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Experimental verification of the percussive drilling model

机译:打击钻探模型的实验验证

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This paper focuses on the experimental verification of a dynamical model describing percussive drilling. The design of the experimental apparatus is introduced firstly, and then the dynamic interactions between rock and indenter are studied experimentally by varying three control parameters, including frequency and amplitude of excitation, and pneumatic pressure applied on the indenter. Additionally, the influence of rock stiffness is analyzed by testing different rock-indenter combinations. Meanwhile, the corresponding numerical simulations were conducted showing good agreements with the experimental results. According to the detailed bifurcation analyses, the dynamic responses of indenter mainly display period-one motions which can further develop into period-two motions via period-doubling bifurcation scenarios, or even chaotic motions by period-doubling cascade. The chaotic vibration of indenter can also return to periodic motions via inverse period-doubling bifurcation or fold bifurcation. Although the period-one motion is the main dynamic response in the considered parameter ranges, its impact number per excitation period varies with parameters, which directly affects the maximal impact acceleration of indenter. This results in more energy being dissipated during repeated weak impacts. Therefore, strong impacts are obtained if the indenter is exhibiting the period-one with one-impact motion. For such a purpose, high excitation frequency and amplitude are suggested, however, the high pneumatic pressure should be avoided since it can trigger chattering of the indenter.
机译:本文重点介绍了描述拍卖次勘探的动态模型的实验验证。首先介绍了实验装置的设计,然后通过改变三个控制参数来实验研究岩石和压痕之间的动态相互作用,包括施加频率和振幅,并且在压头上施加气动压力。另外,通过测试不同的岩石压痕组合来分析岩石刚度的影响。同时,进行了相应的数值模拟,表现出与实验结果的良好协议。根据详细的分析分析,压痕的动态响应主要显示出期间的一个动作,通过时期加倍的分叉场景,甚至通过时期加倍的级联的混乱动作进一步发展为期两种运动。压缩的混沌振动也可以通过逆周期 - 加倍分叉或折叠分叉返回周期运动。虽然期间 - 一个运动是考虑参数范围内的主要动态响应,但其每个激励时段的影响数随参数而异,这直接影响压头的最大冲击加速度。这导致更多的能量在反复弱的影响期间消失。因此,如果缩进呈现出具有一次冲击运动的时段,则获得强烈的冲击。对于这种目的,建议高励磁频率和幅度,然而,应避免高气压,因为它可以触发压头的抖动。

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