Abstract
AbstractLiquid nitrogen freeze–thaw (LNFT) is an environmentally-friendly permeability enhancement technology. There are significant differences between shallow and deep coal in their composition and stress history. Therefore, it is necessary to reveal the difference in the impact of LNFT on the multistage gas flow between shallow and deep coal. In this paper, the differences in multistage gas flow were revealed from the perspective of a multiscale structure evolution, and the differences in the multiscale structure evolution were analyzed from the coal compositions and stress history. Nuclear magnetic resonance method was used in the multiscale structure evolution characterization. As for the multistage gas flow evolution, gas ad/de-sorption, diffusion, and seepage evolution characterization were investigated. There is a quadratic relationship between the total porosity and LNFT cycles in both shallow and deep coal. The fracture expansion is dominant in deep coal, while pores connectivity enhancement is dominant in shallow coal. The permeability of both shallow and deep coal increases during the LNFT cycling, presenting a logarithmic correlation between permeability and the number of cycles. With the same porosity, shallow coal has a higher permeability. LNFT cycling can improve the Langmuir volume. Langmuir volume and gas diffusion coefficients of deep coal is smaller both pre- and post-LNFT cycling. Except for CH4 in deep coal, the Langmuir pressure and gas diffusion coefficients in both coals are improved by LNFT cycling.
Funder
National Natural Science Foundation of China
Key Laboratory of Deep Earth Science and Engineering, Ministry of Education
Fundamental Research Funds for the Central Universities
Postdoctoral Research Foundation of China
Publisher
Springer Science and Business Media LLC
Subject
Economic Geology,General Energy,Geophysics,Geotechnical Engineering and Engineering Geology
Reference51 articles.
1. Akhondzadeh H, Keshavarz A, Al-Yaseri AZ, Ali M, Awan FUR, Wang X, Yang YF, Iglauer S, Lebedev M (2020) Pore-scale analysis of coal cleat network evolution through liquid nitrogen treatment: a micro-computed tomography investigation. Int J Coal Geol 219:103370
2. Ao WH (2013) The characteristics of deep-seated coal seams’rank/coal’s structure and coalification in Huainan coalfield. Ph.D. Thesis, China University of Geosciences, Beijing, China. (In Chinese with an English abstract)
3. Avnir D, Jaroniec M (1989) An isotherm equation for adsorption on fractal surfaces of heterogeneous porous materials. Langmuir 5:1431–1433
4. Bergen FV, Hol S, Spiers C (2011) Stress–strain response of pre-compacted granular coal samples exposed to CO2, CH4, He and Ar. Int J Coal Geol 86(2–3):241–253
5. Busch A, Gensterblum Y, Krooss BM, Littke R (2004) Methane and carbon dioxide adsorption–diffusion experiments on coal: upscaling and modeling. Int J Coal Geol 60:151–168
Cited by
4 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献