APPLIED GEOPHYSICS
 
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应用地球物理  2020, Vol. 17 Issue (3): 465-474    DOI: 10.1007/s11770-020-0856-0
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基于微震事件S 波和P 波能量比值的金属矿山开采过程围岩破裂机制分析*
刘建坡♦,1, 司英涛1, 张长银1, 王人1
1.东北大学深部金属矿山安全开采教育部重点实验室, 沈阳,110819
Estimation of fracturing mechanisms by the ratio of radiated energy between S and P waves of microseismic events during mining in metal mines*
Liu Jian-Po 1, Si Ying-Tao 1, Zhang Chang-Yin 1, and Wang Ren 1
1. Key Laboratory of Ministry of Education on Safe Mining of Deep Metal Mines, Northeastern University, Shenyang 110819, China.
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摘要 深部金属矿山开采过程中由于强开采扰动导致岩体发生不同类型破坏,及时了解岩体破坏的发生机制,可以有效预警地压灾害的发生。微震信号的产生与岩体内部破裂与扩展有关,反映岩体内部状态的变化。基于微震事件S 波和P 波能量比值的岩体破裂机制快速反演方法,广泛应用于矿山地压灾害风险评估。本文应用该方法对红透山铜矿和阿舍勒铜矿深部采场围岩破裂机制进行了研究,分析了开采过程中围岩内部微震事件的时空演化特征。结果表明:在采场卸荷作用引起的岩体非剪切破裂过程中,拉伸破裂占主导地位,占破裂事件总数的62%;在采场回采过程中,尤其是开采初期,卸荷作用较为强烈,对于采场顶板滑移型冒落,剪切破裂占破裂事件总数的68%,特别是当矿体和岩体的力学性质差异较大时,爆破扰动作用极易诱发接触带附近岩体发生滑移破坏,因此,需要控制顶板暴露面积,避免采场顶板拉应力集中。本文得到的顶板破裂诱发的张拉型和剪切型微地震事件时空变化规律有助于指导深部矿山回采过程中地压灾害的有效防控。
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关键词岩体破坏   微震   ES/EP   辐射能量   破裂机制     
Abstract: In the mining process of deep metal mines, different types of rock mass instability failures are caused by strong mining disturbance. It is beneficial to master the fracture mechanism of rock mass in time to effectively prevent and control the ground pressure disasters. Microseismic signals are generated by the propagation and expansion of cracks inside the rock mass that contain plentiful information about the structural changes of rock mass. The ratio of the radiated energy of S and P waves (Es/Ep) of microseismic events can fast and effectively calculate the rock fracture mechanism, which is widely used for ground pressure hazard risk assessment. In this paper, this method was used to analyze the fracture mechanism of rock mass around deep stope in Hongtoushan copper mine and Ashele copper mine. Furthermore, the spatial distribution characteristics and proportion changes of microseismic events with different fracture mechanisms along with the mining process were studied. The results show that tensile cracks play a dominant role, accounting for 62% of the total events, during non-shear fracturing of the rock mass caused by the stoping unloading effect, while shear cracks occupy 68% of the total events during orebody slip failure. When the physical and mechanical properties of the orebody and rock mass are signifi cantly different, slip failure along their contact zone is prone to occur under blasting disturbance. During deep mining, it is necessary to control the exposed area of the roof by each stoping, especially during the earlier mining stage, to avoid tensile stress concentration. The temporal and spatial variation of tension cracks and shear cracks induced by roof damage obtained in this paper can guide the prevention and control of ground pressure disasters in deep mining eff ectively.
Key wordsRock mass failure   microseismic   Es/Ep   radiated energy   fracturing mechanisms   
收稿日期: 2020-05-26;
基金资助:

基金资助项目: 本研究项目由国家重点研发项目(2017YFC0602904), 国家自然科学基金(51974059), 中央高校基本科研业务费(N180115010)资助。

通讯作者: 刘建坡 (Email: liujianpo@mail.neu.edu.cn)     E-mail: liujianpo@mail.neu.edu.cn
作者简介: 刘建坡,副教授,2002-2011 年本硕博攻读于东北大学,现任职于东北大学深部金属矿山安全开采教育部重点实验室,主要从事矿山微震监测技术的研发与应用研究。(Email: liujianpo@mail.neu.edu.cn)
引用本文:   
. 基于微震事件S 波和P 波能量比值的金属矿山开采过程围岩破裂机制分析*[J]. 应用地球物理, 2020, 17(3): 465-474.
. Estimation of fracturing mechanisms by the ratio of radiated energy between S and P waves of microseismic events during mining in metal mines*[J]. APPLIED GEOPHYSICS, 2020, 17(3): 465-474.
 
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