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HYDROGEN-INDUCED CRACK INTERACTION AND COALESCENCE: THE ROLE OF LOCAL CRYSTALLOGRAPHIC TEXTURE

机译:氢致裂纹的相互作用和共性:局部晶体学纹理的作用

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The role of local crystallographic texture (microtexture) in llydrogen-induced crack interaction and coalescence is fflvestigated in pipeline steels using stress simulation and orientation imaging microscopy. It is shown that, depending on the material's microtexture, crack interaction and coalescence can significantly depart from the conditions predicted by the mixed-mode fracture mechanics of isotropic linear elastic materials. The results of stress simulations and microtexture analyses conducted on several observed crack interaction zones show that the presence of cleavage planes and slip systems favorably oriented to the mixed-mode stresses can activate low-resistance transgranular paths along which cracks can merge. In such situations, the response of the material to the mixed-mode Stress state resulting from crack interaction produces results drastically different to that predicted by the fracture mechanics of isotropic linear elastic materials. This evidences the need for considering the material's crystallographic texture when developing predictive models for the stepwise propagation of hydrogen-induced cracking in pipeline steels.
机译:利用应力模拟和取向成像显微镜研究了管线钢中局部晶体织构(微观组织)在氢致裂纹相互作用和聚结中的作用。结果表明,取决于材料的微观结构,裂纹的相互作用和聚结会明显偏离各向同性线性弹性材料的混合模式断裂力学所预测的条件。在几个观察到的裂纹相互作用区域上进行的应力模拟和微观纹理分析的结果表明,有利于混合模式应力的劈裂面和滑动系统的存在可以激活低电阻的跨晶路径,沿着该路径可以合并裂纹。在这种情况下,材料对裂纹相互作用产生的混合模式应力状态的响应所产生的结果与各向同性线性弹性材料的断裂力学所预测的结果大不相同。这证明了在开发用于预测氢在管道钢中逐步扩展的氢致裂纹的预测模型时,需要考虑材料的晶体织构。

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