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Coupling of two methods, waveform superposition and numerical, to model blast vibration effect on slope stability in jointed rock masses

机译:波形叠加和数值两种方法的耦合,以模拟爆炸振动对节理岩体边坡稳定性的影响

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Drilling and blasting is a major technology in mining since it is necessary for the initial breakage of rock masses in mining. Only a fraction of the explosive energy is efficiently consumed in the actual breakage and displacement of the rock mass, and the rest of the energy is spent in undesirable effects, such as ground vibrations. The prediction of induced ground vibrations across a fractured rock mass is of great concern to rock engineers in assessing the stability of rock slopes in open pit mines. The waveform superposition method was used in the Col-E-Gohar iron mine to simulate the production blast seismograms based upon the single-hole shot vibration measurements carried out at a distance of 39 m from the blast. The simulated production blast seismograms were then used as input to predict particle velocity time histories of blast vibrations in the mine wall using the universal distinct element code (UDEC). Simulated time histories of particle velocity showed a good agreement with the measured production blast time histories. Displacements and peak particle velocities were determined at various points of the engineered slope. The maximum displacement at the crest of the nearest bench in the X and Y directions was 26 mm, which is acceptable in regard to open pit slope stability.
机译:钻探和爆破是采矿中的一项主要技术,因为在采矿过程中岩体的初始破碎是必不可少的。在岩体的实际破裂和位移中,只有一小部分爆炸性能量被有效消耗,而其余的能量则花费在不良影响上,例如地面振动。岩石工程师在评估露天矿山岩石边坡的稳定性时,非常需要预测在裂隙岩体上引起的地面振动。在Col-E-Gohar铁矿中使用波形叠加法来模拟生产爆破地震图,该爆破地震图基于距爆破39 m处进行的单孔爆破振动测量。然后使用模拟的生产爆炸地震图作为输入,使用通用独特元素代码(UDEC)预测矿井壁中爆炸振动的粒子速度时间历史。模拟的粒子速度时间历史记录与测得的生产爆炸时间历史记录吻合良好。在工程坡度的各个点确定了位移和峰速度。最近的工作台在X和Y方向的顶部最大位移为26 mm,就露天矿的边坡稳定性而言,这是可以接受的。

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