Effect of particle size distribution on the thermal conductivity of crushed GMZ bentonite pellet mixtures

IF 5.6 1区 工程技术 Q1 ENGINEERING, GEOLOGICAL
Xiangyun Zhou, De’an Sun, Junran Zhang, Fan Peng, Mingyu Li, Yunshan Xu, You Gao
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Abstract

Crushed high-density bentonite pellet mixtures have been proposed to fill the construction gaps of the high-level radioactive nuclear waste repository. Compared with compacted bentonite block, the thermal conductivity of bentonite pellet mixture is relatively low, which can cause a significant increase in the peak temperature of the buffer layer. In this regard, it is crucial to investigate the thermal conductivity of bentonite pellet mixtures for the repository’s long-term safety assessment. In this study, crushed high-density GMZ bentonite pellets with six size classes were produced. The thermal conductivities of mono-size, binary-size, and multi-size class mixtures of crushed bentonite pellets were measured. The effect of particle size distributions of pellet mixtures on the thermal conductivity was analyzed. The results reveal that the thermal conductivity of a mono-size class mixture increases as the mean particle size increases. The influence of mean particle size on thermal conductivity lessens as dry density increases. The thermal conductivity of a binary-size class mixture decreases initially and subsequently increases as the mass fraction of the fine size class increases. The thermal conductivity of a multi-size class mixture firstly increases and then decreases with increasing the distribution modulus q, reaching a peak value in the range of q = 0.6 ~ 0.8.

Abstract Image

粒度分布对碎GMZ膨润土颗粒混合物导热性的影响
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来源期刊
Acta Geotechnica
Acta Geotechnica ENGINEERING, GEOLOGICAL-
CiteScore
9.90
自引率
17.50%
发文量
297
审稿时长
4 months
期刊介绍: Acta Geotechnica is an international journal devoted to the publication and dissemination of basic and applied research in geoengineering – an interdisciplinary field dealing with geomaterials such as soils and rocks. Coverage emphasizes the interplay between geomechanical models and their engineering applications. The journal presents original research papers on fundamental concepts in geomechanics and their novel applications in geoengineering based on experimental, analytical and/or numerical approaches. The main purpose of the journal is to foster understanding of the fundamental mechanisms behind the phenomena and processes in geomaterials, from kilometer-scale problems as they occur in geoscience, and down to the nano-scale, with their potential impact on geoengineering. The journal strives to report and archive progress in the field in a timely manner, presenting research papers, review articles, short notes and letters to the editors.
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