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Analysis of Stress Field in Coal under Dynamic Impact Load of High-pressure Water Jet

机译:高压水射流动态冲击荷载作用下煤中应力场分析

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Under dynamic impact of high-pressure water jet, load is acted on the coal in ultra-short duration. As stress waves are generated, the stress field becomes very complicated in the coal/rock. Analyzing the stress field and its changes in the coal under the impact of water jet is the key task to study the process and mechanism of coal breakage by pressure water jet. In this paper, based on the equation of the stress wave transmitting in the medium of coal and the description about impact process of water jet acting on coal, an analytical model of impact of water jet on coal/rock has been developed, and the analytic solution of stress field in coal/rock under the dynamic impact load has been achieved. Several examples were then analyzed. The results indicate that: the process of water jet impact on coal can be divided to three stages, i.e. (a) no cross-flow stage, (b) steady flow stage, (c) unloading stage. At the non-cross-flow stage, the radial stress and the peak value of tangential stress are both tensile; at the stable flow stage, the radial stress is the compressive stress and the tangential stress is tensile stress; at the unloading stage, the radial stress turns into the tensile stress and the tangential stress becomes the compressive stress. The bigger the peak value of the stress is, the higher the unloading rate is. With the same unloading rates the magnitude of the radial stress is bigger than that of the tangential stress. The generation of the high tensile stress contributes to the damage of coal which has a low tensile strength.
机译:在高压水射流的动态冲击下,载荷在超短持续时间内作用于煤炭。由于产生应力波,应力场在煤/岩体中变得非常复杂。水射流冲击下压力场及其对煤炭的变化是研究压力水射流煤破损工艺和机制的关键任务。本文基于煤介质中的应力波传递的等式以及关于水射流作用对煤作用的影响过程的描述,开发了水射流对煤/岩体冲击的分析模型,以及分析达到了动态冲击载荷下煤/岩体中应力场的解决方案。然后分析了几个例子。结果表明:水射流对煤的冲击过程可以分为三个阶段,即(a)没有横流级,(b)稳定流动级,(c)卸载阶段。在非横流阶段,切向应力的径向应力和峰值是拉伸的;在稳定的流动阶段,径向应力是压缩应力,切向应力是拉伸应力;在卸载阶段,径向应力变成拉伸应力,切向应力成为压缩应力。压力的峰值越大,卸载率越高。具有相同的卸载率,径向应力的大小大于切向应力的大小。高拉伸应力的产生有助于抗拉强度低的煤的损坏。

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