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低成本Ti-35421钛合金的优化:相变、双峰微观结构及综合力学性能

Optimization of Low-Cost Ti-35421 Titanium Alloy: Phase Transformation, Bimodal Microstructure, and Combinatorial Mechanical Properties.

作者信息

Chen Fuwen, Xu Guanglong, Cui Yuwen, Chang Hui

机构信息

Tech Institute for Advanced Materials & College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, China.

School of Materials Science and Engineering, Central South University, Changsha 410083, China.

出版信息

Materials (Basel). 2019 Aug 30;12(17):2791. doi: 10.3390/ma12172791.

Abstract

A sophisticated understanding of phase transformations and microstructure evolution is crucial in mechanical property optimization for the newly developed low-cost Ti-35421 (Ti-3Al-5Mo-4Cr-2Zr-1Fe wt.%) titanium alloy. The phase transformations in dual-phase Ti-35421 were studied by experiments and thermo-kinetic modeling. The phase transformation reactions and temperature ranges were determined as β→α [410-660 °C], α→β [660-740 °C], α→β [740-825 °C]. The Gibbs-Thomson effect and multicomponent diffusivities were proven to be responsible for the distinguishing behaviors of growth and dissolution between two α phases. The aging temperature of 540 °C was optimized based on calculations. It introduced a bimodal microstructure containing stubby α lamellae and β matrix. The mechanical properties of bimodal Ti-35421 were tested and compared with baseline alloy Ti-B19 and other near-β titanium alloys. The 540 °C aged alloy exhibits an optimal combination of mechanical properties with tensile strength of 1313 MPa, yield strength of 1240 MPa, elongation of 8.62%, and fracture toughness of 75.8 MPa·m. The bimodal Ti-35421 shows comparable performance to Ti-B19 but has lower cost in raw materials and processing. The results also demonstrate that thermo-kinetic modeling can effectively be utilized in tailoring microstructure and enhancing mechanical properties.

摘要

深入理解相变和微观结构演变对于新开发的低成本Ti-35421(Ti-3Al-5Mo-4Cr-2Zr-1Fe重量百分比)钛合金的力学性能优化至关重要。通过实验和热动力学建模研究了双相Ti-35421中的相变。确定了相变反应和温度范围为β→α [410-660 °C],α→β [660-740 °C],α→β [740-825 °C]。吉布斯-汤姆逊效应和多组分扩散率被证明是导致两个α相之间生长和溶解差异行为的原因。基于计算优化了540 °C的时效温度。它引入了一种包含短粗α片层和β基体的双峰微观结构。测试了双峰Ti-35421的力学性能,并与基线合金Ti-B19和其他近β钛合金进行了比较。540 °C时效合金表现出力学性能的最佳组合,抗拉强度为1313 MPa,屈服强度为1240 MPa,伸长率为8.62%,断裂韧性为75.8 MPa·m。双峰Ti-35421表现出与Ti-B19相当的性能,但在原材料和加工成本方面较低。结果还表明,热动力学建模可有效地用于定制微观结构和提高力学性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6c8e/6747788/4eea5d06a63d/materials-12-02791-g001.jpg

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