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激光选区熔化增材制造高强度Mg−15Gd−1Zn−0.4Zr合金的显微组织与力学性能 被引量:12
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作者 付彭怀 王南清 +5 位作者 廖海光 徐雯钰 彭立明 陈娟 胡国琦 丁文江 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2021年第7期1969-1978,共10页
为了验证激光选区熔化(SLM)成型技术制造高性能镁−稀土合金的可行性,研究SLM工艺对Mg-15Gd-1Zn-0.4Zr(质量分数,%)(GZ151K)镁合金显微组织与力学性能的影响。结果表明,打印态(激光选区熔化态)GZ151K镁合金晶粒(约为2μm)和第二相细小、... 为了验证激光选区熔化(SLM)成型技术制造高性能镁−稀土合金的可行性,研究SLM工艺对Mg-15Gd-1Zn-0.4Zr(质量分数,%)(GZ151K)镁合金显微组织与力学性能的影响。结果表明,打印态(激光选区熔化态)GZ151K镁合金晶粒(约为2μm)和第二相细小、织构较弱;室温下,打印态GZ151K镁合金的屈服强度为345 MPa,抗拉强度为368 MPa,伸长率为3.0%。200℃、64 h时效处理(T5)后,合金的屈服强度增加至410 MPa、抗拉强度增加至428 MPa、伸长率增加至3.4%,拉伸性能均高于传统的重力金属型铸造GZ151K-T6合金,其中,屈服强度增幅高达122 MPa。打印态GZ151K镁合金的主要强化机制为细晶、细小第二相和残余应力强化;经T5处理后,析出相进一步提高合金的屈服强度。 展开更多
关键词 激光选区熔化 镁−稀土合金 晶粒细化 Mg–Gd–Zn 强化机制
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Hot tearing behavior of NZ30K Mg alloy under progressive solidification
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作者 Ke Wang peng-huai fu +2 位作者 Li-ming Peng Ying-xin Wang Wen-jiang Ding 《China Foundry》 SCIE CAS 2021年第1期29-36,共8页
Progressive solidification is usually considered an effective strategy to reduce the hot tearing susceptibility of a cast component.In this study,special constrained plate castings with progressive changes in cross-se... Progressive solidification is usually considered an effective strategy to reduce the hot tearing susceptibility of a cast component.In this study,special constrained plate castings with progressive changes in cross-section were designed,which enabled progressive solidification.The hot tearing behavior of a newly developed NZ30 K Mg alloy(Mg-3.0 Nd-0.2 Zn-Zr,wt.%)was studied under progressive solidification using various mold temperature distributions and constraint lengths.Of these,a homogeneous mold temperature distribution is found to be the best option to avoid hot tearing,followed by a local low mold temperature distribution(with a chiller),then a gradient mold temperature distribution.Unexpectedly,compared with the homogeneous mold temperature distribution,adding a chiller does not provide any further reduction in the hot tearing susceptibility of the NZ30 K Mg alloy.A high mold temperature and a short constraint length increase the hot tearing resistance of cast Mg alloys.Progressive solidification is not a sufficient and necessary condition to avoid the formation of hot tearing.The two key factors that determine the occurrence of hot tearing under progressive solidification are the maximum cooling rate and the constraint length.Decreasing these values can reduce the incidence of hot tearing. 展开更多
关键词 hot tearing progressive solidification cooling rate constraint length Mg alloy
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Development of High Strength and Toughness Non-Heated Al–Mg–Si Alloys for High-Pressure Die-Casting 被引量:1
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作者 Ling-Yang Yuan Pan-Wen Han +5 位作者 Ghulam Asghar Bao-Liang Liu Jin-Ping Li Bin Hu peng-huai fu Li-Ming Peng 《Acta Metallurgica Sinica(English Letters)》 SCIE EI CAS CSCD 2021年第6期845-860,共16页
Based on the 3 factors and 3 levels orthogonal experiment method,compositional effects of Mg,Si,and Ti addition on the microstructures,tensile properties,and fracture behaviors of the high-pressure die-casting Al-x Mg... Based on the 3 factors and 3 levels orthogonal experiment method,compositional effects of Mg,Si,and Ti addition on the microstructures,tensile properties,and fracture behaviors of the high-pressure die-casting Al-x Mg-y Si-z Ti alloys have been investigated.The analysis of variance shows that both Mg and Si apparently infl uence the tensile properties of the alloys,while Ti does not.The tensile mechanical properties are comprehensively infl uenced by the amount of eutectic phase(α-Al+Mg2Si),the average grain size,and the content of Mg dissolved intoα-Al matrix.The optimized alloy is Al-7.49 Mg-3.08 Si-0.01 Ti(wt%),which exhibits tensile yield strength of 219 MPa,ultimate tensile strength of 401 MPa,and elongation of 10.5%.Furthermore,contour maps,showing the relationship among compositions,microstructure characteristics,and the tensile properties are constructed,which provide guidelines for developing high strength and toughness Al–Mg–Si–Ti alloys for high-pressure die-casting. 展开更多
关键词 Al–Mg–Si–Ti alloy MICROSTRUCTURE Tensile properties High strength and toughness Contour maps
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