240
1,640
sodium-chloride
--
--
--
--
--
0.2
350450110522001
8/19/1966
1,340
7.5
78
40
160
153
227
264
801
350450110522001
10/30/1978
1,300
--
68
37
161.8
140
240
250
783
350451110494901
8/21/1954
2,800
7.8
74.4
41.8
550
175
830
244
--
-sodium-chloride --
--
--
--
--
--
--
--
--
--
--
--
0.2
--
--
--
--
--
0.1
24 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona
Table 2. Selected field parameters and water-chemistry data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).—Continued
Table 2. Selected field parameters and water-chemistry data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).—Continued [Sample date: MM/DD/YYYY, month/day/year. Water type: Water type refers to major ion distribution and is only listed if used in the analysis (most recent complete sample). Abbreviations: SC, specific conductance; µS/cm, microsiemens per centimeter; Ca2+ , calcium; Mg+, magnesium; mg/L, milligrams per liter, Na+ + K+, sodium+potassium; SO42-, sulfate; Cl, chloride; HCO-, bicarbonate; TDS, total dissolved solids; --, no data available; E, estimate; <, less than]
USGS site number
Sample
SC
date
(µS/cm)
pH
Ca2+
Mg+
Na+ + K+
SO42-
Cl-
HCO-
TDS
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
350451110494901
11/3/1958
2,810
7.3
76
39
460
152
705
241
1,560
350451110494901
11/13/1958
2,810
7.6
76
38
460
146
705
243
1,560
Water type -sodium-chloride
Arsenic
Uranium
Barium
Lead
Copper
Fluoride
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(mg/L)
--
--
--
--
--
0.4
--
--
--
--
--
0.3
350518110554801
11/20/1933
750
--
78
43
33
157
63
232
488
--
--
--
--
--
--
0
350518110554801
3/12/1953
808
--
78
40
33
143
64
233
--
--
--
--
--
--
--
0.2
350518110554801
5/12/1966
799
7.6
76
40
36
147
62
236
490
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.1
calcium-magnesium-chloride sulfate
350538110560401
12/5/1978
750
7.5
88
34
38.7
170
62
210
508
350600111015001
7/8/1946
891
--
105
45
31
280
26
225
600
--
--
--
--
--
--
0.2
--
--
--
--
--
0
350600111015001
5/1/1966
890
7.5
106
44
30
281
24
224
608
calcium-sulfate
--
--
--
--
--
0.2
350618111015601
8/10/1992
880
7.8
110
42
22.5
270
25
206
584
calcium-sulfate
--
--
--
--
--
< 0.1
350637110485401
2/26/1934
3,510
--
87
46
720
176
1,120
262
2,280
--
--
--
--
--
0
350637110485401
12/5/1978
3,600
7.8
36
23
643.9
170
1,000
40
1,890
350653110573801
5/11/1966
975
7.6
87
42
63
193
100
223
--
-sodium-chloride
--
--
--
--
--
0.2
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.1
350700111054001
9/18/1967
407
7.6
55
20
2.3
7
2.5
264
231
calcium-bicarbonate
--
--
--
--
--
0.1
350700111054001
8/2/1995
410
7.7
49
21
4.8
10
1.4
--
225
--
--
--
--
--
--
0.1
350706111014701
11/20/1933
--
--
108
50
25
295
26
226
--
--
--
--
--
--
--
0
350706111014701
3/3/1953
859
--
98
47
20
269
22
207
--
--
--
--
--
--
--
0.3
350706111014701
10/12/1978
850
7.6
89
41
26.7
240
23
200
529
--
--
--
--
--
--
0.2
350706111014701
2/28/2005
860
7.5
107
45.5
27.84
265
21.7
217
587
--
0.5
--
12.6
0.101
1.1
0.23
1
0.22
--
0.2
350706111014701
2/28/2005
856
7.5
106
44.9
27.78
265
21.6
207
E 582
350756111154001
9/18/1967
607
7.4
56
33
16
126
23
178
354
calcium-sulfate --
0.5
--
12.4
--
--
--
E 0.075 --
350756111154001
7/12/1978
600
7.8
58
31
23
120
22
170
352
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.2
350810111105001
9/18/1967
1,080
7.2
101
58
35
345
51
164
692
calcium-sulfate
--
--
--
--
--
0.2
350816110531001
1/3/1979
1,220
7.8
95
47
112.5
190
180
240
755
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.1
350839111005301
5/12/1966
832
7.5
86
45
36
253
36
198
565
calcium-sulfate
