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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Optimising the mechanical properties of Ti-6Al-4V components produced by wire plus arc additive manufacturing with post-process heat treatments
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Optimising the mechanical properties of Ti-6Al-4V components produced by wire plus arc additive manufacturing with post-process heat treatments

机译:用工艺热处理优化焊丝加弧添加剂制造生产的Ti-6Al-4V部件的机械性能

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摘要

Wire + Arc Additive Manufacturing (WAAM) is a promising manufacturing process for producing large aerospace components. Based on welding technology, the process is highly affordable, has a very high deposition rate and is not limited by chamber size. Ti-6Al-4V is a promising candidate material for this technology given that it is extensively used in aerospace applications and some large, high buy-fly ratio components can be more efficiently produced by WAAM than via the conventional machining from billet approach. There is currently limited knowledge about whether additional post processes including heat treatments and hot isostatic pressing are necessary to unlock the optimal mechanical properties of Ti-6Al-4V components produced by WAAM. This work explores a range of different post process treatments and the effects on the microstructure and tensile properties of Ti-6Al-4V components produced by WAAM. The relatively slow cooling rate (10-20Ks(-1)) during the beta-alpha transformation produced Widmanstatten-alpha and offered an optimal balance between strength and ductility. Hot Isostatic Pressing (HIPing) removed gas porosity but was not effective in improving strength or ductility. Residual tensile stresses in as-built components severely impair ductility and should be removed through stress relief treatments. (C) 2018 Elsevier B.V. All rights reserved.
机译:电线+弧添加制造(WAAM)是生产大型航空航天部件的有希望的制造方法。基于焊接技术,该过程具有高度实惠,具有非常高的沉积速率并且不受腔室尺寸的限制。 TI-6AL-4V是这种技术的有希望的候选材料,因为它广泛用于航空航天应用,并且一些大量的高买比率组件可以比雪纺方法的传统加工更有效地生产。目前有限了解包括热处理和热等静压等额外的岗位工艺,以解锁WAAM生产的Ti-6Al-4V部件的最佳机械性能。这项工作探讨了一系列不同的后工艺处理和对WaAM产生的Ti-6Al-4V组分的微观结构和拉伸性能的影响。在β-α转化期间的冷却速率(10-20ks(-1))产生了持续缓慢的冷却速度(10-20ks(-1)),并在强度和延展性之间提供了最佳平衡。热等静压(臀部)除去气体孔隙率,但在提高强度或延展性方面无效。由于构建组件中的残留拉伸应力严重损害延展性,应通过应力浮雕处理除去。 (c)2018年elestvier b.v.保留所有权利。

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