根据钻孔记录和卢格恩试验数据推断的岩体原位导水性预测模型的统计有效性比较

Ujjwal Kharel, S. Panthee
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引用次数: 0

摘要

原位导水性是节理岩体岩石工程中的一项重要特性。了解其与岩体参数的相关性对水循环至关重要。因此,我们开展了一项研究,在水力传导率和各种岩体参数之间建立具有统计意义的经验关系,以估算 Lugeon 试验得出的原位水力传导率和从钻孔记录中获得的各种岩体参数。然而,研究结果并不令人满意,因此需要进一步研究。后来,研究人员开发出了两种更稳健的模型,即 HC 模型和改进的 HC 模型。HC 模型包含四个岩体参数,包括岩质指定指数、深度指数、砾石含量指定指数和岩性渗透指数,最大确定系数 (R2) 为 0.46。修改后的 HC 模型包括六个参数,包括断裂频率和理论孔径,从而使 R2 提高到 0.69。这两个模型的预测结果都明显优于单独的 RQD 预测结果(R2 < 0.10),这说明在预测导水性时,由于各种因素之间复杂的相互作用,需要纳入多个岩体参数。然而,在本分析中,节理持久性和粗糙度的影响是有限的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Comparison of Statistical Validity of In-Situ Hydraulic Conductivity Prediction Models of Rock Mass Inferred from Borehole Logs and Lugeon Test Data
In-situ hydraulic conductivity is a vital property in rock engineering for jointed rock mass. Understanding its correlation with rock mass parameters is crucial for water circulation. Therefore, a study was carried out to develop statistically significant empirical relationships between hydraulic conductivity and various rock mass parameters to estimate in-situ hydraulic conductivity from Lugeon test and various rock mass parameters obtained from borehole logs.The study initially aimed to establish a correlation between hydraulic conductivity and Rock Quality Designation (RQD). However, the outcomes were unsatisfactory, prompting further research. Later, two more robust models were developed, namely the HC-model and modified HC-model. The HC-model incorporated four rock mass parameters, including Rock Quality Designation Index, Depth Index, Gouge Content Designation Index, and Lithology Permeability Index, achieving a maximum coefficient of determination (R2) of 0.46. The modified HC-model included six parameters, encompassing fracture frequency and theoretical aperture, resulting in an improved R2 of 0.69. Both models significantly outperformed RQD-alone predictions (R2 < 0.10), highlighting the need for incorporating multiple rock mass parameters in predicting hydraulic conductivity due to a complex interplay of various factors. However, the effects of joint persistence and roughness are limiting in the present analysis.
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