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首页> 外文期刊>Materials Science and Engineering >Directed energy deposition additive manufacturing of a Sc/Zr-modified Al-Mg alloy: Effect of thermal history on microstructural evolution and mechanical properties
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Directed energy deposition additive manufacturing of a Sc/Zr-modified Al-Mg alloy: Effect of thermal history on microstructural evolution and mechanical properties

机译:SC / ZR改性Al-Mg合金的定向能量沉积添加剂制造:热史对微观结构演化和机械性能的影响

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摘要

Recently, laser additive manufacturing (LAM) of Al-Mg-Sc-Zr alloys has been considered an important method for developing a new generation of high-performance Al alloys. However, one of the key differences between LAM and conventional casting/wrought processes is that it has a unique combination of rapid solidification and in-situ solid-state transformation induced by repeated thermal cycling during deposition. In addition, owing to its near-net shape characteristics, subsequent plastic deformation processing is typically not an option to improve the as-built microstructure. To gain insight into the effect of the complex thermal history during LAM on the microstructural evolution and mechanical properties of the novel alloy systems, an Al-Mg-Sc-Zr alloy was processed via laser-directed energy deposition (L-DED) using a substrate with air cooling (AC) or water cooling (WC). The results show that the solidification microstructure was closely related to the dynamic solidification conditions in the molten pool, which promoted the transition from an equiaxed grain structure at low cooling rate (AC) to a heterogeneous grain structure at high cooling rate (WC). Furthermore, in-situ precipitation occurred during the repeated high-temperature thermal cycling in the AC sample, while it was effectively suppressed in the WC sample by lowering the peak temperature during thermal cycling. After aging, the yield strength of the WC sample was enhanced to ~2 times that of the AC sample, while the uniform elongation was still comparable to that of the AC sample. To achieve good mechanical properties for L-DED-processed Al-Mg-Sc-Zr alloys, it is crucial to conduct integrated control of the thermal history during both rapid solidification and in-situ precipitation.
机译:最近,Al-Mg-Sc-Zr合金的激光添加剂制造(LAM)被认为是开发新一代高性能Al合金的重要方法。然而,林和常规铸造/锻造方法之间的关键差异之一是它具有在沉积期间重复热循环引起的快速凝固和原位固态变换的独特组合。另外,由于其近净形状特性,随后的塑性变形处理通常不是改善原木微观结构的选择。为了深入了解在LAM期间复杂的热历史的效果,通过使用激光定向的能量沉积(L-DED)处理Al-Mg-SC-ZR合金的Al-Mg-SC-Zr合金具有空气冷却(AC)或水冷却(WC)的基板。结果表明,凝固微观结构与熔池中的动态凝固条件密切相关,其在低冷却速率(AC)下以高冷却速率(WC)在低冷却速率(AC)下促进从等轴晶粒结构的过渡。此外,在AC样品中重复的高温热循环期间发生原位沉淀,而通过降低热循环期间,通过降低峰值温度,在WC样品中有效地抑制它。老化后,WC样品的屈服强度增强至AC样品的〜2倍,而均匀伸长率仍然与AC样品的伸长率相当。为了实现L-DED-加工的Al-Mg-Sc-Zr合金的良好机械性能,在快速凝固和原位沉淀过程中对热历史的整合控制是至关重要的。

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  • 来源
    《Materials Science and Engineering 》 |2021年第20期| 140606.1-140606.16| 共16页
  • 作者单位

    State Key Laboratory of Solidification Processing Northwestern Polytechnical University 127 Youyixilu Road XVan Shaan Xi 710072 PR China Key Laboratory of Metal High Performance Additive Manufacturing and Innovative Design MIIT China Northwestern Polytechnical University 127 Youyixilu Road Xi'an Shaan Xi 710072 PR China;

    State Key Laboratory of Solidification Processing Northwestern Polytechnical University 127 Youyixilu Road XVan Shaan Xi 710072 PR China Key Laboratory of Metal High Performance Additive Manufacturing and Innovative Design MIIT China Northwestern Polytechnical University 127 Youyixilu Road Xi'an Shaan Xi 710072 PR China;

    State Key Laboratory of Solidification Processing Northwestern Polytechnical University 127 Youyixilu Road XVan Shaan Xi 710072 PR China Key Laboratory of Metal High Performance Additive Manufacturing and Innovative Design MIIT China Northwestern Polytechnical University 127 Youyixilu Road Xi'an Shaan Xi 710072 PR China;

    State Key Laboratory of Solidification Processing Northwestern Polytechnical University 127 Youyixilu Road XVan Shaan Xi 710072 PR China Key Laboratory of Metal High Performance Additive Manufacturing and Innovative Design MIIT China Northwestern Polytechnical University 127 Youyixilu Road Xi'an Shaan Xi 710072 PR China;

    State Key Laboratory of Solidification Processing Northwestern Polytechnical University 127 Youyixilu Road XVan Shaan Xi 710072 PR China Key Laboratory of Metal High Performance Additive Manufacturing and Innovative Design MIIT China Northwestern Polytechnical University 127 Youyixilu Road Xi'an Shaan Xi 710072 PR China;

    State Key Laboratory of Solidification Processing Northwestern Polytechnical University 127 Youyixilu Road XVan Shaan Xi 710072 PR China Key Laboratory of Metal High Performance Additive Manufacturing and Innovative Design MIIT China Northwestern Polytechnical University 127 Youyixilu Road Xi'an Shaan Xi 710072 PR China;

    State Key Laboratory of Solidification Processing Northwestern Polytechnical University 127 Youyixilu Road XVan Shaan Xi 710072 PR China Key Laboratory of Metal High Performance Additive Manufacturing and Innovative Design MIIT China Northwestern Polytechnical University 127 Youyixilu Road Xi'an Shaan Xi 710072 PR China;

    State Key Laboratory of Solidification Processing Northwestern Polytechnical University 127 Youyixilu Road XVan Shaan Xi 710072 PR China Key Laboratory of Metal High Performance Additive Manufacturing and Innovative Design MIIT China Northwestern Polytechnical University 127 Youyixilu Road Xi'an Shaan Xi 710072 PR China;

    State Key Laboratory of Solidification Processing Northwestern Polytechnical University 127 Youyixilu Road XVan Shaan Xi 710072 PR China Key Laboratory of Metal High Performance Additive Manufacturing and Innovative Design MIIT China Northwestern Polytechnical University 127 Youyixilu Road Xi'an Shaan Xi 710072 PR China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Al-Mg-Sc-Zr alloys; Additive manufacturing; Directed energy deposition; Thermal history; Strength-ductility synergy;

    机译:Al-Mg-SC-ZR合金;添加剂制造;定向能量沉积;热历史;强度 - 延展性协同作用;

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