CASE STUDY

Coastal Fresh Resources Protected From the Impacts of Long-term risks minimized through expertise developing density-dependent groundwater flow and solute transport SEAWAT model

CHALLENGE Coastal face saltwater intrusion threat Assess the nature and extent of the threat The Big Cypress Basin, a coastal freshwater ecosystem located in Southern Florida along the of saltwater intrusion into the coastal Gulf of Mexico , encompasses over 2,400 square miles and includes Naples, a city of ecosystem and the public in about 22,000 people. The very flat basin area is only several feet above sea level. A basin water light of rapid population growth, increasing resources study conducted by a local water management agency concluded that sea level water supply demands, and . is expected to rise 5 to 20 inches during the next 50 years. The higher sea levels, along with projected increases in population and water supply use, will accelerate saltwater intrusion SOLUTION into the area’s aquifers that currently provide water for the region. Design a groundwater withdrawal scenario that prevents saltwater intrusion and Schlumberger Water Services was hired to help predict the position and movement of the enables water managers to establish and salt water interface along the coast in response to the rising sea level and reliable, long-term permitting requirements. increasing groundwater withdrawals. RESULTS Schlumberger experts predict risk of saltwater intrusion Demonstrated that saltwater intrusion To accurately predict the position and movement of the interface between fresh water and is a real threat to the study area by using salt water, Schlumberger used the density-dependent groundwater flow and solute transport a GIS-based database that facilitated a SEAWAT model developed initially by the U.S. Geological Survey. quick review of water level and quality data. A long-term salinity monitoring Schlumberger collected the existing water level and water quality data for the surficial strategy that included monitoring system and confirmed that the data were adequate and reliable for calibration and locations was recommended. verification purposes. Within a short timeframe, Schlumberger developed a 3D groundwater flow SEAWAT model, which covered the major water supply well fields and the coastal watershed for the study area (Figure 1). The model used finer layer thicknesses to gain a higher resolution of the major

Figure 1: Three-dimensional view of model domain

Water Services CASE STUDY: Coastal fresh groundwater resources protected from the impacts of climate change.

water-producing aquifer, the lower Tamiami aquifer. The model was then calibrated for flow and solute transport using 2 years of transient water level and quality data.

The simulated effects of rising sea levels and human activities (groundwater withdrawals, etc.) clearly showed that saltwater intrusion (Figure 2) was a potential threat to the study area. In an area where the coastal ridge is physically absent and beyond, Schlumberger showed how a twofold increase to the existing groundwater withdrawal rates at the City of Naples Coastal Ridge Wellfield (Figure 3) would result in a significant saltwater intrusion impact along the west coast. Schlumberger provided model to define long-term water management strategy By modeling decreased groundwater withdrawals near the coast along with increased brackish groundwater withdrawals from deeper aquifers (Figure 4), Schlumberger enabled the basin’s water managers to strategically define future allocation of sustainable additional groundwater withdrawals.

The modeling and simulation GIS-based database developed by Schlumberger allowed the water managers to quickly review water level and water quality data (Figure 3), thus facilitating the management of strategies in the long term. Schlumberger recommended strategic locations of future water quality monitoring to detect salinity changes in the coastal aquifer and provide reliable, long-term data.

Figure 2. Extent of predicted saltwater encroachment due to sea level rise (1 ft)

Figure 3: A GIS-based Interactive Database that allows quick demonstration of hydrogeological conditions (or saltwater intrusion situations) at the study area.

Figure 4: Area of saltwater encroachment due to increased groundwater pumping

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