Groundwater Salinity: Applying the Specific Conductance and Water Type Proxy
R Blaine McCleskey, Charles A Cravotta1, Katherine J Knierim2
1Cravotta Geochemical Consulting, Bethel, PA, 19507.
Ground Water
|December 5, 2025
Summary
Accurate groundwater salinity estimation is crucial for water supply. New proxies using specific conductance and major-ion water type improve total dissolved solids (TDS) estimates, overcoming limitations of common methods.
Area of Science:
- Earth Science
- Environmental Science
- Hydrogeology
Background:
- Groundwater is vital for water supplies, but salinity can limit its use.
- Total dissolved solids (TDS) is a key measure of salinity, often estimated using specific conductance (SC).
- Existing TDS-SC proxies are inaccurate for groundwater due to non-linear relationships and varying major-ion composition.
Purpose of the Study:
- To develop and validate new proxy methods for estimating groundwater TDS and salinity.
- To improve the accuracy of salinity assessments in groundwater resources.
Main Methods:
- Developed nonlinear log-log proxy relationships using SC and five major-ion groundwater types.
- Utilized a large dataset of 149,059 discrete groundwater samples for proxy development.
- Validated proxies against discrete TDS and salinity measurements.
Main Results:
- The new groundwater proxies provide accurate TDS and salinity estimates (median percent difference <±0.8%).
- Proxies are effective across a wide SC range (up to 200 mS/cm).
- The method is rapid, cost-effective, and suitable for on-site measurements.
Conclusions:
- The developed proxies offer a significant improvement for estimating groundwater salinity compared to traditional methods.
- These tools enhance the utility of groundwater resources by enabling more reliable salinity assessments.
- The method supports better management and utilization of groundwater supplies globally.
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