--
--
--
--
--
0.1
350845110540101
5/11/1966
1,360
7.5
98
50
110
225
189
236
800
--
--
--
--
--
0
350845110540101
12/5/1978
1,300
7.5
79
46
122.5
250
220
170
806
--
--
--
--
--
0.1
350909111165401
9/18/1967
454
7.5
48
27
3.9
32
8
236
251
--
--
--
--
--
--
0.2
-calcium-magnesium-chloride sulfate
7/12/1978
450
7.4
44
27
9.7
45
7.6
210
254
calcium-bicarbonate
--
--
--
--
--
0.2
2/9/2005
1,230
8.3
88.6
43.5
120.15
267
125
217
767
--
1.3
--
25.3
0.082
2.5
0.32
350957110562601
2/24/2005
1,160
7.9
102
52.8
77.53
250
123
232
E 734
--
0.4
--
16.9
1.3
0.25
350957110562601
2/24/2005
1,160
7.8
104
53.5
79.87
251
123
220
734
0.5
--
19.1
1.1
0.26
calcium-magnesium-chloride sulfate
E 0.04 <0.08
Conclusions 25
350909111165401 350957110562601
[Sample date: MM/DD/YYYY, month/day/year. Water type: Water type refers to major ion distribution and is only listed if used in the analysis (most recent complete sample). Abbreviations: SC, specific conductance; µS/cm, microsiemens per centimeter; Ca2+ , calcium; Mg+, magnesium; mg/L, milligrams per liter, Na+ + K+, sodium+potassium; SO42-, sulfate; Cl, chloride; HCO-, bicarbonate; TDS, total dissolved solids; --, no data available; E, estimate; <, less than] Sample
SC
date
(µS/cm)
350957110562601
3/23/2005
1,180
350958110562201
2/9/2005
USGS site number
Ca2+
Mg+
Na+ + K+
SO42-
Cl-
HCO-
TDS
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
7.3
106
55.1
75.08
247
121
--
E 742
1,200
7.7
107
50.7
82.6
253
129
216
742
pH
351001110562601
5/11/1954
1,170
--
100
45
85
260
130
220
736
351001110562601
6/6/1973
1,180
7.9
100
44
82.4
280
130
200
760
Water type -calcium-magnesium-chloride sulfate -calcium-magnesium-chloride sulfate
Arsenic
Uranium
Barium
Lead
Copper
Fluoride
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(mg/L)
<2
2.45
16.5
1
--
15
0.08
E 0.052
<2
0.25
2.4
0.23
--
--
--
--
--
0.2
--
--
--
--
--
0.35
351022111061801
2/21/2005
1,180
8.1
122
56.7
58.82
385
64.9
194
797
--
0.2
--
14.3
0.108
1.6
0.21
351022111061801
2/25/2005
1,180
7.6
125
59.2
61.6
386
65.4
186
803
--
0.5
--
15.7
0.346
1.5
0.22
351022111061801
2/25/2005
1,190
7.6
127
59.5
61.51
386
65.4
188
808
0.6
--
14.8
0.66
1.8
0.23
3.1
0.2
1.4
0.24
3
0.22
calcium-sulfate
351023111062002
2/13/2005
1,170
8
110
51.6
57.03
385
65.2
193
E 779
--
0.2
--
19.4
351023111062002
2/19/2005
1,160
7.6
124
57.8
60.67
384
66.1
172
E 793
--
0.3
--
14.9
351023111062002
2/19/2005
1,170
7.6
124
58.1
60.06
383
62.7
176
E 789
0.4
--
15.8
351023111062002
3/15/2005
1,150
7.3
127
59.2
351052110491701
10/12/1955
8,340
7.2
130
52
1,700
59.61
calcium-sulfate
E 0.071 E 0.054 E 0.064
379
64.6
--
E 791
--
<2
4.6
11.8
0.177
<2
0.21
450
2,510
300
5,010
--
--
--
--
--
--
0.6
351052110491701
6/6/1973
8,620
8
100
44
1,706.30
380
2,600
220
5,030
sodium-chloride
--
--
--
--
--
0.53
351053110332501
4/7/1964
8,330
7.8
190
10
1,800
1,470
1,960
82
5,470
sodium-chloride
--
--
--
--
--
1.3
351122111101301
9/7/1950
1,160
--
--
--
--
--
--
--
753
--
--
--
--
--
--
0.2
351142110563401
9/7/1950
1,470
--
98
53
140
246
218
235
881
--
--
--
--
--
--
0.2 0.15
351142110563401
9/8/1965
1,530
8.1
98.2
49.9
144.32
232
220
192
944
351144111161201
9/18/1967
633
7.4
54
34
20
135
30
166
368
351144111161201
3/7/1979
610
7.7
51
35
26.5
180
28
150
422
351214111022101
4/22/2005
841
7.4
98.3
42.6
29.41
255
21.6
200
E 561
calcium-magnesium-chloride sulfate -calcium-magnesium-chloride sulfate --
--
--
--
--
--
--
--
--
--
--
0.3
--
--
--
--
--
0.3
E 0.2
--
16.2
1
0.25
E 0.061
351214111022101
4/22/2005
842
7.4
100
43.5
29.32
255
21.7
201
E 563
calcium-sulfate
0.2
--
14.8
0.13
1.1
0.26
