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The surface-forming energy release rate versus the local energy release rate

机译:表面形成能量释放速率与局部能量释放速率相比

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This paper identifies two ways to extract the energy (or power) flowing into a crack tip during propagation based on the power balance of areas enclosed by a stationary contour and a comoving contour. It is very interesting to find a contradiction that two corresponding energy release rates (ERRs), a surface-forming ERR and a local ERR, are different when stress singularity exists at a crack tip. Besides a rigorous mathematical interpretation, we deduce that the stress singularity leads to an accompanying kinetic energy at the crack tip. The local ERR G(L) represents the driving force to overcome the surface energy and the accompanying kinetic energy, while the surface-forming ERR G(s) represents the driving force to overcome the surface energy only. Their advantages and disadvantages are discussed. We recommend using the surface-forming ERR G(s) based fracture criterion for a crack propagation in elastic-plastic materials, since it has a wide applicability and concise formulae which are easy to compute among all energy based criteria. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文识别出在基于固定轮廓和分配轮廓包围的区域的电力平衡期间提取流入裂纹尖端的能量(或功率)的方法。当在裂纹尖端存在应力奇异性时,找到两个相应的能量释放速率(错误),表面形成错误和局部错误的矛盾是非常有趣的。除了严格的数学解释之外,我们推导出应力奇点导致裂缝尖端的伴随动能。局部ERR G(L)表示克服表面能量和伴随动能的驱动力,而表面形成误差G(S)代表仅克服表面能的驱动力。讨论了它们的优缺点。我们建议使用基于表面形成的ERR G(S)用于弹性塑料材料中的裂纹传播的裂缝标准,因为它具有广泛的适用性和简洁的公式,易于计算所有能量的标准。 (c)2017 Elsevier Ltd.保留所有权利。

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