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净化及浇注工艺因素对Mg-Gd-Y-Zr合金流动性的影响 被引量:5
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作者 黄玉光 吴国华 +3 位作者 王玮 侯正全 陈斌 丁文江 《材料导报》 EI CAS CSCD 北大核心 2009年第2期95-97,101,共4页
研究了JDMJ、JDMJ+5%YCl3和JDMJ+10%YCl3精炼剂、浇注温度以及覆膜砂型和金属型对Mg-10Gd-3Y-Zr合金流动性的影响。研究结果表明,JDMJ+5%YCl3精炼剂能显著提高合金的流动性,相对无熔剂精炼,金属型流动性试样的长度由780mm增加至1270mm... 研究了JDMJ、JDMJ+5%YCl3和JDMJ+10%YCl3精炼剂、浇注温度以及覆膜砂型和金属型对Mg-10Gd-3Y-Zr合金流动性的影响。研究结果表明,JDMJ+5%YCl3精炼剂能显著提高合金的流动性,相对无熔剂精炼,金属型流动性试样的长度由780mm增加至1270mm。合金的流动性随浇注温度的升高而提高,当浇注温度由690℃升高到770℃时,金属型流动性试样的长度由595mm增加至995mm。研究结果还表明,覆膜砂型更有利于提高合金的流动性。 展开更多
关键词 mg-10gd-3y-zr合金 浇注温度 流动性 精炼剂
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Mg-10Gd-3Y-Zr镁合金的热处理工艺 被引量:5
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作者 胡传凯 赵强 +2 位作者 王艳彬 宁海青 屈俊岑 《金属热处理》 CAS CSCD 北大核心 2018年第9期94-97,共4页
针对Mg-10Gd-3Y-Zr高强韧镁合金,采用相图热力学计算方法(CALPHAD)、相平衡热力学计算软件(PANDAT),根据扎克哈罗夫经验公式等初步确定合金的固溶、时效温度范围,研究了合金时效硬化曲线、时效温度及时间对合金力学性能及显微组织... 针对Mg-10Gd-3Y-Zr高强韧镁合金,采用相图热力学计算方法(CALPHAD)、相平衡热力学计算软件(PANDAT),根据扎克哈罗夫经验公式等初步确定合金的固溶、时效温度范围,研究了合金时效硬化曲线、时效温度及时间对合金力学性能及显微组织的影响。结果表明:Mg-10Gd-3Y-0.6Zr镁合金的最佳热处理工艺为225℃×20 h直接时效,此时组织中强化相析出完毕,且均匀分布,对应的抗拉强度为490 MPa,断后伸长率为11%,拉伸断裂为韧性断裂。 展开更多
关键词 mg-10gd-3y-zr镁合金 时效 热处理 组织 性能
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Effects of holding time and Zener-Hollomon parameters on deformation behavior of cast Mg-8Gd-3Y alloy during double-pass hot compression 被引量:5
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作者 Xi Nie Shuai Dong +2 位作者 Fenghua Wang Li Jin Jie Dong 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2018年第11期2035-2041,共7页
Double-pass hot compression tests were carried out over a wide range of holding time(0–180 s) and Zener-Hollomon parameter(1.6 E15–1.3 E20) to study the deformation behavior of cast Mg-8 Gd-3 Y alloy.The flow cu... Double-pass hot compression tests were carried out over a wide range of holding time(0–180 s) and Zener-Hollomon parameter(1.6 E15–1.3 E20) to study the deformation behavior of cast Mg-8 Gd-3 Y alloy.The flow curves show obvious work hardening and strain softening stages, leading to the peak stress of double-pass hot compression. Holding time and Zener-Hollomon parameter can significantly affect the second pass peak stress. It is found that increasing the holding time can cause a higher peak stress in the second pass deformation. The second pass stress reaches the peak stress of 71 MPa at ZenerHollomom parameter of 1.6 E15. When the parameter rises to 1.3 E20, the second pass peak goes up to237 MPa. In addition, the second pass peak stress is significantly higher than the unloading stress, which is opposite to the flow behavior of aluminum alloys. Residual stored deformation energy caused by the first pass deformation could be consumed by metadynamic recrystallization. Therefore, more strain energy is required for subsequent dynamic recrystallization, resulting in hardening behavior. A hardening fraction is defined to describe the deformation behavior quantitatively, which shows a positive correlation with the metadynamic recrystallization fraction. The metadynamic recrystallization leads to grain growth at the inter pass holding stage, diminishing dynamic recrystallization nucleation positions in the second pass deformation. 展开更多
关键词 mg-8gd-3Y magnesium alloy Double pass hot compression Deformation behavior Metadynamic recrystallization
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