Theoretical frontiers of in-situ rock mechanics under multi-physics-phase coupling in deep exploration of fluidized coal mining
ZHOU Hongwei
ZHANG Ru
XUE Dongjie
LI Cunbao
GAO Fuqiang
JU Feng
FAN Jianguo
CHEN Lei
XIE Heping
Abstract:As shallow energy resources on Earth are progressively depleted,enhancing the capability to extract deep coal resources has become an inevitable trend in global scientific frontiers and technological development,as well as a stra-tegic choice to ensure China's long-term energy security.The solid fossil resource nature and inherent energy attribute of coal endowment.Coal-fluidized mining is a disruptive technology that aims to break through the depth limits of solid min-eral resource extraction.Its key lies in establishing a new theoretical and technical foundation for deep engineering sci-ence that can account for the influence of the in-situ occurrence environment in solid-mineral-resource-fluidized mining.Existing rock mechanics theories and methods struggle to incorporate the effects of the deep in-situ environment(current strength criteria,constitutive equations,etc.,are depth-independent and unrelated to the deep in-situ environment),mak-ing them inadequate for effectively guiding the development of fluidized mining technologies and disaster prevention and control.There is an urgent need to develop new theories and methods for in-situ rock mass mechanics that consider the multi-physics and multi-phase environmental influences in fluidized mining of deep coal resources.Establishing a theory of in-situ multi-physics and multi-phase rock mass mechanics is fundamental to achieving solid-mineral-resource-fluid-ized mining.Regarding the new theoretical system of rock mechanics that accounts for the influence of the in-situ occur-rence environment in fluidized mining of deep coal resources,four key scientific issues have been identified:① The dif-ferential laws of the intrinsic parameters of the occurrence environment at different depths in solid-mineral-resource-fluid-ized mining and the physical-mechanical behavior of rock masses;② In-situ rock mass mechanics theory that considers the multi-physics and multi-phase environmental influences in solid-mineral-resource-fluidized mining;③ Mechanisms of surrounding rock stability and strata control,as well as the genesis of dynamic disasters in solid-mineral-resource-fluid-ized mining;④ Topological structure and construction of negative-carbon backfill materials in solid-mineral-resource-flu-idized mining.Complementarily,five key technological issues are proposed:① Technology for acquiring intrinsic inform-ation on the in-situ multi-physics and multi-phase occurrence environment at different depths in solid-mineral-resource-fluidized mining;② Synchronous multi-parameter testing technology for rock mass deformation under reconstructed flu-idized mining environments of solid mineral resources;③ Intelligent numerical simulation technology for the multi-phys-ics coupled failure of surrounding rock in fluidized mining of solid mineral resource;④ Modification and performance regulation technology of negative-carbon backfill materials for solid-mineral-resource-fluidized mining;⑤ Negative-car-bon efficient backfilling technology for solid-mineral-resource-fluidized mining.Finally,based on the scientific and tech-nological issues,seven main research topics are delineated:① Principles and technology for in-situ testing of rock mass mechanical behavior at different depths in solid-mineral-resource-fluidized mining;② Methods and technology for syn-chronously testing multi-field and multi-phase rock mass deformation under reconstructed fluidized mining environments of solid mineral resource;③ In-situ rock mass mechanics theory and disaster prediction methods for solid-mineral-re-source-fluidized mining;④ Technologies for surrounding rock stability and safety evaluation methods in solid-mineral-re-source-fluidized mining;⑤ Fine acoustic wave detection technology for disaster sources ahead of roadways during excav-ation in solid-mineral-resource-fluidized mining;⑥ Negative-carbon backfilling and strata control technology in solid-mineral-resource-fluidized mining;⑦ Methods for preventing and controlling dynamic disasters in deep mining and en-gineering demonstrations.Based on the above,a theoretical framework of in-situ multi-physics and multi-phase rock mass mechanics for solid-mineral-resource-fluidized mining will be constructed,providing a theoretical foundation and techno-logical support for solid-mineral-resource-fluidized mining in the future.
Keywords:deep miningmulti-physics and multi-phasedeep in-situ rock mechanicsfluidizedsurrounding rock sta-bilitynegative-carbon backfilling
Publication Date:2026-01-31
Online Publishing Date:2026-03-27(First online date of this platform, not the publication date of the document)
Pages:18( 352-369 )
Journal of China Coal Society

Journal of China Coal Society

ISTICPKUEICSCD
ISSN:0253-9993
Year, Vol.(Issue):2026,51(1)