非同步双潮传播的无承压含水层分析。

Ground water Pub Date : 2008-03-01 Epub Date: 2008-01-09 DOI:10.1111/j.1745-6584.2007.00412.x
Kolja Rotzoll, Aly I El-Kadi, Stephen B Gingerich
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引用次数: 71

摘要

大多数发表的关于含水层对海潮响应的解决方案都集中在信号在内陆传播时的单向衰减上。然而,岛屿含水层经历来自整个海岸的周期性强迫,这可能导致不同潮汐信号的综合效应,特别是在狭窄的高渗透岛屿上。一般来说,研究忽略了海啸席卷岛屿时潜在的时间滞后。我们提出了一个一维解析解的地下水流动方程受异步和不对称振荡水头条件在相反的边界,并测试了数据从一个无限制的火山含水层在毛伊岛。该解决方案考虑了海岸线上的沉积物阻尼效应。毛伊岛含水层的响应表明,含水层中心附近的地下水位高度受到来自对面海岸的潮汐组合的影响。本文提出的双潮解比单面解更能使实测地下水头与理论响应吻合。水力扩散系数估计为2.3 × 10(7) m(2)/d。假设比产率为0.04,含水层厚度为1.8 km,这意味着水导率为500 m/d。数值实验证实了水力扩散系数值,并表明回归估计的模态衰减和相位差的y截距可以近似于边界处低渗透单元引起的阻尼因子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of an unconfined aquifer subject to asynchronous dual-tide propagation.

Most published solutions for aquifer responses to ocean tides focus on the one-sided attenuation of the signal as it propagates inland. However, island aquifers experience periodic forcing from the entire coast, which can lead to integrated effects of different tidal signals, especially on narrow high-permeability islands. In general, studies disregard a potential time lag as the tidal wave sweeps around the island. We present a one-dimensional analytical solution to the ground water flow equation subject to asynchronous and asymmetric oscillating head conditions on opposite boundaries and test it on data from an unconfined volcanic aquifer in Maui. The solution considers sediment-damping effects at the coastline. The response of Maui Aquifers indicate that water table elevations near the center of the aquifer are influenced by a combination of tides from opposite coasts. A better match between the observed ground water head and the theoretical response can be obtained with the proposed dual-tide solution than with single-sided solutions. Hydraulic diffusivity was estimated to be 2.3 x 10(7) m(2)/d. This translates into a hydraulic conductivity of 500 m/d, assuming a specific yield of 0.04 and an aquifer thickness of 1.8 km. A numerical experiment confirmed the hydraulic diffusivity value and showed that the y-intercepts of the modal attenuation and phase differences estimated by regression can approximate damping factors caused by low-permeability units at the boundary.

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