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镁合金正挤压-扭转变形的数值模拟与实验研究 被引量:9
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作者 卢立伟 赵俊 +2 位作者 陈胜泉 刘龙飞 曾文兵 《中国有色金属学报》 EI CAS CSCD 北大核心 2015年第9期2350-2357,共8页
结合传统挤压与扭转变形的特点提出正挤压-扭转复合变形方式,采用有限元软件对其变形方式进行数值模拟。研究扭转角度对坯料变形过程中累积应变的影响,并对经过不同扭转角度变形后坯料的等效应变分布的不均匀程度进行定量分析。根据正挤... 结合传统挤压与扭转变形的特点提出正挤压-扭转复合变形方式,采用有限元软件对其变形方式进行数值模拟。研究扭转角度对坯料变形过程中累积应变的影响,并对经过不同扭转角度变形后坯料的等效应变分布的不均匀程度进行定量分析。根据正挤压-扭转复合变形的模拟结果,设计出较优的模具结构并进行实验研究。结果表明:正挤压-扭转复合变形可以显著提高镁合金变形过程的累积应变,随着扭转角度的增大,累积应变增大,但不均匀程度相对增加,最大等效应变高达3.75。当模具扭转角为40°时,试样可获得较大的等效应变和均匀的等效应变分布。在复合变形后,AZ31镁合金的晶粒尺寸由300μm显著细化至约6μm。 展开更多
关键词 AZ31镁合金 有限元模拟 复合挤压变形 等效应变分布
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Simulation of pressure effects on hot isostatic pressing of stainless steel powder 被引量:1
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作者 LIU Guo-cheng SHI Yu-sheng +1 位作者 WEI Qing-song XUE Peng-ju 《Journal of Central South University》 SCIE EI CAS 2012年第1期55-62,共8页
To investigate the effects of pressure on the hot isostatic pressing(HIP) process of a stainless steel powder,density distribution and deformation of the powder at four different applied pressure levels were predicted... To investigate the effects of pressure on the hot isostatic pressing(HIP) process of a stainless steel powder,density distribution and deformation of the powder at four different applied pressure levels were predicted and compared by using finite element method(FEM).Constitutive relations of porous compacts during HIP process were derived based on the yield criterion of porous metal materials.Thermo-mechanical coupling calculations were carried out by the MSC.Marc.Densification mechanisms were studied through evolutions of relative density,equivalent plastic strain and equivalent viscoplastic strain rate for compacts.The simulation results were also compared with experimental data.The results show that the densification rate and final density of compacts increase dramatically with the increase in the applied pressure level when it is below 100 MPa during HIP process,and the creep for compacts evolves into steady stage with the improvement of density. 展开更多
关键词 hot isostatic pressing (HIP) stainless steel powder numerical simulation densification mechanism applied pressure
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