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Formability,microstructure evolution and mechanical properties of wire arc additively manufactured AZ80M magnesium alloy using gas tungsten arc welding 被引量:18
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作者 Yangyang Guo Gaofeng Quan +3 位作者 yinglong jiang Lingbao Ren Lingling Fan Houhong Pan 《Journal of Magnesium and Alloys》 SCIE EI CAS CSCD 2021年第1期192-201,共10页
Wire arc additive manufacturing(WAAM)technology has been used to fabricate the multi-layer single-pass deposited wall of AZ80M magnesium(Mg)alloy by gas tungsten arc welding.The formability,thermal cycles,microstructu... Wire arc additive manufacturing(WAAM)technology has been used to fabricate the multi-layer single-pass deposited wall of AZ80M magnesium(Mg)alloy by gas tungsten arc welding.The formability,thermal cycles,microstructural evolution and mechanical properties of the WAAM AZ80M Mg alloy were investigated.The results show that there was significant difference in the temperature variation and the geometries between the original several layers and the subsequent deposited layers.Owing to the arc energy input,the interpass temperature rised rapidly and then stabilized at 150℃.As a result,the width of the deposited wall increased and then kept stable.There were obvious differences in the microstructure of the WAAM AZ80M Mg alloy among the top zone,intermediate zone and bottom zone of deposited wall.During the arc deposition process,theβphase of the WAAM AZ80M Mg alloy redissolved due to the cyclic heat accumulation,and then precipitated in the grain boundary.The cyclic heat accumulation also led to weakening of dendrite segregation.From the substrate to the top zone,the hardness of the deposited wall decreased gradually,and the intermediate zone which was the main body of deposited wall had relatively uniform hardness.The tensile properties of the WAAM AZ80M Mg alloy were different between the vertical direction and the horizontal direction.And the maximum ultimate tensile strength of the WAAM AZ80M Mg alloy was 308 MPa which was close to that of the as-extruded AZ80M Mg alloy. 展开更多
关键词 Wire arc additive manufacturing Magnesium alloy Thermal cycles Microstructure Mechanical properties
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数据挖掘驱动的BiFeO_3-BaTiO_3铁电陶瓷元素替代效应 被引量:1
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作者 姜英龙 李军 于剑 《科学通报》 EI CAS CSCD 北大核心 2018年第31期3229-3240,共12页
传统的材料研究方式是耗时费力的试错法,现代材料科学研究方式转向基于材料信息学(material informatics)理论的数据生产和利用——采用各种数据挖掘方法以发现材料数据下隐藏的构效关系和知识,对新材料进行预测和验证.在总结过去对钙... 传统的材料研究方式是耗时费力的试错法,现代材料科学研究方式转向基于材料信息学(material informatics)理论的数据生产和利用——采用各种数据挖掘方法以发现材料数据下隐藏的构效关系和知识,对新材料进行预测和验证.在总结过去对钙钛矿结构氧化物铁电材料数据挖掘实践结果的基础上,选择多种不同原(离)子特征组合的元素对BiFeO_3-BaTiO_3(BF-xBT)铁电固溶体陶瓷进行替代实验,重点探索三方-赝立方结构相界附近组分的BF-xBT基三元固溶体陶瓷的铁电相变和介电、压电响应性能.实验发现替代元素的性质是BF-xBT基三元固溶体陶瓷制备工艺条件和介电损耗、压电响应等电学性质的决定因素,Bi(Zn_(1/2)Ti_(1/2))O_3是当前发现的对BF-xBT基固溶体陶瓷进行改性、获得可工程实用的高性能高温压电陶瓷新材料的有效组元.与现有商用偏铌酸铅和钛酸铋系压电陶瓷材料相比,它们可采用相同的固相反应电子陶瓷工艺制备、但具有更高压电响应等综合性能,为研制高灵敏高温压电传感器提供了新材料选项. 展开更多
关键词 钙钛矿结构氧化物 数据挖掘 压电陶瓷 铁电相变 压电响应
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