The Stability Evaluation of Shaft during Drastic Drawdown Dewatering of Alluvium

Author:

Du Mingze123ORCID,Xu Yanchun4,Duan Heng4,Li Wen12

Affiliation:

1. Mine Safety Technology Branch, China Coal Research Institute, Beijing 100013, China

2. State Key Lab of Coal Resource High Efficient Mining and Clean Utilization, China Coal Research Institute, Beijing 100013, China

3. Liaoning Technical University, Fuxin 123000, China

4. School of Energy and Mining Engineering, China University of Mining and Technology, Beijing 100083, China

Abstract

The hydrophobicity of the aquifer at the bottom of the porous alluvium will affect the stability of the shaft. According to the changes of water level and the compressive amount of alluvium, we can evaluate the shaft stability and predict the shaft failure. In this work, the simulation model of the auxiliary shaft in the Zhuxianzhuang Coal Mine is generated by using the Nsdc software to evaluate the stability of the shaft during drastic drawdown dewatering. Based on the measured hydrophobic compression ratio in an adjacent coal mine, the compressive amounts of the strata near the main and auxiliary shafts in the Zhuxianzhuang Coal Mine are predicted under the condition of drastic drawdown dewatering, which will be 249.69 mm and 302.75 mm, respectively. It is more likely that the shaft wall may fracture in the 15th day (fourth load level) under the condition of drastic drawdown dewatering. The formation compressive amount near the auxiliary shaft is approximately 320 mm, which is close to the measured predicted value. At the same time, the Fisher discriminant model is established, and it is predicted that the state of the main and auxiliary shafts will be failure under the conditions of drastic drawdown dewatering in the Zhuxianzhuang Coal Mine. Based on the simulating results, the technical means of using the ground grouting for early prevention and control is proposed.

Funder

National Science and Technology Major Project of China

Publisher

Hindawi Limited

Subject

Mechanical Engineering,Mechanics of Materials,Geotechnical Engineering and Engineering Geology,Condensed Matter Physics,Civil and Structural Engineering

Reference35 articles.

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