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Improved water table dynamics in MODFLOW
1Center for the Geophysical Investigation of the Shallow Subsurface, Boise State University, Boise, ID 83725, USA. tomc@cgiss.boisestate.edu
Ground Water
|April 12, 2005
Summary
Simulations using MODFLOW are more accurate when the model node is placed at the dynamic water table, especially in unconfined aquifers. This adjustment improves accuracy in upper aquifer regions but slightly increases computation time.
Area of Science:
- Hydrogeology
- Numerical Modeling
- Computational Fluid Dynamics
Background:
- Standard block-centered finite-difference models like MODFLOW place cell nodes at cell centers.
- Simulating dynamic water tables requires accurate node placement for improved model performance.
- Existing models may lack precision in representing complex water table behaviors.
Purpose of the Study:
- To enhance the accuracy of groundwater flow simulations, particularly for dynamic water tables.
- To modify the MODFLOW model to position cell nodes at the water table in convertible cells.
- To evaluate the impact of this node placement modification on simulation accuracy and convergence.
Main Methods:
- Modified the Layer Property Flow (LPF) package of MODFLOW-2000.
- Implemented a change to position cell nodes at the water table for cells containing a dynamic water table.
- Compared simulation results with the standard node-at-center approach, focusing on partially penetrating wells in unconfined aquifers.
Main Results:
- Improved simulation accuracy in the upper regions of unconfined aquifers when pumping from partially penetrating wells.
- Introduced nonlinearity into the flow equations, leading to a slight increase in convergence time (approximately 7% in the demonstration).
- Accuracy gains are most significant where vertical flow is dominated by water table movement, less so with steep water table gradients.
Conclusions:
- Positioning cell nodes at the water table enhances the accuracy of MODFLOW simulations for dynamic water table conditions.
- The modification is particularly beneficial for unconfined aquifers and scenarios involving partially penetrating wells.
- While computational cost increases slightly, the improved accuracy justifies the modification for specific hydrogeological applications.