The influence of advance speed on overburden movement characteristics in longwall coal mining: insight from theoretical analysis and physical simulation

Author:

Han Penghua12,Zhang Cun123ORCID,Ren Zhaopeng1,He Xiang1,Jia Sheng1

Affiliation:

1. State Key Laboratory of Coal Resources and Safe Mining, China University of Mining and Technology, Beijing 100083, China

2. School of Energy and Mining Engineering, China University of Mining and Technology (Beijing), Beijing 100083, China

3. State Key Laboratory of Groundwater Protection and Utilization by Coal Mining, Beijing 102209, China

Abstract

Abstract The advance speed of a longwall face is an essential factor affecting the mining pressure and overburden movement, and an effective approach for choosing a reasonable advance speed to realise coal mine safety and efficient production is needed. To clarify the influence of advance speed on the overburden movement law of a fully mechanised longwall face, a time-space subsidence model of overburden movement is established by the continuous medium analysis method. The movement law of overburden in terms of the advance speed is obtained, and mining stress characteristics at different advance speeds are reasonably explained. The theoretical results of this model are further verified by a physical simulation experiment. The results support the following conclusions. (i) With increasing advance speed of the longwall face, the first (periodic) rupture interval of the main roof and the key stratum increase, while the subsidence of the roof, the fracture angle and the rotation angle of the roof decrease. (ii) With increasing advance speed, the roof displacement range decreases gradually, and the influence range of the advance speed on the roof subsidence is 75 m behind the longwall face. (iii) An increase in the advance speed of the longwall face from 4.89 to 15.23 m/d (daily advancing of the longwall face) results in a 3.28% increase in the impact load caused by the sliding instability of the fractured rock of the main roof and a 5.79% decrease in the additional load caused by the rotation of the main roof, ultimately resulting in a 9.63% increase in the average dynamic load coefficient of the support. The roof subsidence model based on advance speed is proposed to provide theoretical support for rational mining design and mining-pressure-control early warning for a fully mechanised longwall face.

Funder

Beijing Municipal Natural Science Foundation

National Natural Science Foundation of China

State Key Laboratory of Coal Resources and Safe Mining

Fundamental Research Funds for the Central Universities

Foundation of State Key Laboratory of Coal Combustion

Publisher

Oxford University Press (OUP)

Subject

Management, Monitoring, Policy and Law,Industrial and Manufacturing Engineering,Geology,Geophysics

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