Thermal Stimulation on Enhanced Coalbed Methane Recovery Under Microwave Heating Based on a Fully Coupled Numerical Model

Jingyi Zhu, Hao Wang, Zhaozhong Yang, Xiaogang Li, Jie Zhou
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Abstract

For the desorption of methane, thermal stimulation is an alternative to develop coalbed methane (CBM) when it is difficult to reduce the formation pressure. Microwave heating is a promising thermal method to increase the gas recovery of CBM especially for the CBM reservoir with high heterogeneity and low water content. The current study aims to establish a fully coupled numerical model to understand the enhanced gas recovery (EGR) mechanism of CBM under microwave heating. In the study, the CBM reservoir model was developed first. Then a mathematical model considering electromagnetic excitation, heat transfer, mass transfer, Langmuir adsorption, and fluid flow was built. Moreover, some important parameters were set as temperature-dependent to achieve the coupling effects among the multiphysics. Based on the above two models, a fully coupled electromagnetic-thermal-hydraulic-mechanical model was solved by the finite element, so that the distributions of electric field, reservoir temperature, methane concentration were able to be investigated. Finally, a sensitivity analysis including water content, microwave power and microwave heating mode was done based on the heating efficiency and EGR. Under microwave heating, the electric field distributes near the microwave heater with the maximum electric intensity as 1.07×103 V/m. The high electric intensity and low thermal conductivity easily enables microwaves to generate the required temperature region within CBM reservoir, so that 200 W power was applied to continuous heat the formation. Under 1 day, the maximum temperature of CBM reservoir increased to 81 °C, enabling the desorption of methane. Moreover, heating efficiency is controlled by the dielectric properties as well as electric field intensity of the CBM reservoir, although the existence of water content increases the dielectric constant within the CBM reservoir. In addition, by setting the temperature-dependent properties, microwave heating shows the ability to induce the pore volume changes by generating thermal stress, so that the porosity and permeability of CBM reservoir near the heater increase from 0.15 to 0.24 and from 0.36 mD to 1.47 mD, respectively. Based on the above positive effects of microwave heating, the CBM recovery could be significantly enhanced. Finally, in order to transfer the heat deeper into the reservoir, the feasibility of stepwise microwave heating mode has been successfully proven based on the temperature distribution within the CBM reservoir. In the study, microwave has showed great potential in enhancing the CBM recovery resulting from its high heating efficiency and pore induction effect. The results presented in this paper can provide comprehensive guidance for the optimization of microwave heating parameters.
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基于全耦合数值模型的微波加热下煤层气采收率的热模拟
对于甲烷的解吸,在地层压力难以降低的情况下,热采是开发煤层气的一种替代方法。微波加热是一种很有前途的提高煤层气采收率的热采方法,尤其适用于高非均质、低含水率的煤层气储层。本研究旨在建立一个全耦合的数值模型,以了解微波加热下煤层气提高采收率(EGR)机理。本研究首先建立了煤层气储层模型。然后建立了考虑电磁激励、传热、传质、Langmuir吸附和流体流动的数学模型。此外,为了实现多物理场之间的耦合效应,还将一些重要参数设置为与温度相关。基于上述两种模型,采用有限元方法求解了全耦合的电磁-热-水-力模型,从而研究了电场、储层温度、甲烷浓度的分布。最后,基于加热效率和EGR对微波加热方式、微波功率和含水量进行敏感性分析。微波加热时,电场分布在微波加热器附近,最大电强度为1.07×103 V/m。高电强度和低热导率使微波能够在煤层气储层内产生所需的温度区域,因此可以使用200 W功率对储层进行连续加热。1天内,煤层气储层最高温度升至81℃,有利于甲烷的解吸。此外,尽管含水率的存在增加了煤层气储层内的介电常数,但加热效率受储层介电性质和电场强度的控制。此外,通过设定温度相关性质,微波加热能够通过产生热应力诱发孔隙体积变化,使靠近加热器的煤层气储层孔隙度和渗透率分别从0.15 mD和0.36 mD增加到0.24 mD和1.47 mD。基于上述积极效应,微波加热可显著提高煤层气采收率。最后,根据煤层气储层内部温度分布,成功验证了微波分步加热模式的可行性,为将热量更深入地传递给储层。在研究中,微波由于具有较高的加热效率和孔隙诱导效应,在提高煤层气采收率方面显示出很大的潜力。研究结果可为微波加热参数的优化提供全面的指导。
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