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首页> 外文期刊>International Journal of Fatigue >Fatigue behaviour of additive manufactured Ti6Al4V, with as-built surfaces, exposed to variable amplitude loading
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Fatigue behaviour of additive manufactured Ti6Al4V, with as-built surfaces, exposed to variable amplitude loading

机译:增材制造的Ti6Al4V的疲劳行为,其表面为已建成且承受可变振幅载荷

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摘要

Additive Manufacturing (AM) allows for great design freedom compared to conventional manufacturing. This is very attractive for the aerospace industry in which AM could contribute to lightweight designs and thereby reduce fuel consumption, increase payload and extend flight range. The fatigue behaviour for rough as-built AM surfaces has previously been characterized with constant amplitude testing but in aerospace applications, most parts are exposed to variable amplitude loading. The fatigue behaviour for variable amplitude is not always consistent with the behaviour for constant amplitude due to effects of overloads and local plastic deformations. Therefore, variable amplitude loading behaviour of laser sintered and electron beam melted Ti6Al4V, with rough as-built surfaces have been investigated in this study using the Short-FALSTAFF (Fighter Aircraft Loading STAndard For Fatigue) load sequence. The predicted and the experimental fatigue life was overall consistent even though most experimental results exceeded the predicted life, especially for the laser sintered material. These findings show that conventional cumulative damage fatigue life predictions give reliable predictions for AM materials with rough as-built surfaces for the type of tension dominated load sequence used.
机译:与常规制造相比,增材制造(AM)拥有极大的设计自由度。这对于航空工业非常有吸引力,因为AM可以有助于轻量化设计,从而减少燃料消耗,增加有效载荷并扩大飞行范围。以前已经通过恒定振幅测试来表征粗糙的AM成型表面的疲劳行为,但是在航空航天应用中,大多数零件都承受可变振幅的载荷。由于过载和局部塑性变形的影响,可变振幅的疲劳行为并不总是与恒定振幅的行为一致。因此,本研究使用Short-FALSTAFF(用于疲劳的战斗机飞机装载标准)载荷序列研究了激光烧结和电子束熔化的Ti6Al4V的变幅载荷行为,具有粗糙的建成表面。即使大多数实验结果超过了预期寿命,尤其是对于激光烧结材料,预期疲劳寿命和实验疲劳寿命总体上是一致的。这些发现表明,常规的累积损伤疲劳寿命预测可以为使用张力主导的载荷序列类型的表面粗糙的增材制造提供可靠的预测。

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