351215111021701
9/7/1950
840
--
90
48
23
264
22
202
--
calcium-sulfate
--
--
--
--
--
0.2
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.4
--
--
--
--
--
0.2
--
--
--
--
--
0.25
351238111084101
4/22/1955
1,020
7.3
67
40
100
312
48
190
--
351442110581601
9/8/1965
1,190
8
102
43
77.6
222
107
198
744
351442110581601
4/19/1973
1,120
7.9
104
41.3
68.7
203
112
196
752
351448111012701
9/8/1965
1,020
8
98.2
38
57.9
249
76
177
676
--
--
--
--
--
0.2
351448111012701
10/11/1978
990
7.7
91
40
59
250
72
210
629
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.2
351519111120701
11/20/1953
346
--
41
20
4.1
11
4.5
211
199
calcium-bicarbonate
--
--
--
--
--
0.4
351525111035801
11/2/1953
846
--
94
44
26
235
34
217
555
--
--
--
--
--
--
0.6
-calcium-magnesium-chloride sulfate --
26 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona
Table 2. Selected field parameters and water-chemistry data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).—Continued
Table 2. Selected field parameters and water-chemistry data for Coconino aquifer groundwater sites included in this study, northeastern Arizona (U.S. Geological Survey, 2023).—Continued [Sample date: MM/DD/YYYY, month/day/year. Water type: Water type refers to major ion distribution and is only listed if used in the analysis (most recent complete sample). Abbreviations: SC, specific conductance; µS/cm, microsiemens per centimeter; Ca2+ , calcium; Mg+, magnesium; mg/L, milligrams per liter, Na+ + K+, sodium+potassium; SO42-, sulfate; Cl, chloride; HCO-, bicarbonate; TDS, total dissolved solids; --, no data available; E, estimate; <, less than]
USGS site number
Sample
SC
date
(µS/cm)
pH
Ca2+
Mg+
Na+ + K+
SO42-
Cl-
HCO-
TDS
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
(mg/L)
351525111035801
9/8/1965
880
8.2
90.2
40.1
36.34
253
29.4
167
590
351739111001501
9/7/1965
1,430
--
98.2
49.9
132.64
226
194
205
906
351739111001501
3/17/1966
--
--
96.2
47.4
129.98
239
198
197
880
351748110592301
9/8/1965
1,740
7.6
110
51
183.8
245
280
240
1,080
351748110592301
3/17/1966
1,680
--
98
50
182
260
290
220
1,040
Water type calcium-sulfate -calcium-magnesium-chloride sulfate -calcium-magnesium-chloride sulfate
Arsenic
Uranium
Barium
Lead
Copper
Fluoride
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(µg/L)
(mg/L)
--
--
--
--
--
0.25
--
--
--
--
--
0.25
--
--
--
--
--
0.15
--
--
--
--
--
0.3
--
--
--
--
--
0.3
351749111003401
4/5/1959
1,400
7.4
100
46
120
240
200
230
847
--
--
--
--
--
--
0.4
351749111003401
9/7/1965
1,470
7.8
96
50
133.3
240
200
210
908
--
--
--
--
--
--
0.2
351749111003401
6/25/1969
1,390
7.8
93
45
142
190
200
230
860
--
--
--
--
--
0.1
351758111000901
3/5/1958
--
8.5
--
--
--
--
--
--
--
--
--
--
--
--
--
--
351758111000901
7/11/1960
--
9.2
--
--
--
--
--
--
--
--
--
--
--
--
--
--
351758111000901
3/17/1966
1,380
--
96
49
132
240
200
200
890
351804111060301
8/19/1951
1,840
--
102
49
210
258
340
209
1,080
calcium-magnesium-chloride sulfate
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.2
--
--
--
--
--
--
0.2
351804111060301
9/8/1965
1,900
8.1
92.2
46.2
218.93
251
339
141
1,130
--
--
--
--
--
--
0.2
351804111060301
3/3/1967
1,840
--
77.2
44.4
227.74
288
345
188
1,160
--
--
--
--
--
--
0.2
351804111060301
11/2/1972
1,750
8.1
72.1
47.4
211.35
237
345
118
1,090
351815110505001
5/30/1959
8,350
7.6
430
130
1,500
910
2,600
276
5,800
sodium-chloride
--
--
--
--
--
0.18
--
--
--
--
--
--
--
--
--
--
--
--
--
--
--
--
--
--
--
0.2 0.2
351815110505001
5/31/1959
8,500
7.7
450
110
1,500
900
2,600
246
5,800
351818110054901
4/14/1953
1,030
--
94
44
63
