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Numerical investigation of unstable rock failure in underground mining condition

机译:地下开采条件下不稳定岩石破坏的数值研究

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Underground coal mining affects the stress distribution in rock mass and may induce slip failures along large existing rock discontinuities and sizable compressive failures of coal in mining faces and sidewalls. When such failures occur in an unstable and uncontrollable manner, they can be accompanied by a significant release of strain energy from the surrounding rock and potentially create coal burst events. This paper focuses on identifying failure stability of rock and rock discontinuities in terms of their manifestation as stable and unstable manner in coal mining settings. The studies use numerical modeling and consider failure stability of both rock discontinuities in slip and coal material in compression. The influence of the slip failure stability on the compressive failure stability is also investigated. The Universal Distinct Element Code (UDEC) is used with its optional constitutive models the Continuously Yielding joint and the Mohr-Coulomb strain softening model. A laboratory scale numerical model of a double shear test setup is developed and used to assess the ability of the numerical code in detecting the stability during discontinuity slip failures. The studies performed using this model confirmed the ability of the numerical code in differentiating stable and unstable slip failures when using the failure stability criterion based on the relative stiffnesses of loading system and failing discontinuities. Using the numerical double shear test models, criteria and tools are developed for identifying the failure stabilities in larger in situ scale numerical models. The in situ scale models allowed studies of the failure stabilities of existing rock discontinuities under the influence of an advancing excavation. The results show that both stable and unstable slip failures can occur at an existing rock discontinuity depending on the post-failure characteristic of the discontinuity and the loading stiffness of the surrounding rock. The loading stiffness is observed to continuously reduce with increasing mining extent. Additional in situ models are also built to study the effect of coal seam-host rock interfaces on the failure stability of sidewalls and mining faces in coal mining settings. The results show that unstable sidewall failures may occur when a sudden de-confinement is triggered by an unstable slip failure at the coal-rock interfaces. The existence of weak regions along such interfaces can also contribute to unstable compressive failures of mining faces and sidewalls.
机译:地下煤矿开采会影响岩体中的应力分布,并可能导致沿现有大块岩石间断的滑移破坏,以及采煤工作面和侧壁中煤的较大压缩破坏。当此类破坏以不稳定且不可控制的方式发生时,可能伴随着从周围岩石中释放出大量的应变能,并有可能引起煤爆事件。本文着眼于确定岩石和岩石间断的破坏稳定性,以其在煤矿环境中的稳定和不稳定方式表现出来。这些研究使用数值模型,并考虑了滑动中岩石不连续性和压缩中煤材料的破坏稳定性。还研究了滑动破坏稳定性对压缩破坏稳定性的影响。通用唯一元素代码(UDEC)与其可选的本构模型,连续屈服接头和Mohr-Coulomb应变软化模型一起使用。开发了双剪切试验装置的实验室规模数值模型,并用于评估数值代码在不连续滑动故障期间检测稳定性的能力。使用该模型进行的研究证实,当使用基于载荷系统的相对刚度和失效不连续性的失效稳定性准则时,数字代码能够区分稳定和不稳定的滑移失效。使用数值双剪切测试模型,开发了用于在较大的现场比例数值模型中识别破坏稳定性的标准和工具。原位比例模型允许研究在前进的开挖影响下现有岩石不连续性的破坏稳定性。结果表明,取决于不连续点的破坏后特征和周围岩石的载荷刚度,在现有的岩石不连续点上都可能发生稳定和不稳定的滑动破坏。观察到载荷刚度随着采矿程度的增加而持续降低。还建立了其他原位模型来研究煤层-主岩界面对采煤环境中侧壁和采煤面破坏稳定性的影响。结果表明,当煤-岩石界面处发生不稳定的滑动破坏而触发突然的限位作用时,可能会发生不稳定的侧壁破坏。沿这样的界面存在薄弱区域还可能导致开采面和井壁的不稳定压缩破坏。

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