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Analytic Element Modeling of Steady Interface Flow in Multilayer Aquifers Using AnAqSim.

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This study introduces the AnAqSim analytic element modeling approach for simulating sharp fresh-salt interfaces in 3D groundwater systems. It offers faster model construction and large-scale interface configuration guidance compared to traditional methods.

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Area of Science:

  • Hydrogeology
  • Computational modeling
  • Water resource management

Background:

  • Simulating groundwater flow with sharp fresh-salt interfaces is crucial for coastal aquifer management.
  • Existing numerical methods can be computationally intensive and slow for large-scale applications.
  • The analytic element method offers a potential alternative for efficient interface modeling.

Purpose of the Study:

  • To present and validate the AnAqSim analytic element modeling approach for simulating steady-state, sharp-interface groundwater flow in multilayered aquifer systems.
  • To demonstrate the efficiency and applicability of this method for large-scale interface configuration.
  • To provide a viable alternative to traditional numerical modeling techniques.

Main Methods:

  • Implementation of the analytic element modeling approach in AnAqSim software.
  • Utilizing subdomains, multiple layers, and discharge potentials for shallow interface flow.
  • Incorporating a transition to a thin fixed minimum fresh water thickness mode for convergence.
  • Comparison and validation against SEAWAT and SWI/MODFLOW.

Main Results:

  • AnAqSim successfully simulates steady groundwater flow with a sharp fresh-salt interface in 3D aquifer systems.
  • The analytic element approach allows for rapid model construction and provides insights into large-scale interface geometry.
  • The thin fixed minimum fresh water thickness mode facilitates convergence to a steady interface position.

Conclusions:

  • The AnAqSim analytic element method is an efficient and effective tool for simulating sharp-interface groundwater flow in multilayered systems.
  • This approach offers advantages in speed and ease of model construction for large-scale hydrogeological investigations.
  • The method provides valuable guidance for managing coastal wellfields and understanding freshwater-saline water dynamics.