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Dynamics of crack penetration vs. branching at a weak interface: An experimental study

机译:裂纹渗透与弱界面处分支的动力学:一项实验研究

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In this paper, the dynamic crack-interface interactions and the related mechanics of crack penetration vs. branching at a weak interface are studied experimentally. The interface is oriented perpendicular to the incoming mode-Ⅰ crack in an otherwise homogeneous bilayer. The focus of this investigation is on the effect of interface location and the associated crack-tip parameters within the bilayer on the mechanics of the ensuing fracture behavior based on the optical methodologies laid down in Ref. Sundaram and Tippur (2016). Time-resolved optical measurement of crack-tip deformations, velocity and stress intensity factor histories in different bilayer configurations is performed using Digital Gradient Sensing (DCS) technique in conjunction with high-speed photography. The results show that the crack path selection at the interface and subsequently the second layer are greatly affected by the location of the interface within the geometry. Using optically measured fracture parameters, the mechanics of crack penetration and branching are explained. Counter to the intuition, a dynamically growing mode-Ⅰ approaching a weak interface at a lower velocity and stress intensity factor penetrates the interface whereas a higher velocity and stress intensity factor counterpart gets trapped by the interface producing branched daughter cracks until they kink out into the next layer. An interesting empirical observation based on measured crack-tip parameters for crack penetration and branching is also made.
机译:本文研究了在弱界面处的动态裂纹-界面相互作用以及裂纹渗透与分支的相关机理。界面的取向垂直于否则为均质双层的传入Ⅰ型裂纹。本研究的重点是基于参考文献中规定的光学方法,界面位置和双层内相关的裂纹尖端参数对随后的断裂行为力学的影响。 Sundaram和Tippur(2016)。使用数字梯度传感(DCS)技术结合高速摄影技术,对不同双层结构中的裂纹尖端变形,速度和应力强度因子历史进行时间分辨光学测量。结果表明,界面处以及随后第二层的裂纹路径选择受几何形状中界面位置的影响很大。使用光学测量的断裂参数,解释了裂纹渗透和分支的机理。与直觉相反,动态增长的Ⅰ型以较低的速度和应力强度因子接近弱界面,但会渗透到界面,而较高的速度和应力强度因子对应物则被界面捕获,产生分支的子裂纹,直到它们扭结成裂纹。下一层。还基于测得的裂纹尖端参数对裂纹的渗透和分支进行了有趣的经验观察。

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