关于煤炭多层次结构进化机制的研究,在压力和气体缓解下具有水平断裂
Zhonghua Wang1,2,3, Zhongping Guo1, Fujin Lin2,3
1College of Energy and Mining Engineering, Shandong University of Science and Technology, Qingdao 266590, China.
ACS omega
|March 10, 2025
概括
液压槽和气体提取为深层煤层提供双重减压,减轻爆发风险. 增加双重减压系数 (K) 会减弱煤炭断裂,提高安全性.
科学领域:
- 采矿工程 采矿工程 采矿工程
- 地质力学 地质力学
- 石油工程是石油工程中的一个.
背景情况:
- 在深层的煤炭和天然气喷发造成了严重的安全风险.
- 压力和气体压力是这些灾难的主要驱动因素.
- 有效的预防需要了解压力和气体缓解的联合压力下的断裂机制.
研究的目的:
- 调查液压槽和气体提取在深层煤层中减轻双重压力的有效性.
- 确定煤层压力和气体缓解下的进化机制和煤层破裂的数学模型.
- 为防止爆发和提高透性建立科学基础.
主要方法:
- 建议使用双重减压系数 (K) 来量化压力和气体减压的综合效应.
- 在具有不同K值 (0.5,1.0,1.5) 的水平断裂煤样本上进行机械透实验.
- 分析了宏观细微结构的演变,骨折的发展和毛孔大小的分布.
主要成果:
- 煤炭断裂趋势随着K的增加而减弱;宏观断裂占微观断裂的优势.
- 大骨折在K=1.0 (Δσ = ΔP) 时最为发达,而中骨折在K=0.5 (Δσ = 0.5ΔP) 时最为发达.
- 孔隙结构随着K的增加而向更大的孔隙转移,改善透性.
结论:
- 双重减压是有效的减轻煤炭和天然气爆发风险.
- 断裂参数和毛孔大小分布与K (正方形,立方形,对数) 呈现可预测的关系.
- 这些发现为优化开采和加强爆发预防策略提供了科学基础.
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