230
100
208
646
351818110054901
9/7/1965
1,380
8
102
46.2
111.05
236
185
204
870
calcium-magnesium-chloride sulfate
--
--
--
--
--
calcium-magnesium-chloride sulfate
--
--
--
--
--
0.2
calcium-sulfate
--
--
--
--
--
0.3 0.2
351831111054501
9/7/1965
1,100
8
90.2
42.6
71.58
216
107
206
702
351930111184801
7/18/1965
756
7.5
49
53
33
221
25
182
--
sodium-chloride
351930111184801
7/31/1995
740
8
54
43
34.9
210
20
--
455
--
--
--
--
--
352117111132901
7/6/1972
2,710
8.5
106
48.6
371.65
301
597
161
1,710
sodium-chloride
--
--
--
--
--
--
0.3
352119111132901
6/10/1951
2,610
--
104
59
360
275
598
201
1,510
sodium-chloride
--
--
--
--
--
0.2
352226111081401
4/7/1955
2,020
7.8
83
62
260
262
395
235
1,190
sodium-chloride
--
--
--
--
--
0.2
*Sodium only is reported.
Conclusions 27
28 Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona
References Cited Adams, D.K., and Comrie, A.C., 1997, The North American monsoon: Bulletin of the American Meteorological Society, v. 78, no. 10, p. 2197–2213. Anderson, M.J., Gorley, R.N., and Clarke, K.R., 2008, PERMANOVA+ for PRIMER—Guide to software and statistical methods: Plymouth, United Kingdom, PRIMER-E, Ltd., 214 p. Bahr, C.W., 1962, The Holbrook anticline, Navajo County, Arizona, in Weber, R.H., and Peirce, H.W., eds., Guidebook of the Mogollon Rim region, east-central Arizona: New Mexico Geological Society 13th Field Conference Guidebook, p. 118–122. Bills, D.J., and Flynn, M.E., 2002, Hydrogeologic data for the Coconino Plateau and adjacent areas, Coconino and Yavapai Counties, Arizona: U.S. Geological Survey Open-File Report 2002–265, 29 p. [Also available at https://doi.org/ 10.3133/ofr02265.] Bills, D.J., Flynn, M.E., and Monroe, S.A., 2007, Hydrogeology of the Coconino Plateau and adjacent areas, Coconino and Yavapai Counties, Arizona: U.S. Geological Survey Scientific Investigations Report 2005–5222, 101 p., 4 plates. [Also available at https://doi.org/10.3133/ sir20055222.] Bills, D.J., Truini, M., Flynn, M.E., Pierce, H.A., Catchings, R.D., and Rymer, M.J., 2000, Hydrogeology of the regional aquifer near Flagstaff, Arizona, 1994–97: U.S. Geological Survey Water-Resources Investigations Report 00–4122, 142 p. [Also available at https://pubs.usgs.gov/wri/2000/ 4122/report.pdf.] Blakey, R.C., 1990, Stratigraphy and geologic history of Pennsylvanian and Permian rocks, Mogollon Rim region, central Arizona and vicinity: Geological Society of America Bulletin, v. 102, no. 9, p. 1189–1217. Clarke, K.R., Gorley, R.N., Somerfield, P.J., and Warwick, R.M., 2014, Change in marine communities—An approach to statistical analysis and interpretation (3d ed.): Plymouth, United Kingdom, PRIMER-E, Ltd., 260 p. Conway, B.D., and Cook, J.P., 2013, Monitoring evaporite karst activity and land subsidence in the Holbrook Basin, Arizona using Interferometric Synthetic Aperture Radar (InSAR): National Cave and Karst Research Institute, p. 187–194. Cooley, M.E., Harshbarger, J.W., Akers, J.P., Hardt, W.F., and Hicks, O.N., 1969, Regional hydrogeology of the Navajo and Hopi Indian Reservations, Arizona, New Mexico, and Utah: U.S. Geological Survey Professional Paper 521-A, 61 p.
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Manuscript approved for publication April 23, 2025 Tacoma and Moffett Field Publishing Service Centers Edited by Jeff Suwak and Vanessa Ball Illustration support by JoJo Mangano Layout and design by Luis Menoyo
Jones—Assessment of Water Chemistry of the Coconino Aquifer in Northeastern Arizona—SIR 2025–5038
ISSN 2328-0328 (online) https://doi.org/10.3133/sir20255038