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Use of an analytical solution for calculating temperatures in repository host rock

机译:使用分析解决方案计算储层宿主岩石中的温度

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In many concepts considered for deep geological disposal of nuclear High Level Waste, a bentonite clay buffer will be used as a protecting and isolating barrier between the waste canisters and the surrounding host rock. The temperature development in the nearfield rock, and in particular the temperature at the buffer/rock interface, contributes to control the temperature within the buffer and at the canister/buffer interface. The temperature at the buffer/rock interface is a time-dependent boundary condition for coupled Thermo-Hydro-Mechanical-Chemical processes in the buffer, and is consequently important when analysing the T-H-M-C development of the buffer. In this paper, an analytical method for calculating the rock temperature development at any point within, or around, a repository consisting of thousands of regularly distributed waste canisters is presented. Examples are given that demonstrate the robustness of the analytical solution by applying it to a KBS-3 type repository, in which canisters are positioned in vertical deposition holes in the floor of horizontal deposition tunnels. It is shown that the analytical solution can be used to determine the rock temperature at the buffer/rock interface, or at any other point in the repository host rock, quite easily and with good accuracy. It is furthermore shown that this can be done for different assumptions regarding repository layout and extension, depth below ground surface, rock thermal properties, initial canister power and fuel decay characteristics, thus allowing for fast and accurate sensitivity analyses. The mathematical approach, the essence of which is superposition of a global solution and a quasi-stationary local double-periodic solution, is presented in a principal and descriptive way. Results from verification calculations, performed with independent numerical methods, are presented and compared with corresponding analytical results. The relevance, validity and limitations of the analytical solution are discussed.
机译:在考虑用于深层处理核高放废物的许多概念中,膨润土粘土缓冲器将用作废物罐与周围宿主岩石之间的保护和隔离屏障。近场岩石中的温度发展,特别是缓冲层/岩石界面处的温度,有助于控制缓冲层内以及罐/缓冲层界面处的温度。缓冲液/岩石界面的温度是缓冲液中耦合的热-水力-化学-化学过程的时间依赖性边界条件,因此在分析缓冲液的T-H-M-C发展时非常重要。在本文中,提出了一种用于计算在由数千个规则分布的废物罐组成的储存库内或附近的任意点处岩石温度发展的分析方法。给出了一些示例,这些示例通过将分析解决方案应用于KBS-3型存储库来证明其健壮性,在该存储库中,碳罐位于水平沉积隧道底部的垂直沉积孔中。结果表明,该分析解决方案可轻松,准确地用于确定缓冲区/岩石界面或存储库宿主岩石中任何其他点的岩石温度。此外还表明,可以针对有关存储库布局和扩展,地表以下深度,岩石热特性,初始碳罐功率和燃料衰减特性的不同假设进行此操作,从而可以进行快速而准确的灵敏度分析。以主要和描述性的方式介绍了数学方法,其本质是全局解和拟平稳局部双周期解的叠加。给出了使用独立数值方法执行的验证计算结果,并将其与相应的分析结果进行了比较。讨论了解析解的相关性,有效性和局限性。

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