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首页> 外文期刊>Journal of Hydrology >Estimating formation properties from early-time oscillatory water levels in a pumped well
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Estimating formation properties from early-time oscillatory water levels in a pumped well

机译:从抽水井中的早期振荡水位估算地层性质

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Hydrologists often attempt to estimate formation properties from aquifer tests for which only the hydraulic responses in a pumped well are available. Borehole storage, turbulent head losses, and borehole skin, however, can mask the hydraulic behavior of the formation inferred from the water level in the pumped well. Also, in highly permeable formations or in formations at significant depth below land surface, where there is a long column of water in the well casing, oscillatory water levels may arise during the onset of pumping to further mask formation responses in the pumped well. Usually borehole phenomena an confined to the early stages of pumping or recovery, and late-time hydraulic data can be used to estimate formation properties. In many instances, however, early-time hydraulic data provide valuable information about the formation, especially if there are interferences in the late-time data. A mathematical model and its Laplace transform solution that account for inertial influences and turbulent head losses during pumping is developed for the coupled response between the pumped borehole and the formation. The formation is assumed to be homogeneous, isotropic, of infinite areal extent, and uniform thickness, with leakage from an overlying aquifer, and the screened or open interval of the pumped well is assumed to fully penetrate the pumped aquifer. Other mathematical models of aquifer flow can also be coupled with the equations describing turbulent head losses and the inertial effects on the water column in the pumped well. The mathematical model developed in this paper is sufficiently general to consider both underdamped conditions for which oscillations arise, and overdamped conditions for which then ale no oscillations. Through numerical inversion of the Laplace transform solution, type curves from the mathematical model are developed to estimate formation properties through comparison with the measured hydraulic response in the pumped well. The mathematical model is applied to estimate formation properties from a singlewell test conducted near Waialua, Oahu, Hawaii. At this site, both the drawdown and recovery showed oscillatory water levels in the pumped well, and a step-drawdown test showed that approximately 86% of the drawdown is attributed to turbulent head losses. Analyses at this site using late-time drawdown data were confounded by the noise present in the measured water levels due primarily to nearby irrigation wells and ocean tides. By analyzing the early-time oscillatory recovery data at the Waialua site, upper and lower bounds were placed on the transmissivity, T, storage coefficient, S, and the leakance of the confining unit, K'/B'. The upper and lower bounds on T differ by a factor of 2. Upper and lower bounds on S and K'/B' are much larger, because drawdown stabilized relatively quickly after the onset of pumping. (C) 2000 Published by Elsevier Science B.V. [References: 28]
机译:水文学家通常试图从含水层测试中估算地层性质,而在这些测试中,只有抽水井中的水力响应才可用。但是,钻孔的存储,湍流的水头损失和钻孔的表皮会掩盖由抽水井中的水位推断出的地层的水力行为。同样,在高渗透性地层或在地表以下很深的地层中,在井筒中有一长列水,在抽水开始时可能会产生振荡水位,以进一步掩盖抽水井中的地层响应。通常,井眼现象仅限于抽油或采油的早期阶段,后期的水力数据可以用来估算地层性质。但是,在许多情况下,早期水力数据会提供有关地层的有价值的信息,尤其是在后期数据中存在干扰的情况下。针对泵送的井眼与地层之间的耦合响应,开发了一个数学模型及其拉普拉斯变换解决方案,该模型考虑了泵送过程中的惯性影响和湍流水头损失。假定该地层是均质的,各向同性的,具有无限的面积范围和均匀的厚度,并有上覆含水层的渗漏,并且假定抽水井的屏蔽或开井间隔完全渗透了抽水层。含水层流量的其他数学模型也可以与描述湍流水头损失以及对抽水井中水柱的惯性影响的方程式结合。本文开发的数学模型具有足够的通用性,既可以考虑发生振荡的欠阻尼条件,又可以避免振荡的过阻尼条件。通过对Laplace变换解决方案进行数值反演,可以通过与抽油井中测得的水力响应进行比较来开发数学模型的类型曲线,以估算地层特性。该数学模型用于通过在夏威夷瓦胡岛Waialua附近进行的单井测试估算地层特性。在该站点,回撤和回采均显示抽水井中水位处于振荡状态,逐步回撤测试表明,大约86%的回撤归因于湍流压头损失。使用后期水位下降数据在该站点进行的分析与主要由于附近的灌溉井和海潮而在测得的水位中存在的噪声相混淆。通过分析Waialua站点的早期振荡恢复数据,可以将透射率,T,储能系数S和约束单元的泄漏K'/ B'设置为上限和下限。 T的上限和下限相差2倍。S和K'/ B'的上限和下限要大得多,因为在抽水开始后压降相对较快地稳定了。 (C)2000年由Elsevier Science B.V.出版[参考文献:28]

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