Load direction and temperature impacts on cyclic creep behavior of laser-based powder bed fusion-produced WE43 magnesium alloy

IF 4.7 Q2 ENGINEERING, MANUFACTURING
Alexander Koch , Sebastian Stammkoetter , Arvid Abel , Abootorab Chehreh , Joerg Hermsdorf , Stefan Kaierle , Frank Walther
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Abstract

Magnesium alloys are renowned for their high strength-to-weight ratio and low density, making them highly sought-after in the lightweight engineering sector. Among these, the high-strength magnesium alloy WE43, characterized by its Mg-4Y-3RE composition, stands out for its superior mechanical strength and thermal stability. These properties, coupled with its creep resistance, render WE43 a suitable alloy in elevated temperature applications, particularly in aerospace and automotive engineering. Despite its potential, the characterization of the load direction- and temperature-dependent deformation behavior remains incomplete for WE43, especially in additive manufacturing contexts. This study explores the quasi-static and cyclic creep properties of WE43 produced via laser-based powder bed fusion.
The research involved tensile and compression testing to evaluate quasi-static deformation and tensile-compression asymmetry. Cyclic creep behavior was studied under diverse mechanical (tension, compression) and thermal (RT, 200 °C, 300 °C) conditions by load-increase fatigue tests. Microstructural analyses based on cross-sections, XRD and computed tomography were conducted to assess manufacturing quality and identify potential inhomogeneities. The results reveal the interplay between mechanical load, temperature, and structural integrity in WE43. It could be shown that especially at 300 °C increased creep rates occure.
载荷方向和温度对激光粉末床熔敷WE43镁合金循环蠕变行为的影响
镁合金以其高强度重量比和低密度而闻名,使其在轻量化工程领域备受追捧。其中,以Mg-4Y-3RE成分为特征的高强度镁合金WE43具有优异的机械强度和热稳定性。这些特性,加上其抗蠕变性能,使WE43成为高温应用的合适合金,特别是在航空航天和汽车工程中。尽管具有潜力,但WE43的载荷方向和温度相关变形行为的表征仍然不完整,特别是在增材制造环境中。本研究探讨了激光粉末床熔合法制备的WE43的准静态和循环蠕变特性。研究包括拉伸和压缩测试,以评估准静态变形和拉压缩不对称。通过载荷增加疲劳试验,研究了不同力学(拉伸、压缩)和热(RT、200℃、300℃)条件下的循环蠕变行为。基于横截面、x射线衍射和计算机断层扫描的显微结构分析评估了制造质量并识别了潜在的不均匀性。结果揭示了机械载荷、温度和WE43结构完整性之间的相互作用。结果表明,特别是在300℃时,蠕变速率增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Additive manufacturing letters
Additive manufacturing letters Materials Science (General), Industrial and Manufacturing Engineering, Mechanics of Materials
CiteScore
3.70
自引率
0.00%
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0
审稿时长
37 days
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