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裂隙形态对热水注入促进煤中瓦斯解吸的影响

Influence of Fracture Morphology on Gas Desorption Promotion in Coal by Hot Water Injection.

作者信息

Li Yan, Sun Weiji, Liang Bing, Zhang Xiaoyang, Chen Xintao

机构信息

School of Mechanics and Engineering, Liaoning Technical University, Fuxin, Liaoning 123000, China.

出版信息

ACS Omega. 2025 Aug 29;10(35):40501-40511. doi: 10.1021/acsomega.5c05996. eCollection 2025 Sep 9.

Abstract

The influence of hydraulic fracture morphology on the flow of two-phase fluids and heat transfer characteristics during hot water injection into coal was studied by using a thermal-fluid-solid coupling model. Quantitative analysis was performed on the coal temperature distribution, fracture gas pressure, gas phase saturation dynamics, and total gas output variation. The results show that (1) with the change of fracture morphologies from single to complex combination, the average temperature of the coal body increases significantly. (2) The complexity of the fracture morphology increases the gas pressure of the fracture and expands the high-pressure area. (3) Fractures provide channels for hot water injection and gas migration, resulting in a gradient effect on gas saturation. (4) Gas output increases with the increase in fracture complexity. (5) The effective heat-affected area expands as the hot water injection duration extends and the fracture complexity rises. The results of this research have both vital practical worth and theoretical significance, enabling the execution of technology that integrates hydraulic fracturing with hot water injection to promote gas desorption within coal.

摘要

利用热流固耦合模型,研究了水力压裂裂缝形态对向煤体注热水过程中两相流体流动及传热特性的影响。对煤体温度分布、裂缝瓦斯压力、气相饱和度动态变化及总瓦斯产量变化进行了定量分析。结果表明:(1)随着裂缝形态从单一形态转变为复杂组合形态,煤体平均温度显著升高。(2)裂缝形态的复杂性增加了裂缝的瓦斯压力,并扩大了高压区域。(3)裂缝为注热水和瓦斯运移提供通道,导致瓦斯饱和度出现梯度效应。(4)瓦斯产量随裂缝复杂性的增加而增加。(5)有效热影响区域随着注热水持续时间的延长和裂缝复杂性的增加而扩大。本研究结果具有重要的实际价值和理论意义,可为实施水力压裂与注热水相结合的技术以促进煤中瓦斯解吸提供依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d262/12423974/58227e5f0676/ao5c05996_0001.jpg

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