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Microstructure and tensile properties of DD32 single crystal Ni-base superalloy repaired by laser metal forming 被引量:11
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作者 Shiwei Ci Jingjing Liang +2 位作者 Jinguo Li Yizhou Zhou Xiaofeng Sun 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2020年第10期23-34,共12页
In this work,the microstructure and tensile properties of DD32 single-crystal(SC)superalloy repaired by laser metal forming(LMF)using pulsed laser have been studied in detail.The microstructures of the deposited sampl... In this work,the microstructure and tensile properties of DD32 single-crystal(SC)superalloy repaired by laser metal forming(LMF)using pulsed laser have been studied in detail.The microstructures of the deposited samples and the tensile-ruptured samples were characterized by optical microscopy(OM),transmission electron microscope(TEM)and scanning electron microscope(SEM).Due to high cooling rate,the primary dendrite spacing in the deposited area(17.2μm)was apparently smaller than that in the substrate area(307μm),and the carbides in the deposited samples were also smaller compared with that in the substrate area.The formation of(γ+γ’)eutectic in the initial layer of repaired SC was inhibited because of the high cooling rate.As the deposition proceeded,the cooling rate decreased,and the(γ+γ’)eutectic increased gradually.The(γ+γ’)eutectic at heat-affected zone(HAZ)in the molten pool dissolved partly because of the high temperature at HAZ,but there were still residual eutectics.Tensile test results showed that tensile behavior of repaired SC at different temperatures was closely related to the MC carbides,solidification porosity,γ’phase,and(γ+γ’)eutectic.At moderate temperature,the samples tested fractured preferentially at the substrate area due to the fragmentation of the coarse MC carbide in the substrate area.At elevated temperature,the(γ+γ’)eutectic and solidification porosity in the deposited area became the source of cracks,which deteriorated the high-temperature properties and made the samples rupture at the deposited area preferentially. 展开更多
关键词 dd32 PULSED-LASER Repairing single-crystal superalloy MICROSTRUCTURES Tensile property
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基于Ni/高熵合金复合中间层调控FGH98高温合金与DD5单晶的界面互扩散行为以实现高性能连接 被引量:1
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作者 石俊秒 郭海龙 +6 位作者 金峰 孙现军 王倩 田富强 李京龙 杨瑾 麻宁绪 《Science China Materials》 SCIE EI CAS CSCD 2023年第12期4875-4885,共11页
FGH98高温合金和DD5单晶有望在高温环境中服役.在本研究中,我们采用Ni/高熵合金(Ni/HEA)复合中间层实现了FGH98与DD5的高性能扩散连接.FGH98高温合金、DD5单晶和Ni/HEA复合中间层间元素互扩散导致焊缝处形成细小Ni3Al相(γ′)增强FCC固... FGH98高温合金和DD5单晶有望在高温环境中服役.在本研究中,我们采用Ni/高熵合金(Ni/HEA)复合中间层实现了FGH98与DD5的高性能扩散连接.FGH98高温合金、DD5单晶和Ni/HEA复合中间层间元素互扩散导致焊缝处形成细小Ni3Al相(γ′)增强FCC固溶体的复合组织,实现了高强度界面结合.温度是影响界面元素扩散的关键参量.当焊接温度从1075℃提高至1130℃时,界面处元素扩散剧烈,促进了界面空隙闭合和复合扩散区增厚,有利于接头性能提升.然而,过高的扩散温度(1160℃)导致FGH98高温合金和HEA层中形成粗晶组织及化合物相,使接头性能恶化.FGH98-DD5连接体系最优工艺参数为:焊接温度为1130℃、焊接压力为2 MPa、焊接时间为1 h.接头最高抗剪强度为650 MPa,剪切过程中接头表现为韧性断裂.该研究可为界面元素扩散调控提供科学借鉴,也为FGH98高温合金与DD5单晶的可靠连接提供了理论和技术支持. 展开更多
关键词 FGH98 superalloy dd5 single crystal high-entropy alloy INTERDIFFUSION performance
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