Liu Hongyong, Li Zhen, Zheng Chunshan, Wang Yushan, Song Fei, Meng Xiangfei
Institute of Energy, Hefei Comprehensive National Science Center (Anhui Energy Laboratory), Hefei 230031, Anhui, China.
Key Laboratory of Coal Mine Gas and Fire Prevention, Ministry of Education, China University of Mining and Technology, Xuzhou 221116, Jiangsu, China.
ACS Omega. 2023 Oct 10;8(42):39004-39013. doi: 10.1021/acsomega.3c03583. eCollection 2023 Oct 24.
This paper investigates the unclear influence mechanism of the surfactant effect on improving coal seam wettability and CO-enhanced coalbed methane technology to enhance the gas extraction efficiency in some coal mines under highly mineralized environments in China. Specifically, the microinfluence mechanism of the coupling effect of nonionic surfactant OP-10 and highly mineralized coal samples under special treatment on the wettability of coal seam is examined. By measuring the contact angle and surface tension of the samples, it is confirmed that high mineralization can limit the effect of surfactants on improving the wettability of coal seams to a certain point. Infrared spectroscopy and X-ray diffraction measurements were conducted on the samples under coupling conditions. It is found that high mineralization impedes the effectiveness of surfactants in enhancing the wettability of coal seams. The surfactants interact with coal samples at the functional group level, producing new hydrophilic functional groups and increasing the content of kaolin with strong hydrophilic properties, thereby increasing the wettability of coal seams. However, these hydrophilic functional groups disappear under coupling conditions and hydrophobic functional groups are produced. Additionally, high mineralization inhibits the effect of surfactants on the phase composition of coal samples. The findings of this research provide a theoretical basis for water injection of highly mineralized coal seams and methane replacement recovery by carbon dioxide technology, promoting the practical application of water injection and gas injection displacement of coal seams.
本文研究了在中国高矿化环境下一些煤矿中,表面活性剂作用于改善煤层润湿性及CO强化煤层气技术以提高瓦斯抽采效率的影响机制尚不明确的问题。具体而言,研究了经特殊处理的非离子表面活性剂OP - 10与高矿化煤样的耦合效应在煤层润湿性方面的微观影响机制。通过测量样品的接触角和表面张力,证实高矿化在一定程度上会限制表面活性剂对改善煤层润湿性的作用。对耦合条件下的样品进行了红外光谱和X射线衍射测量。发现高矿化阻碍了表面活性剂增强煤层润湿性的效果。表面活性剂在官能团层面与煤样相互作用,产生新的亲水性官能团并增加具有强亲水性的高岭土含量,从而提高煤层润湿性。然而,这些亲水性官能团在耦合条件下消失并产生了疏水性官能团。此外,高矿化抑制了表面活性剂对煤样相组成的影响。本研究结果为高矿化煤层注水及二氧化碳技术置换开采甲烷提供了理论依据,推动了煤层注水和注气驱替的实际应用。