Ti-43.5Al-4Nb-1Mo-0.1B合金的包套热挤压组织与拉伸性能
收稿日期: 2019-11-13
修回日期: 2020-01-22
网络出版日期: 2020-02-24
基金资助
国家自然科学基金项目(51701209)
Microstructure and Tensile Properties of Ti-43.5Al-4Nb-1Mo-0.1B Alloy Processed by Hot Canned Extrusion
Received date: 2019-11-13
Revised date: 2020-01-22
Online published: 2020-02-24
Supported by
National Natural Science Foundation of China(51701209)
采用包套近等温热挤压工艺制备了Ti-43.5Al-4Nb-1Mo-0.1B合金方形棒材,通过OM、SEM、XRD、TEM和拉伸等实验方法研究了方棒不同状态和位置的组织及拉伸性能。结果表明,方棒材的挤压态组织较为均匀,不同位置的微观组织无明显差异;挤压变形使铸锭组织片层取向趋于一致,趋向平行于挤压方向;晶界处γ相存在颗粒状、块状和长条状3种形态;β相在挤压过程中碎化和被拉长呈平行挤压方向纤维状。在TEM下观察,棒材边部位置片层完全碎化,而心部位置片层断裂后呈长条状。β0相中生成大量ω0相,两者位相关系遵循:[
刘先锋 , 刘冬 , 刘仁慈 , 崔玉友 , 杨锐 . Ti-43.5Al-4Nb-1Mo-0.1B合金的包套热挤压组织与拉伸性能[J]. 金属学报, 2020 , 56(7) : 979 -987 . DOI: 10.11900/0412.1961.2019.00388
β solidifying γ-TiAl alloys are being considered for high-temperature application in the aerospace and automotive industries as high efficiency materials which can withstand temperatures up to 800 ℃ and owns attractively thermal and mechanical properties. Through thermos-mechanical process can obtain excellent alloy properties, such as high strength and better elongation. But it will cause anisotropy. Ti-43.5Al-4Nb-1Mo-0.1B alloy rectangular bar was prepared by isothermal hot canned extrusion process. The OM, SEM, XRD, TEM and tensile methods were used to study the microstructure and tensile properties of the rectangular rods in different states and locations. The results show that the extruded structure of the rectangular rods is relatively uniform and there is no significant difference in the microstructure at different locations. The extrusion deformation makes the orientation of the lamellar uniform, tending to be parallel to the extrusion direction; γ phase in the grain boundary exists in the three forms of graininess, bulk and strip; the β phase is shredded during extrusion and is elongated in a parallel extrusion direction. Under the TEM observation, lamellar at the edge of the bar was completely shredded, and lamellar at the core position was elongated after lamellar was broken. A large number of ω0 phases are generated in the β0 phase, and the phase relationship of the two follows: [
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