Evolution of pore-fracture structure and permeability of coal by microwave irradiation under uniaxial compression

IF 4.9 2区 工程技术 Q2 ENERGY & FUELS Journal of Natural Gas Science and Engineering Pub Date : 2022-11-01 DOI:10.1016/j.jngse.2022.104759
Nan Yang , Guozhong Hu , Jian Zhu , Haoran Duan , Tonghui Wang , Yifan Li
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引用次数: 6

Abstract

In a natural coal reservoir environment, the coal seam is constrained by in-situ stress and gas pressure. Damage on the coal microstructure due to microwave irradiation (MI) differs significantly different from that under no-load conditions. In this study, the effect of MI on the pore-fracture structure and seepage characteristics of load-constrained coal is investigated using a custom-developed microwave fracturing experimental device, nuclear magnetic resonance test device, and permeability test device. Based on the relationship between microwave and pore-fracture structure parameters and the permeability of loaded coal, the pore-fracture structure evolution and permeability growth law of loaded coal under MI are determined. The results show that the number of micropores in coal decreases and the T2 curve of micropores is shifted to the right under the combined effect of MI and external stress load. The numbers of mesopores, macro-pores, and micro-fractures increase, and the T2 curve exhibits a broader peak span. The pore-fracture structure evolution effect of loaded coal increases with the microwave power and MI time. Under high-power MI, the pore-fracture structure evolution of the loaded coal shows a “decrease - increase – decrease” trend as the stress load increases, whereas a “decrease – increase” trend is shown under low-power MI. Under the same microwave parameters, the permeability of unloaded and loaded coal increases by a maximum of 15.7 and 364.7 times, respectively. In particular, the permeability increases by 3.1–11.4 and 17.8–49.7 times under external stress loads of 4 and 2 MPa, respectively. The combination of high MI power and short MI duration under the same microwave energy facilitates the development of the pore-fracture structure and increases the permeability of loaded coal. Microwaves have a differential thermal effect on mineral in coal, which reduce the physical properties of the coal. Pore-fracture structure and permeability are further enhanced by the stress load.

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单轴压缩下微波辐射煤的孔隙-破裂结构演化及渗透率
在天然煤储层环境中,煤层受地应力和瓦斯压力的约束。微波辐照对煤体微观结构的破坏与空载条件下有显著差异。本研究采用自行研制的微波压裂实验装置、核磁共振测试装置和渗透性测试装置,研究了MI对受载荷约束煤孔隙-裂隙结构和渗流特性的影响。基于微波和孔隙-破裂结构参数与加载煤渗透率的关系,确定了MI作用下加载煤的孔隙-破裂结构演化和渗透率增长规律。结果表明:在MI和外部应力载荷的共同作用下,煤中微孔数量减少,微孔T2曲线右移;中孔、大孔和微裂缝数量增加,T2曲线峰跨变宽。加载煤的孔隙-破裂结构演化效应随微波功率和微波时间的增加而增大。在高功率微波荷载下,加载煤的孔隙-破裂结构随应力荷载的增加呈“减小-增大-减小”的趋势,而在低功率微波荷载下,加载煤的渗透率呈“减小-增大”的趋势。在相同的微波参数下,卸载煤和加载煤的渗透率最大分别增加了15.7倍和364.7倍。其中,在4 MPa和2 MPa的外部应力载荷下,渗透率分别提高了3.1 ~ 11.4倍和17.8 ~ 49.7倍。在相同的微波能量下,高微波功率和短微波持续时间的组合有利于孔隙破裂结构的发育,提高了载煤的渗透率。微波对煤中的矿物产生差热效应,使煤的物理性质降低。应力载荷进一步增强了孔隙-裂缝结构和渗透率。
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来源期刊
Journal of Natural Gas Science and Engineering
Journal of Natural Gas Science and Engineering ENERGY & FUELS-ENGINEERING, CHEMICAL
CiteScore
8.90
自引率
0.00%
发文量
388
审稿时长
3.6 months
期刊介绍: The objective of the Journal of Natural Gas Science & Engineering is to bridge the gap between the engineering and the science of natural gas by publishing explicitly written articles intelligible to scientists and engineers working in any field of natural gas science and engineering from the reservoir to the market. An attempt is made in all issues to balance the subject matter and to appeal to a broad readership. The Journal of Natural Gas Science & Engineering covers the fields of natural gas exploration, production, processing and transmission in its broadest possible sense. Topics include: origin and accumulation of natural gas; natural gas geochemistry; gas-reservoir engineering; well logging, testing and evaluation; mathematical modelling; enhanced gas recovery; thermodynamics and phase behaviour, gas-reservoir modelling and simulation; natural gas production engineering; primary and enhanced production from unconventional gas resources, subsurface issues related to coalbed methane, tight gas, shale gas, and hydrate production, formation evaluation; exploration methods, multiphase flow and flow assurance issues, novel processing (e.g., subsea) techniques, raw gas transmission methods, gas processing/LNG technologies, sales gas transmission and storage. The Journal of Natural Gas Science & Engineering will also focus on economical, environmental, management and safety issues related to natural gas production, processing and transportation.
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