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| Study on heat transfer law of heated coal rock solid |
| Wei Tianyuan 1, 2, Wu Jianguo 3, Qiao Xiaochun 3, Zhang Ruijiang 3, Guan Lianhe 3, Qi Haitian 1, 2,#br#
Chen Riyuan 1, 2 |
1. College of Emergency Management and Safety Engineering, North China University of Technology, Tangshan 063210, China; 2. Key Laboratory of Mining Development and Safety Technology of Hebei Province, Tangshan 063210, China;
3. Kailuan Group Co., Ltd., Tangshan 063000, China |
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Abstract In order to reveal the correlation mechanism between heat transfer and oxidation heating in the process of coal spontaneous combustion, taking heated coal rock as the research object, combined with heat conduction theory and multi-physical field coupling method, the numerical model of thermal-hydro-chemical coupling was constructed by Comsol, and the kinetic equation of coal oxidation reaction and Darcy 's law were coupled to explore the regulation law of thermal conductivity, permeability and other parameters on the thermal accumulation of coal rock. The results show that the connectivity of coal-rock fractures is positively correlated with fluid flow and temperature, and negatively correlated with pressure. The more connected fractures, the better the heat transfer effect, and the pressure drop rate in the fracture zone is significantly higher than that in the non-fracture zone. The model has high accuracy verified by experiments, and the chain trigger mechanism of unsteady heat transfer on coal spontaneous combustion is explained. From the perspective of multi-field coupling, it provides theoretical model and simulation technical support for the identification of spontaneous combustion risk in goaf and the prevention and control of thermal dynamic disasters.
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| [ 1 ] 赵耀江,邬剑明. 测氢探火机理的研究[ J ]. 煤炭学报,2003
( 3 ):260-263.
[ 2 ] 邬剑明,翟建山,等. 煤矿自燃火灾治理关键技术的研究与应用[ J ]. 中国安全科学学报,1998,8( 4 ):47 - 50.
[ 3 ] POSADAS A D, GIMNEZ D,QUIROZ R,et al. Multi-fractal char-
acterization of soil pore systems[ J ]. Soil Science Society of America Journal, 2003, 67: 1 361 - 1369.
[ 4 ] RIEU M, SPOSITO G.Fractal fragmentation soil porosity and soil
water properties of theory[ J ]. Soil Science Society of America Journal, 1991, 55: 1 231 - 1 238.
[ 5 ] JING H, PIET S. Local porosity analysis of pore structure in ceme-
nt paste[ J ]. Cement and Concrete Research, 2005, 35: 233 - 242.
[ 6 ] ANWAR H, NATHALIE O T. Diffusivity and pore distribution in
fractal and random media[ J ]. Physical Review E, 1999, 59( 3 ): 3 012 - 3 015.
[ 7 ] ADLER P M. Transports in fractal porous media[ J ]. Journal of
Hydrology, 1996, 18( 7 ): 195 - 213.
[ 8 ] 江丙友,林柏泉,吴海进,等. 煤岩超微孔隙结构特征及其分形规律研究[ J ]. 湖南科技大学学报:自然科学版,2010,25( 3 ):15 - 18.
[ 9 ] 夏彦儒,施明恒. 不平衡热力学在热质输运中的应用[ J ]. 南京工学院学报,1965( 2 ):105 - 111.
[ 10 ] 施明恒. 毛细多孔介质中发生高强度热质交换时的微分方程组[ J ]. 南京工学院学报,1980( 2 ):62 - 67.
[ 11 ] 王补宣,王 仁. 含湿建筑材料的导热系数[ J ]. 工程热物理学报,1983,4( 2 ):146 - 151.
[ 12 ] 孟繁烔. 理想化多孔介质霜层模型及霜层增长速率[ J ]. 大连海运学院学报,1987,13( 1 ):24 - 32.
[ 13 ] 姚爱如,王进修,程尚模. 冷冻干燥过程中非定常传热传质研究[ J ]. 华中理工大学学报,1988,16( 6 ):131 - 135.
[ 14 ] 李留仁,袁士义,胡永乐. 分形多孔介质渗透率与孔隙度理论关系模型[ J ]. 西安石油大学学报:自然科学版,2010,25( 3 ):49 - 51.
[ 15 ] 谢和平.岩土介质的分形孔隙和分形粒子[ J ]. 力学进展,1993,23( 2 ):145 - 164.
[ 16 ] 邓英尔,黄润秋. 岩石的渗透率与孔隙体积及迂曲度分形分析[ C ]//. 第八次全国岩石力学与工程学术大会论文集. 北京:
中国岩石力学与工程学会,2004:264 - 268.
[ 17 ] 施明恒. 多孔介质传热传质研究的进展与展望[ J ]. 中国科学基金,1995( 1 ):29 - 30.
[ 18 ] 刘 伟,钱高峰. 利用电厂余热制冷新技术治理矿井地热灾
害的实践[ J ]. 煤矿安全,2008( 10 ):42-44.
[ 19 ] 袁越锦,杨彬彬,焦 阳,等. 多孔介质干燥过程分形孔道网络模型与模拟:Ⅱ.数值模拟与试验验证[ J ]. 中国农业大学学报,2007( 4 ):55-60.
[ 20 ] 马 强,陈 俊,陈振乾. 分形多孔介质传热传质过程的格子Boltzmann模拟[ J ]. 化工学报,2014,65( S1 ):180.
[ 21 ] 余廷芳,柳阿亮,张 莹,等. 孔隙分布对多孔介质内流动和传热的影响[ J ]. 过程工程学报,2018,18( 3 ):469 - 476. |
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