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首页> 外文期刊>Journal of Materials Engineering and Performance >Micromechanics-Based Damage Analysis of Fracture in Ti5553 Alloy with Application to Bolted Sectors
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Micromechanics-Based Damage Analysis of Fracture in Ti5553 Alloy with Application to Bolted Sectors

机译:基于微力学的Ti5553合金断裂损伤分析及其在螺栓连接中的应用

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摘要

A physics-based, uncoupled damage model is calibrated using cylindrical notched round tensile specimens made of Ti5553 and Ti-6Al-4V alloys. The fracture strain of Ti5553 is lower than for Ti-6Al-4V in the full range of stress triaxiality. This lower ductility originates from a higher volume fraction of damage sites. By proper heat treatment, the fracture strain of Ti5553 increases by almost a factor of two, as a result of a larger damage nucleation stress. This result proves the potential for further optimization of the damage resistance of the Ti5553 alloy. The damage model is combined with an elastoviscoplastic law in order to predict failure in a wide range of loading conditions. In particular, a specific application involving bolted sectors is addressed in order to determine the potential of replacing the Ti-6Al-4V by the Ti5553 alloy.
机译:使用由Ti5553和Ti-6Al-4V合金制成的圆柱状缺口圆形拉伸试样,对基于物理的非耦合损伤模型进行校准。在整个三轴应力范围内,Ti5553的断裂应变低于Ti-6Al-4V。这种较低的延展性源自损伤部位的较高体积分数。通过适当的热处理,由于更大的损伤形核应力,Ti5553的断裂应变几乎增加了两倍。这一结果证明了进一步优化Ti5553合金的抗损伤性的潜力。损坏模型与弹黏塑性定律结合在一起,以便预测各种载荷条件下的破坏。尤其是,涉及涉及螺栓连接扇区的特定应用,以便确定用Ti5553合金替代Ti-6Al-4V的潜力。

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