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首页> 外文期刊>Journal of Manufacturing Processes >Eliminating the cavity defect and improving mechanical properties of TA5 alloy joint by titanium alloy supporting friction stir welding
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Eliminating the cavity defect and improving mechanical properties of TA5 alloy joint by titanium alloy supporting friction stir welding

机译:通过钛合金支撑摩擦搅拌焊接消除腔缺陷和改善Ta5合金接头的机械性能

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摘要

To widen the narrow friction stir welding (FSW) process window of TA5 alloy, titanium alloy supporting friction stir welding (TSFSW) is proposed. Both conventional FSW (CFSW) and TSFSW methods were employed to reveal the formation mechanism of cavity defect, clarify the microstructure evolution in the weld and investigate the performance of TSFSW. Results showed that the prior beta grains below the cavity defect were much smaller than the above and a clear converging line of material flow was observed between the varied grains, indicating the cavity defect was flow-related and concerned with the insufficient heat input at weld bottom. It was found that the stir zone (SZ) could be divided into the contaminated zone (CZ) and the non-contaminated zone (NCZ) according to whether the beta-stable tool elements were introduced during welding. The transformed microstructure consisting of alpha laths, equiaxed alpha grains and retained beta was detected in the CZ, resulting in extremely high microhardness. The NCZ, where the peak temperature was below alpha-beta transus temperature, was composed of refined equiaxed alpha grains due to the occurrence of dynamic recrystallization. The cavity defect downgrades the mechanical properties of joint by determining the fracture mode. Without complicated devices and preparations, the TSFSW method is capable of obtaining defect-free joint under higher welding speed by reducing the heat dissipation from weld bottom, thereby improving mechanical properties and widening the parameter range.
机译:为了扩大TA5合金的窄摩擦搅拌焊接(FSW)工艺窗口,提出了支撑摩擦搅拌焊接(TSFSW)的钛合金。使用传统的FSW(CFSW)和TSFSW方法来揭示腔缺损的形成机制,阐明焊缝中的微观结构演化并研究TSFSW的性能。结果表明,在腔缺陷下方的先前β颗粒远小于上述比上述要小,并且在变化的晶粒之间观察到的透明会聚线,表明腔缺陷与焊接底部的热量输入不充分的热输入。发现搅拌区(Sz)可根据焊接期间是否引入β稳定的工具元件,分为污染区(CZ)和非污染区(NCZ)。在CZ中检测到由α板块,等轴α晶粒和保留β组成的转化的微观结构,导致极高的微硬度。 NCZ,其中峰值温度低于α-β转移温度,由由于动态再结晶的发生而由精制等式的α颗粒组成。腔缺陷通过确定裂缝模式降级接头的力学性能。如果没有复杂的装置和制剂,TSFSW方法能够通过从焊接底部降低散热来获得较高焊接速度的无缺陷关节,从而改善机械性能并加宽参数范围。

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