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首页> 外文期刊>Journal of Materials Engineering and Performance >High-Brightness and High-Power Laser Welding of Powder Metallurgy Shape Memory Alloy: Welding-Parameter-Dependent Microstructure
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High-Brightness and High-Power Laser Welding of Powder Metallurgy Shape Memory Alloy: Welding-Parameter-Dependent Microstructure

机译:高亮度和高功率激光焊接的粉末冶金形状记忆合金:焊接参数依赖性微观结构

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摘要

Despite the growing interest in using powder metallurgy shape memory alloys, there is limited research on their joining and welding aiming to expand their applications. In this research, we utilized a high-power, high-brightness disk laser welding process to join spark-plasma-sintered Ti-51 at.% Ni shape memory alloy and studied the primary factors that affect the strength and functionality of the created sound welds such as intermetallics and martensite (B19 ') phase formation. The introduction of high-power laser could impede the formation of B19 ' and undesirable intermetallics such as TiNi3 and Ti2Ni; however, the desired Ti3Ni4 would also be suppressed and post-weld heat treatment was necessary to induce them again. The microstructure of fusion zones was significantly altered, producing coarse columnar grains with centerline and equiaxed weld centers. Additionally, high-power laser welding of powder metallurgy Ti-Ni alloy triggered amorphous phase formation in the welds due to rapid cooling. It was found that a laser power of 3 kW and welding speed of 6 m/min are optimal welding parameters, since the produced weld solidified along favorable [001] direction of strain recovery in Ti-Ni shape memory alloys.
机译:尽管对使用粉末冶金形状记忆合金的兴趣日益增长,但对其加入和焊接的研究有限,旨在扩大其应用。在本研究中,我们利用了高功率,高亮度盘激光焊接过程来加入火花等离子体烧结Ti-51。%Ni形状记忆合金,并研究了影响创造声音的强度和功能的主要因素焊接如金属间金属间和马氏体(B19')相位形成。高功率激光的引入可能妨碍B19'和不希望的金属间金属(如TiNi3和Ti2Ni)的形成;然而,所需的Ti3Ni4也将被抑制,并且焊接后热处理是必需的再次诱导它们。融合区的微观结构显着改变,产生粗柱状颗粒,具有中心线和等轴焊接中心。另外,由于快速冷却,粉末冶金Ti-Ni合金的高功率激光焊接粉末触发焊缝中的无定形相形成。结果发现,3千瓦的激光功率和6米/分钟的焊接速度是最佳的焊接参数,因为所产生的焊接沿着良好的焊接稳定在Ti-Ni形状记忆合金中应变恢复方向。

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