超高强度不锈钢热变形行为及加工图

TG317; 采用Thermecmaster-Z热模拟试验机对10Cr13Co13Mo5Ni3W1VE(S280)超高强度不锈钢进行变形温度800~1150℃、应变速率0.001~10 s?1、压下率70%条件下的等温恒应变速率压缩实验,分析其热变形行为,并构建基于Murty失稳准则的加工图.结果表明:S280超高强度不锈钢的流变应力对变形温度和应变速率较为敏感,随应变速率增加和变形温度降低,流变应力显著升高.通过加工图分析和变形微观组织观察,S280超高强度不锈钢的失稳变形工艺窗口为800~1040℃、0.06~10 s?1,对应的塑性变形机制主要为局部流动;较佳的变形工艺窗口为1095~1...

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Published in航空材料学报 Vol. 42; no. 4; pp. 49 - 56
Main Authors 柳木桐, 钟平, 刘大博, 王克鲁, 张开铭, 鲁世强
Format Journal Article
LanguageChinese
Published 中国航发北京航空材料研究院 钢与稀贵金属研究所, 北京 100095%南昌航空大学 航空制造工程学院, 南昌 330063 01.07.2022
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ISSN1005-5053
DOI10.11868/j.issn.1005-5053.2022.000036

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Abstract TG317; 采用Thermecmaster-Z热模拟试验机对10Cr13Co13Mo5Ni3W1VE(S280)超高强度不锈钢进行变形温度800~1150℃、应变速率0.001~10 s?1、压下率70%条件下的等温恒应变速率压缩实验,分析其热变形行为,并构建基于Murty失稳准则的加工图.结果表明:S280超高强度不锈钢的流变应力对变形温度和应变速率较为敏感,随应变速率增加和变形温度降低,流变应力显著升高.通过加工图分析和变形微观组织观察,S280超高强度不锈钢的失稳变形工艺窗口为800~1040℃、0.06~10 s?1,对应的塑性变形机制主要为局部流动;较佳的变形工艺窗口为1095~1150℃、0.001~0.04 s?1;最佳变形工艺参数在1125℃、0.001 s?1附近,对应的塑性变形机制主要为动态再结晶.
AbstractList TG317; 采用Thermecmaster-Z热模拟试验机对10Cr13Co13Mo5Ni3W1VE(S280)超高强度不锈钢进行变形温度800~1150℃、应变速率0.001~10 s?1、压下率70%条件下的等温恒应变速率压缩实验,分析其热变形行为,并构建基于Murty失稳准则的加工图.结果表明:S280超高强度不锈钢的流变应力对变形温度和应变速率较为敏感,随应变速率增加和变形温度降低,流变应力显著升高.通过加工图分析和变形微观组织观察,S280超高强度不锈钢的失稳变形工艺窗口为800~1040℃、0.06~10 s?1,对应的塑性变形机制主要为局部流动;较佳的变形工艺窗口为1095~1150℃、0.001~0.04 s?1;最佳变形工艺参数在1125℃、0.001 s?1附近,对应的塑性变形机制主要为动态再结晶.
Author 鲁世强
柳木桐
刘大博
张开铭
王克鲁
钟平
AuthorAffiliation 中国航发北京航空材料研究院 钢与稀贵金属研究所, 北京 100095%南昌航空大学 航空制造工程学院, 南昌 330063
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Author_FL LU Shiqiang
ZHANG Kaiming
WANG Kelu
LIU Mutong
ZHONG Ping
LIU Dabo
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Keywords 加工图
动态再结晶
S280超高强度不锈钢
热变形行为
工艺参数优化
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Snippet TG317; 采用Thermecmaster-Z热模拟试验机对10Cr13Co13Mo5Ni3W1VE(S280)超高强度不锈钢进行变形温度800~1150℃、应变速率0.001~10...
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Title 超高强度不锈钢热变形行为及加工图
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