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Mechanisms of short-fatigue-crack initiation and propagation in a beta-Ti alloy

机译:β-Ti合金中短裂纹的萌生和扩展的机理

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The microstructurally short-crack initiation and early propagation were studied on the metastable beta-Ti alloy Timetal(R) LCB in the solution heat-treated bcc beta microstructure under symmetrical pull-push fatigue testing. By means of a finite-element treatment in combination with local displacement measurements applying a laser interferometric strain-displacement gauge (ISDG), it was shown that elastic anisotropy gives rise to high mechanical stresses at certain grain boundaries (GBs). Large-angle GBs were observed to be preferred sites for short-crack initiation. Two modes of fatigue crack initiation were found: one is crack formation along slip bands, often resulting in transgranular crack propagation; the second is intergranular cracking of GBs. Using electron back-scattered diffraction (EBSD), local crystallographic orientations were determined and hence the role of GB types in the process of short crack initiation and growth could be taken into account. On the basis of the experimental observations and measurements, the preferred crystallographic conditions for short crack initiation and growth were revealed. The ISDG system was applied to measure the local crack opening displacements of short cracks in order to characterize the dependence of the short-crack closure phenomena on the applied load. [References: 24]
机译:在对称拉-推疲劳试验下,对固溶的bccβ微观组织中的亚稳态β-Ti合金Timetal(R)LCB进行了微观结构的短裂纹萌生和早期扩展的研究。通过有限元处理并结合使用激光干涉应变位移计(ISDG)进行的局部位移测量,结果表明,弹性各向异性会在某些晶界(GBs)处产生较高的机械应力。观察到大角度GBs是短裂纹引发的首选位置。发现了两种疲劳裂纹萌生模式:一种是沿滑带形成裂纹,通常导致沿晶裂纹扩展。第二个是GBs的晶间裂纹。使用电子背散射衍射(EBSD),确定了局部晶体学取向,因此可以考虑GB类型在短裂纹萌生和生长过程中的作用。根据实验观察和测量,揭示了短裂纹萌生和生长的优选晶体学条件。 ISDG系统用于测量短裂纹的局部裂纹开口位移,以表征短裂纹闭合现象对所施加载荷的依赖性。 [参考:24]

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