Wang Meijiao, Yan Shaojiu, Wang Nan, Ge Wen, Zhang Wei
Key Laboratory of Geological Survey and Evaluation of Ministry of Education, China University of Geosciences Wuhan 430074 China
Research Centre of Graphene Applications, AECC Beijing Institute of Aeronautical Materials Beijing 100095 China.
RSC Adv. 2024 Jan 26;14(6):3900-3908. doi: 10.1039/d3ra08478g. eCollection 2024 Jan 23.
The optimization of storage space and material composition can significantly improve the generation rate and storage capacity of methane hydrate, which is important for the industrial application of solidified natural gas (SNG) technology. In our report, the effects of the presence of SDBS (sodium dodecylbenzene sulfonate), GO (graphene oxide), 3D-rGO (3D-reduced graphene oxide) and 3D-rGO/SDBS (3D-reduced graphene oxide/sodium dodecylbenzene sulfonate) on the methane hydrate generation process are investigated. The results show that the heterogeneous effect on the solid-phase surface of 3D-rGO/SDBS and its interconnected three-dimensional (3D) structure can achieve rapid nucleation. In addition, the presence of 3D-rGO/SDBS can increase the dissolution and dispersion of gas in solution and further enhance the gas-liquid mass transfer, thus realizing efficient methane storage. The maximum methane storage capacity of 188 v/v is obtained with 600 ppm of 3D-rGO/SDBS in water, reaching 87% of the theoretical maximum storage capacity. The addition of 3D-rGO/SDBS also significantly reduces the induction time and accelerates the formation rate of methane hydrate. This study reveals that 3D graphene materials have excellent kinetic promotion effects on methane hydrate formation, explores and enriches the hydrate-promoting mechanism, and provides essential data and theoretical basis for the research of new promoters in the field of SNG technology.
储存空间和材料组成的优化可显著提高甲烷水合物的生成速率和储存容量,这对固化天然气(SNG)技术的工业应用至关重要。在我们的报告中,研究了十二烷基苯磺酸钠(SDBS)、氧化石墨烯(GO)、三维还原氧化石墨烯(3D-rGO)和三维还原氧化石墨烯/十二烷基苯磺酸钠(3D-rGO/SDBS)的存在对甲烷水合物生成过程的影响。结果表明,3D-rGO/SDBS在固相表面的异质效应及其相互连接的三维(3D)结构可实现快速成核。此外,3D-rGO/SDBS的存在可增加气体在溶液中的溶解和分散,并进一步增强气液传质,从而实现高效的甲烷储存。在水中加入600 ppm的3D-rGO/SDBS可获得最大甲烷储存容量188 v/v,达到理论最大储存容量的87%。3D-rGO/SDBS的加入还显著缩短了诱导时间,加快了甲烷水合物的形成速率。本研究揭示了三维石墨烯材料对甲烷水合物形成具有优异的动力学促进作用,探索并丰富了水合物促进机理,为SNG技术领域新型促进剂的研究提供了重要数据和理论依据。