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The Dynamic Response and Failure Model of Thin Plate Rock Mass under Impact Load

机译:冲击载荷下薄板岩体的动态响应与故障模型

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The layered rock mass widely exists in mining, construction, transportation, and water conservancy projects, and the damage phenomena of plate crack and spalling often occurs in the process of coal and rock dynamic disaster in deep mining. Therefore, the rock mass nearby excavation surface is usually considered to be composed of layers of thin plate rock mass to reveal the damage and failure mechanism of rock mass. In the whole dynamic process of mining and coal and rock dynamic disaster, rock mass would bear the dynamic disturbance from mine earthquake, and at present, the mechanical characteristics of rock mass are mainly studied under static load, while dynamic mechanical response characteristics and the mechanisms of dynamic damage, failure, and disaster-causing are still unclear. This study mainly focused on the dynamic response characteristic and failure mechanism of rock mass based on a rectangular thin plate model. The frequency equations and deflection equations of the thin plate rock mass with different boundary conditions (S-F-S-F, S-C-S-C, and C-C-C-C) were established under free vibration by the thin plate model and the dual equation of the Hamilton system, and the deflection equations under impact load were derived based on the Duhamel integral. And then, the effective vibration modes of the thin plate rock mass with different boundary conditions and their natural frequencies were obtained by Newton’s iterative method. Based on the third-strength theory and the numerical simulation results by LS-DYNA, the maximum shear of the effective vibration modes and the processes of damage and failure under impact load were analyzed. The research results showed that the initial position of damage and failure may be determined by effective vibration mode with the lowest frequency; the develop tendency of which by the combined actions of other effective vibration modes and the effective vibration modes with lower frequency could have greater influence on the process of damage and failure of the thin plate rock mass, which are beneficial to revealing the mechanism of coal and rock dynamic disaster.
机译:分层岩体广泛存在于采矿,建筑,运输和水利项目中,造成板裂纹和剥落的损伤现象通常发生在深处煤炭和岩石动态灾害过程中。因此,附近的挖掘表面的岩石质量通常被认为是由薄板岩体层组成,以揭示岩体的损坏和失效机制。在整个动态过程中采矿和煤炭和岩石动态灾难,岩体将承受矿山地震的动态障碍,目前,岩体的机械特性主要在静电负载下研究,而动态机械响应特性和机制。动态损坏,失败和造成灾害仍然不明确。本研究主要集中在基于矩形薄板模型的岩体动态响应特性和故障机理。通过薄板模型的自由振动和汉密尔顿系统的双式建立具有不同边界条件(SFSF,SCSC和CCCC)的薄板岩体的频率方程和偏转方程,以及冲击载荷下的偏转方程基于Duhamel积分来源。然后,通过牛顿的迭代方法获得了具有不同边界条件的薄板岩体的有效振动模式及其自然频率。基于第三强度理论和LS-DYNA的数值模拟结果,分析了有效振动模式的最大剪切和冲击载荷下的损伤过程。研究结果表明,损坏的初始位置和失效的初始位置可以通过具有最低频率的有效振动模式来确定;通过其他有效振动模式的组合动作和较低频率的有效振动模式的发展趋势可能对薄板岩体的损坏过程产生更大的影响,这有利于揭示煤的机制和摇滚动态灾难。

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