Unfrozen Water Content and Ice–Water Thawing Mechanism in Cryogenic Frozen Coal

被引:0
作者
Lei Qin
Siheng Lin
Haifei Lin
Shugang Li
Pengxiang Zhao
Weikai Wang
Zitong Xue
机构
[1] Xi’an University of Science and Technology,College of Safety Science and Engineering
[2] Xi’an University of Science and Technology,Key Laboratory of Western Mines Exploitation and Hazard Prevention, Ministry of Education
[3] The University of Tokyo,Department of Environment Systems, Graduate School of Frontier Sciences
来源
Natural Resources Research | 2022年 / 31卷
关键词
Liquid nitrogen fracturing; NMR; Thawing; Unfrozen water; Pore-throat; Pore water;
D O I
暂无
中图分类号
学科分类号
摘要
The content and distribution of unfrozen water in coal affect directly its pore structure and macroscopic mechanical properties. It is key to break through the theory of cryogenic mining technology to study the ice–water phase transition process of frozen coal. Taking bituminous coal in Yuan Zhuang, China, as the research object, this paper studied pore thawing characteristics of coal frozen by liquid nitrogen through nuclear magnetic resonance technology. The experimental results demonstrate that the unfrozen water content was exponentially related to temperatures. In the early thawing stage of the coal sample, the thawing speed of micropore was the fastest. The cumulative porosity has a linear relationship with the cumulative pore-throat distribution, and an exponential relationship with the unfrozen water content. According to the analysis of thermodynamics, pore water with high pressure and small aperture has low freezing point, causing the micropore structure was first generated with thawing. In general, during the thawing process of bituminous coal frozen by liquid nitrogen, there are more micropores and strong connectivity, which contain less ice and water. There are less mesopores and macropores, while the connectivity in the early thawing stage is poor, but the content of ice and water in that is large.
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页码:2839 / 2851
页数:12
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