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作 者:李亚非 佟飞[1] 霍荣伟 刘通 LI Yafei;TONG Fei;HUO Rongwei;LIU Tong(Aviation Industry Technical Colleage of Zhangjiajie,Zhangjiajie 427000,Hunan,China;Changsha University of Science and Technology,Changsha 410100,Hunan,China)
机构地区:[1]张家界航空工业职业技术学院,湖南张家界427000 [2]长沙理工大学,湖南长沙410100
出 处:《热处理技术与装备》2024年第6期55-59,共5页Heat Treatment Technology and Equipment
基 金:湖南省教育厅基础科研项目(22C1380);湖南省教育科学研究工作者协会课题(XJKX23B408)。
摘 要:对粉末热等静压+热挤压工艺成型的TC4合金进行显微组织观察,并参照标准HB 6623.2-1992进行β转变温度测定。结果表明,TC4合金的显微组织致密度高,热变形后细小片层组织发生部分网篮化转变。该组织初生α相含量极少,因此无法通过检测不同加热温度下初生α相含量来测定β转变温度。但通过检测α片层的固溶度,可大致判定β转变温度为990℃。拟定TC4合金的热处理工艺为980℃×1 h,空冷,并检测其力学性能。由于细小片层组织的强韧化作用,热等静压+热挤压工艺成型的TC4合金的拉伸强度、冲击韧性和断裂韧度指标均优于传统热成型TC4合金,但其拉伸塑性略差。The microstructure of TC4 alloy formed by powder hot isostatic pressing and hot rolling technology was tested,and theβtransformation temperature was measured according to HB 6623.2-1992 standard.The results showed that the microstructure of TC4 alloy was highly compact and the fine lamellar underwent a partial net-basket transformation dering thermal deformation.The primaryα-phase content was less and it was not suit to determiningβtransition temperature by detecting its content at different heating temperatures.However,by detecting the solid solubility of theαlamellae,theβtransformation temperature could be roughly determined to be 990℃.The proposed heat treatment process of TC4 alloy was 980℃×1 h and air cooling.Testing the mechanical properties of the specimens found that the tensile strength,impact toughness and fracture toughness of TC4 alloy which famed by hot isostatic pressure and hot rolling were better than those of the traditional hot forming TC4 alloy due to the strong toughening effect of the fine lamellar microstructure,but the tensile plasticity was a little inferior.
分 类 号:TG113[金属学及工艺—物理冶金]
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