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Localised knife waves in a structured interface

机译:结构化界面中的局部刀波

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We consider a Mode III lattice with an interface layer where the dynamic crack growth is caused by a localised sinusoidal wave. In the wave-fracture scenario, the 'feeding wave' (here also called the knife wave) delivers energy to the moving crack front, while the dissipative waves carry a part of this energy away from the front. The questions addressed here are:rn1. What are the conditions of existence of the localised knife wave?rn2. What is the lower bound of the amplitude of the feeding wave, which supports the crack propagation, for a given deformational fracture criterion?rn3. How does the crack speed depend on the amplitude of the feeding wave?rn4. What are the dissipative waves? How much energy is irradiated by these waves and what is the total dissipation?rn5. What are the conditions of existence of the steady-state regime for the propagating crack?rnWe consider analytically two established regimes: the steady-state regime, where the motion of neighbouring masses (along the interface) differs only by a constant shift in time, and an alternating-strain regime, where the corresponding amplitudes differ by sign. We also present the numerical simulation results for a model of a high-contrast interface structure. Along with the energy of the feeding and dissipative waves, an energy radiated to the bulk of the lattice is identified.
机译:我们考虑具有界面层的III型晶格,其中动态裂纹扩展是由局部正弦波引起的。在波浪破裂的情况下,“进给波”(此处也称为刀波)将能量传递到运动的裂纹前沿,而耗散波将一部分能量从前沿带走。这里解决的问题是:rn1。局部刀波的存在条件是什么?对于给定的变形断裂准则,支持裂纹扩展的馈电波幅度的下限是多少?裂纹速度如何取决于馈电波的振幅?有哪些耗散波?这些波辐射多少能量,总损耗是多少?传播裂纹的稳态状态的存在条件是什么?我们从分析上考虑两个已建立的状态:稳态状态,其中相邻质量(沿界面)的运动仅随时间的恒定偏移而不同,以及交替应变模式,其中相应的振幅以符号不同。我们还提供了高对比度界面结构模型的数值模拟结果。连同进给波和耗散波的能量一起,可以识别出辐射到大部分晶格的能量。

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