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Principle and practice of coupling support of double yielding shell of soft rock roadway under high stress 被引量:10

Principle and practice of coupling support of double yielding shell of soft rock roadway under high stress
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摘要 In order to ensure the safety and stability of the soft rock roadway under high stress, based on the char- acteristics of the surrounding rock deformation and failure, this paper presented the support technology“coupling support of double yielding shell”, then gave the design method of inner and outer shells and analyzed the principle and requirements of the support technology by taking the -850 meast belt mad-way of Qujiang coal mine as the background. The field application results show that the support technol- ogy can control the soft rock roadway deformation better under high stress. The displacement between roadway sides was 851 mm, the displacement of the roof was 430 mm, and the displacement of the floor was 510 mm. In order to ensure the safety and stability of the soft rock roadway under high stress, based on the characteristics of the surrounding rock deformation and failure, this paper presented the support technology‘‘coupling support of double yielding shell'', then gave the design method of inner and outer shells and analyzed the principle and requirements of the support technology by taking the -850 m east belt roadway of Qujiang coal mine as the background. The field application results show that the support technology can control the soft rock roadway deformation better under high stress. The displacement between roadway sides was 851 mm, the displacement of the roof was 430 mm, and the displacement of the floor was 510 mm.
机构地区 School of Mines
出处 《International Journal of Mining Science and Technology》 SCIE EI 2014年第4期513-518,共6页 矿业科学技术学报(英文版)
基金 supported by the National Natural Science Foundation for Youth (No. 51304200) the China Postdoctoral Science Foundation Project (No. 2013M540477)
关键词 High stress soft rock roadway Yielding shell Reticulated shell Short bolting 软岩巷道 高应力 外壳 耦合 原理 屈服 支撑技术 变形破坏
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