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A Mathematical Model to Study the Coupling Effect of Deformation-Seepage-Heat Transfer on Coalbed Methane Transport and Its Simulative Application

机译:研究变形 - 渗流 - 传热对煤层气运输及其模拟应用的数学模型及其耦合

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Injection of high-temperature water or steam into low-permeability coalbed for efficient and rapid extraction of coalbed methane has been studied by our university for many years and will soon be implemented in the field. With comprehensive consideration of coupling of heat transfer, water seepage, desorption of coalbed methane, and coal-rock mass deformation, the paper establishes a more comprehensive mathematical model of the coupling effect of deformation-seepage-heat transfer on coalbed methane transport. Compared with the previous studies, this theoretical model considers the change of adsorbed and free coalbed methane at high temperature and the coalbed methane transport caused by a high-temperature gradient. Using the Tunlan Coal Mine of Shanxi Coking Coal Group to conduct the numerical simulations on the coalbed methane extraction project using heat injection technology, results show that (1) high-temperature water flowed towards the extraction hole along fractured fissures, with seepage towards the coal mass on both sides of the fissure at the same time, gradually heating the coalbed and forming an arcuate distribution of temperature from high to low for an area from the fractured fissure to the coalbed upper and lower boundaries. On the thirtieth day of heat injection, the temperature of the coalbed in the heat injection area ranged from 140°C to 260°C. (2) Under high temperatures, desorption of the coalbed gas was quick, and the adsorption gas content formed an oval funnel from the heat injection hole towards the extraction hole, centered by the fractured fissure, and migrating towards the coalbed upper and lower boundaries. Along with heat injection and extraction, the absorbed gas content rapidly decreased, and on the thirtieth day of injection, the absorbed gas content of the entire heat injection area decreased to 1.5?m3/t, only 7% of the original. (3) During heat injection, the coalbed gas pore pressure rapidly increased and reached 5.5?MPa on the tenth day, about 4.5 times the original, and the pore pressure steadied at 3.5?MPa on the thirtieth day of extraction. Such a high gas pressure gradient promoted the rapid flow and drainage of the gas.
机译:我们大学研究了高温水或蒸汽以高效,快速提取煤层气的煤层多年来一直研究了多年,并将在该领域实施。全面考虑耦合传热,水渗流,煤层气的解吸,以及煤岩大规模变形,该论文建立了更全面的数学模型对煤层气变形渗流传热的耦合效应。与先前的研究相比,该理论模型考虑了高温和高温梯度引起的吸附和自由煤层甲烷的变化。利用山西煤矿煤矿煤矿煤矿采用热注射技术对煤层气提取项目进行数值模拟,结果表明(1)高温水沿着骨折裂缝流向萃取孔,渗透煤层裂缝两侧的质量同时,煤层逐渐加热,并将温度的弧形分布从高度从骨折裂缝到煤层上的裂缝和下边界的面积形成。在热注射的第三十天,热注入区域的煤层的温度范围为140℃至260℃。 (2)在高温下,煤层气的解吸快,吸附气体含量从热注入孔形成椭圆形漏斗,朝向萃取孔,以裂缝裂缝为中心,并朝向煤层覆盖,朝向煤层覆盖。随着热注射和提取,吸收的气体含量迅速下降,并且在注射的第三天,整个热注入区域的吸收气体含量降至1.5?M3 / T,只有7%的原件。 (3)在热注射过程中,煤层气孔隙压力迅速增加,最小一天达到5.5℃,原始约4.5倍,孔隙压力在3.5℃下达到3.5℃。这种高气体压力梯度促进了气体的快速流动和排水。

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