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首页> 外文期刊>Engineering Fracture Mechanics >Characteristic crack-tip distances in fracture criteria: Is crack propagation discontinuous?
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Characteristic crack-tip distances in fracture criteria: Is crack propagation discontinuous?

机译:断裂准则中的特征裂纹尖端距离:裂纹扩展是不连续的吗?

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The present paper describes a possible mechanism for discontinuous crack advance in which surface separation occurs initially not at the crack-tip itself but within the crack-tip plastic zone of size r_p, at the mid-point of the crack-tip characteristic distance d (identified here with the finite growth step DELTA a), i.e., at the region of maximum opening tensile stress, spreading towards (and also away from) the crack-tip. The crack extension occurs when the crack-tip is reached and full opening over the distance d is completed. Finite element analyses show that this mechanism causes the formation of a rippled crack face surface in elastic-plastic materials in which irreversible plastic deformations take place during each growth step, in sharp contrast with the smooth surface created in ideal elastic materials in which all deformations are fully reversible. Some pictorial evidence of void formation ahead of the crack tip and of ripples during propagation, found in the literature, is presented. Although the present analysis is from a continuum standpoint it is acknowledged that micro structural features and mechanisms can condition the fracture events taking place in the process zone. The implication to the brittle-ductile transition of the dependence of the energy release rate, G~(DELTA E), on the ratio q (= DELTA a/r_p) is also discussed.
机译:本文描述了一种可能的不连续裂纹扩展机制,其中表面分离最初不是在裂纹尖端本身处发生的,而是在裂纹尖端特征距离d的中点处出现在大小r_p的裂纹尖端塑性区内。在这里用有限的生长步骤DELTA a)来识别,即在最大张拉应力的区域,朝向裂纹尖端(并且也远离裂纹尖端)扩展。当达到裂纹尖端并且在距离d上完全打开时,就会发生裂纹扩展。有限元分析表明,这种机制会导致在弹塑性材料中形成波纹状的裂纹面,在每个生长步骤中都会发生不可逆的塑性变形,这与理想的弹性材料所产生的光滑表面形成鲜明对比,在理想的弹性材料中,所有变形都完全可逆的。文献中提供了一些图片证据,表明在裂纹尖端之前形成了空隙并在传播过程中形成了波纹。尽管目前的分析是从连续的角度来看的,但公认的是微观结构特征和机制可以调节在加工区发生的断裂事件。还讨论了能量释放速率G〜(ΔE)对比率q(=Δa / r_p)的依赖性对脆性-延性转变的影响。

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