考虑温度变化的压实膨润土缓冲液导热性评价

Seok Yoon, S. Park, Min-Seop Kim, Geon-Young Kim, Seung-Rae Lee
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引用次数: 1

摘要

用于地质处置高放射性废物(HLW)的工程屏障系统(EBS)由一个装有乏燃料、缓冲材料、回填材料和空隙填充材料的处置罐组成。缓冲材料填满储罐与近场岩石之间的空间,从而起到抑制放射性核素释放和保护储罐不受地下水渗透的作用。此外,由于大量的热能从储罐释放到围岩,缓冲液的导热性在维持整个处置系统的安全方面起着重要作用。因此,考虑到处理罐释放的高热量,本研究在25至80~90℃的温度变化范围内测量了庆州压实的膨润土缓冲液的导热性。随着温度的升高,导热系数增大5~20%,温度效应随着饱和程度的增加而增大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal Conductivity Evaluation of Compacted Bentonite Buffers Considering Temperature Variations
An engineered barrier system (EBS) for the geological disposal of high-level radioactive waste (HLW) consists of a disposal canister packed with spent fuel, buffer material, backfill material, and gap-filling material. The buffer material fills the space between the canister and the near-field rock, thus serving to restrain the release of radionuclides and protect the canister from groundwater penetration. Furthermore, as significant amounts of heat energy are released from the canister to the surrounding rock, the thermal conductivity of the buffer plays an important role in maintaining the safety of the entire disposal system. Therefore, given the high levels of heat released from disposal canisters, this study measured the thermal conductivities of compacted bentonite buffers from Gyeongju under temperature variations ranging 25 to 80~90℃. There was a 5~20% increase in thermal conductivity as the temperature increased, and the temperature effect increased as the degree of saturation increased.
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