高放废物处理系统中压实膨润土缓冲液饱和导电性的预测

S. Park, Seok Yoon, Sangki Kwon, Geon-Young Kim
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引用次数: 2

摘要

地质储存库由天然屏障和工程屏障系统组成。它的设计组成包括罐、缓冲、回填和近场岩石。在工程屏障系统的组成部分中,膨润土缓冲层最大限度地减少了近场岩石的地下水流量,并防止了核素的释放。研究缓冲层对地下水的导水性能是评价水库工程屏障稳定性和完整性的重要因素。本研究以庆州膨润土为材料,在不同干密度和温度下进行了饱和导电性试验,并利用120个导电性结果集,通过多元回归分析建立了导电性预测模型。试验结果表明,随着干密度的增大,水导率有减小的趋势。此外,随着温度的升高,水导率增大。多元回归分析结果表明,水力导率预测方程的决定系数(R2)高达0.93。本文提出的水力导率预测方程可用于工程屏障系统的设计。
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A Prediction of Saturated Hydraulic Conductivity for Compacted Bentonite Buffer in a High-level Radioactive Waste Disposal System
A geological repository comprises a natural barrier and an engineered barrier system. Its design components consist of canisters, buffers, backfill, and near-field rock. Among the engineered barrier system components, bentonite buffers minimize the groundwater flow from near-field rock and prevent the release of nuclide. Investigation of the hydraulic conductivity of the buffer to groundwater flow is an important factor in the performance evaluation of the stability and integrity of the engineered barrier of the repository. In this study, saturated hydraulic conductivity tests were performed using Gyeongju bentonite at various dry densities and temperatures, and a hydraulic conductivity prediction model was developed through multiple regression analysis using the 120 result sets of hydraulic conductivity. The test results showed that the hydraulic conductivity tends to decrease as the dry density increases. In addition, the hydraulic conductivity increased with increasing temperature. The multiple regression analysis results showed that the coefficient of determination (R2) of the hydraulic conductivity prediction equation was as high as 0.93. The hydraulic conductivity prediction equation presented in this study could be used for the design of engineered barrier systems.
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