[1] Zhao J L,Zhi Z F,Sun D,et al.Antibacterial durability and biocompatibility of antibacterial-passivated 316L stainless steel in simulated physiological environment[J].Materials Science and Engineering C,2019,100:396-410. [2] Yang Y,Zhu Y,Khonsari M M,et al.Wear anisotropy of selective laser melted 316L stainless steel[J].Wear,2019,428-429:376-386. [3] Saeidi K,Neikter M,Olsen J,et al.316L stainless steel designed to withstand intermediate temperature[J].Materials and Design,2017,135:1-8. [4] Frazier W E.Metal additive manufacturing:A review[J].Journal of Materials Engineering and Performance,2014,23(6):1917-1928. [5] Zhang Y,Wu L,Guo X,et al.Additive manufacturing of metallic materials:A review[J].Journal of Materials Engineering and Performance,2018,27(1):1-13. [6] Kong D,Ni X,Dong C,et al.Heat treatment effect on the microstructure and corrosion behavior of 316L stainless steel fabricated by selective laser melting for proton exchange membrane fuel cells[J].Electrochimica Acta,2018,276:293-303. [7] Liu G L,Yang S W,Han W T,et al.Microstructural evolution of dissimilar welded joints between reduced-activation ferritic-martensitic steel and 316L stainless steel during the post weld heat treatment[J].Materials Science and Engineering A,2018,722:182-196. [8] Tomasz K,Konrad G,Wojciech S,et al.Correlation between process parameters,microstructure and properties of 316 L stainless steel processed by selective laser melting[J].Materials Science and Engineering A,2018,718:64-73. [9] Gray G T,Livescu V,Rigg P A,et al.Structure/property(constitutive and spallation response)of additively manufactured 316L stainless steel[J].Acta Materialia,2017,138:140-149. [10] 尹 燕,刘鹏宇,路 超,等.选区激光熔化成形316L不锈钢微观组织及拉伸性能分析[J].焊接学报,2018,39(8):77-81. Yin Yan,Liu Pengyu,Lu Chao,et al.Microstructure and tensile properties of selective laser melting forming 316L stainless steel[J].Transaction of the China Welding Institution,2018,39(8):77-81. [11] 边培莹.热处理工艺对 316L 不锈钢粉末激光选区熔化成形的残余应力及组织的影响[J].材料热处理学报,2019,40(4):90-97. Bian Peiying.Effect of heat treatment on residual stress and microstructure of 316L stainless steel powder formed by selective laser melting[J].Transactions of Materials and Heat Treatment,2019,40(4):90-97. [12] Casati R,Lemke J,Vedani M,et al.Microstructure and fracture behavior of 316L austenitic stainless steel produced by selective laser melting[J].Journal of Materials Science and Technology,2016,32:738-744. [13] Salman O O,Gammer C,Chaubey A K,et al.Effect of heat treatment on microstructure and mechanical properties of 316L steel synthesized by selective laser melting[J].Materials Science and Engineering A,2019,748:205-212. [14] Liverani E,Toschi S,Ceschini L,et al.Effect of selective laser melting(SLM)process parameters on microstructure and mechanical properties of 316L austenitic stainless steel[J].Journal of Materials Processing Technology,2017,249:255-263. [15] Deev A A,Kuznetcov P A,Petrov S N,et al.Anisotropy of mechanical properties and its correlation with the structure of the stainless steel 316L produced by the SLM method[J].Physics Procedia,2016,83:789-796. [16] Bahl S,Mishra S,Yazar K U,et al.Non-equilibrium microstructure,crystallographic texture and morphological texture synergistically result in unusual mechanical properties of 3D printed 316L stainless steel[J].Additive Manufacturing,2019,28:65-77. |