Geodesic Distance Integration in Analytical Frameworks for Aquifer Hydraulic Modeling

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초록

Traditional analytical models in groundwater studies often simplify the complexities arising from spatial variations in aquifer geometry and anisotropy, limiting their ability to capture the full theoretical nuances of groundwater flow. In this study, we present a novel methodology that integrates geodesic distances within the intrinsic geometry of confined, constant-thickness aquifers, while also accounting for directional anisotropy in hydraulic properties. This approach provides a rigorous mathematical framework for accurately capturing the true distances along the aquifer geometry between pumping and observation wells, in contrast to traditional Euclidean distances. Our methodology is compatible with various analytical solutions, including the Theis (1935, ) and Papadopulos and Cooper (1967, ) solutions, extending their theoretical applicability to more complex aquifer geometries and anisotropic conditions. Numerical simulations of synthetic examples illustrate the theoretical consistency of the proposed approach, aligning drawdown patterns within this advanced framework. While primarily focused on enhancing existing analytical models, this methodology sets the stage for future theoretical advances in groundwater modeling, offering a conceptual expansion of analytical solutions to better address geometric and anisotropic complexities.

키워드

analytical well hydraulics; aquifer geometry; geodesic distance; intrinsic geometry; aquifer early stage assessment; GROUNDWATER-FLOW; WELLBORE STORAGE; HORIZONTAL WELL; FINITE-DIAMETER; PUMPING TESTS; EQUATION
제목
Geodesic Distance Integration in Analytical Frameworks for Aquifer Hydraulic Modeling
저자
Wen, Zhang; Park, Eungyu; Xue, Peipei; Chen, Huali
DOI
10.1029/2024WR038316
발행일
2024-12
유형
Article
저널명
Water Resources Research
권
60
호
12