首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers. Part L, Journal of Materials: Design and Application >Influence of filler material on the microstructure, mechanical properties, and residual stresses in tungsten inert gas welded Ti-5AI-2.5Sn alloy joints
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Influence of filler material on the microstructure, mechanical properties, and residual stresses in tungsten inert gas welded Ti-5AI-2.5Sn alloy joints

机译:填料对钨惰性气体焊接Ti-5ai-2.5Sn合金接头的微观结构,力学性能和残余应力的影响

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The microstructure and defects in the weld zone affect the weldment characteristics. One way to improve the microstructure and reduce the defects in the weld zone is by using a filler during welding which influences the physical, chemical, and mechanical properties of the manufactured component. In the present study, tungsten inert gas (TIG) was used to weld Ti-5Al-2.5Sn alloy using different titanium alloy fillers; Ti-6Al-4V, Ti-5Al-2.5Sn, and autogenous weldments were also produced. The welded joints were characterized in terms of their microstructure, mechanical properties, and residual stresses in its various regions. The weldment with Ti-6Al-4V as filler exhibited a higher proportion of alpha ' martensite in fusion zone, as compared to the welded joint with Ti-5Al-2.5Sn alloy as filler, owing to the higher proportions of beta stabilizers present in Ti-6Al-4V alloy. The alpha' martensite was present in basketweave and acicular morphology in all the weldments, with and without fillers. Ti-6Al-4V filler welded joint showed higher tensile strength (approximately 1144 MPa) and relatively higher hardness than Ti-5Al-2.5Sn filler welded joint (approximately 1027 MPa) and autogenous weldment (approximately 770 MPa), due to increased amount of martensite in its fusion zone. As compared to the weldment produced with Ti-5Al-2.5Sn filler, the welded joint produced without filler and with Ti-6Al-4V as a filler had more compressive residual stresses at surface (approximately 25% higher), leading to less amount of pile up after nanoindentation. This was attributed to the generation of compressive strains due to martensitic transformations in the fusion zone of both these weldments.
机译:焊接区的微观结构和缺陷影响焊接特性。通过在焊接期间使用填料改善微观结构并减少焊接区缺陷的一种方法,该填料影响制造部件的物理,化学物质和机械性能。在本研究中,使用钨惰性气体(TIG)使用不同的钛合金填料焊接Ti-5Al-2.5Sn合金;还生产Ti-6Al-4V,Ti-5Al-2.5Sn和自生焊接。焊接接头的特征在于其各个区域的微观结构,机械性能和残余应力。与Ti-5Al-2.5sn合金的焊接接头作为填充剂相比,具有Ti-6Al-4V作为填料的焊接在融合区中表现出较高比例的融合区中的αmartensite。由于TI中的β稳定剂的比例较高-6Al-4V合金。在所有焊件中,alpha'马氏体存在于篮网和针状形态中,有和没有填充物。 Ti-6Al-4V填充焊接接头显示出较高的拉伸强度(约1144MPa),并且具有比Ti-5Al-2.5sn填充焊接接头(约1027MPa)和自体焊接(约770MPa)的相对较高的硬度,因此由于量增加其融合区的马氏体。与用Ti-5Al-2.5sn填充物产生的焊接相比,没有填充物和Ti-6Al-4V的焊接接头作为填料的表面具有更多的压缩残余应力(约25%),导致少量在纳米内侧堆积。由于两种焊接的融合区中的马氏体转换,这归因于产生压缩菌株。

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