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具有细化微观结构和优异力学性能的超级马氏体不锈钢的电弧增材制造及热处理

Wire + Arc Additive Manufacturing and Heat Treatment of Super Martensitic Stainless Steel with a Refined Microstructure and Excellent Mechanical Properties.

作者信息

Zou Xiaodong, Niu Ben, Pan Linlin, Yi Jianglong

机构信息

Guangdong Provincial Key Laboratory of Advanced Welding Technology, China-Ukraine Institute of Welding, Guangdong Academy of Sciences, 363 Changxing Road, Tianhe District, Guangzhou 510650, China.

出版信息

Materials (Basel). 2022 Apr 2;15(7):2624. doi: 10.3390/ma15072624.

Abstract

Due to the advantages of relatively low cost, increased energy efficiency, increased deposition rate, and the capacity to create medium to large scale components, wire + arc additive manufacturing (WAAM) has gained growing interest. Super martensitic stainless steel (SMSS) combines outstanding strength, ductility, and corrosion resistance, making it a great option for WAAM. In the present work, an SMSS component was successfully produced by WAAM. Additionally, the influence of post-manufactured heat treatment on the microstructural characteristics and mechanical properties of SMSS components was systematically examined. A microstructural analysis of the as-printed and heat-treated samples revealed the formation of typical martensite and a small amount of retained austenite. However, the sample heat-treated by solutionizing at 1050 °C for 1 h followed by aging at 400 °C for 2 h exhibited a finer martensitic structure with an effective grain size of 5.6 μm compared to as-printed sample, leading to an increase in ultimate tensile strength from 1054 ± 6 MPa to 1141 ± 3 MPa with a concomitant increase in elongation from 7.8 ± 0.4% to 12.6 ± 0.2%. Additionally, the fracture morphology of the solution + aging sample demonstrated a more uniform distribution and greater mean size of dimples, indicating better ductility.

摘要

由于成本相对较低、能源效率提高、沉积速率增加以及能够制造中大型部件等优点,电弧增材制造(WAAM)越来越受到关注。超级马氏体不锈钢(SMSS)兼具出色的强度、延展性和耐腐蚀性,使其成为WAAM的理想选择。在当前工作中,通过WAAM成功制造出了一个SMSS部件。此外,还系统研究了制造后热处理对SMSS部件微观结构特征和力学性能的影响。对打印态和热处理态样品的微观结构分析表明,形成了典型的马氏体和少量残余奥氏体。然而,与打印态样品相比,在1050℃固溶1小时然后在400℃时效2小时处理的样品呈现出更细小的马氏体组织,有效晶粒尺寸为5.6μm,导致极限抗拉强度从1054±6MPa提高到1141±3MPa,同时伸长率从7.8±0.4%提高到12.6±0.2%。此外,固溶+时效处理样品的断口形貌显示出更均匀的分布和更大的韧窝平均尺寸,表明其延展性更好。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fdeb/9000792/bbc5c8ac11dd/materials-15-02624-g002.jpg

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