Response surface analysis, tensile properties, and microstructure of Ti–6.5Al–3.5Mo–1.5Zr–0.3Si fabricated by laser powder bed fusion

IF 1.7 4区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Laser Applications Pub Date : 2023-08-01 DOI:10.2351/7.0000932
B. Ou, Lixin Lu, Xiangwei Meng, Qing He, Yilin Xie, Junxia Yan
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Abstract

In this work, Ti–6.5Al–3.5Mo–1.5Zr–0.3Si alloy samples under different laser process parameters were successfully fabricated by laser powder bed fusion technology. The influence of three processing parameters (laser power P, scanning speed V, and hatch spacing H) on the forming quality and tensile properties of Ti–6.5Al–3.5Mo–1.5Zr–0.3Si samples was investigated by response surface analysis. The Non-Dominated Sorting Genetic Algorithm-II was employed to optimize and attain laser process parameters with optimal forming quality and tensile properties. Specifically, the response surface was established to reveal the optimization method of two response values (forming densification and ultimate tensile strength). The results demonstrated that hatch spacing (H) and its secondary influencing factor (H2) exerted significant effects on densification. In addition, the secondary influencing factors of laser power and hatch spacing (P2 and H2) exerted significant effects on the ultimate tensile strength of Ti–6.5Al–3.5Mo–1.5Zr–0.3Si samples. The influence mechanism of laser process parameters on the densification and tensile properties of samples was further illuminated from the perspective of melting instability and the grain growth process. The maximum tensile strength of the Ti–6.5Al–3.5Mo–1.5Zr–0.3Si sample obtained after optimization reached above 1300 MPa. The maximum strain of the Ti–6.5Al–3.5Mo–1.5Zr–0.3Si sample with the optimal plastic performance reached 16.6%. The strength and toughness of Ti–6.5Al–3.5Mo–1.5Zr–0.3Si samples were analyzed from the aspects of the microstructure and phase composition.
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激光粉末床熔融制备Ti–6.5Al–3.5Mo–1.5Zr–0.3Si的响应面分析、拉伸性能和微观结构
本工作采用激光粉末床熔融技术成功制备了不同激光工艺参数下的Ti–6.5Al–3.5Mo–1.5Zr–0.3Si合金样品。通过响应面分析研究了三个工艺参数(激光功率P、扫描速度V和图案间距H)对Ti–6.5Al–3.5Mo–1.5Zr–0.3Si样品成形质量和拉伸性能的影响。采用非支配排序遗传算法Ⅱ对激光工艺参数进行优化,得到了成形质量和拉伸性能最优的工艺参数。具体而言,建立了响应面,揭示了两个响应值(成形致密化和极限抗拉强度)的优化方法。结果表明,舱口间距(H)及其次要影响因素(H2)对致密化有显著影响。此外,激光功率和舱口间距(P2和H2)的次要影响因素对Ti–6.5Al–3.5Mo–1.5Zr–0.3Si样品的极限抗拉强度产生了显著影响。从熔融不稳定性和晶粒生长过程的角度进一步阐明了激光工艺参数对样品致密化和拉伸性能的影响机制。优化后得到的Ti–6.5Al–3.5Mo–1.5Zr–0.3Si样品的最大抗拉强度达到1300以上 MPa。具有最佳塑性性能的Ti–6.5Al–3.5Mo–1.5Zr–0.3Si试样的最大应变达到16.6%。从微观结构和相组成方面分析了Ti–6.5Al-3.5Mo–1.5 Zr–0.3 Si试样的强度和韧性。
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来源期刊
CiteScore
3.60
自引率
9.50%
发文量
125
审稿时长
>12 weeks
期刊介绍: The Journal of Laser Applications (JLA) is the scientific platform of the Laser Institute of America (LIA) and is published in cooperation with AIP Publishing. The high-quality articles cover a broad range from fundamental and applied research and development to industrial applications. Therefore, JLA is a reflection of the state-of-R&D in photonic production, sensing and measurement as well as Laser safety. The following international and well known first-class scientists serve as allocated Editors in 9 new categories: High Precision Materials Processing with Ultrafast Lasers Laser Additive Manufacturing High Power Materials Processing with High Brightness Lasers Emerging Applications of Laser Technologies in High-performance/Multi-function Materials and Structures Surface Modification Lasers in Nanomanufacturing / Nanophotonics & Thin Film Technology Spectroscopy / Imaging / Diagnostics / Measurements Laser Systems and Markets Medical Applications & Safety Thermal Transportation Nanomaterials and Nanoprocessing Laser applications in Microelectronics.
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