REN Zhao-hui, WANG Yun-he, LI Zhu-hong, WANG Chen. Numerical Simulation Study of Stress Fields in the Additive Manufacturing and Micro-forging Process[J]. Journal of Northeastern University(Natural Science), 2022, 43(6): 881-887.
[1]Victor C,Philippe Q,Wilson M,et al.Comparative study of fatigue properties of Ti-6Al-4V specimens built by electron beam melting(EBM)and selective laser melting(SLM)[J].Materials Characterization,2018,143:76-81. [2]Yi M,Zhang X Z,Liu G W,et al.Comparative investigation on microstructures and mechanical properties of(TiB+TiC)/Ti-6Al-4V composites from Ti-B4 C-C and Ti-TiB2-TiC systems[J].Materials Characterization,2018,140:281-289. [3]Altenkirch J,Steuwer A,Withers P J,et al.Residual stress engineering in friction stir welds by roller tensioning[J].Science and Technology of Welding and Joining,2009,14(2):185-192. [4]戚永爱,赵剑峰,谢德巧,等.超声冲击细化FGH95镍基高温合金激光熔覆层组织[J].焊接学报,2015,36(3):59-62.(Qi Yong-ai,Zhao Jian-feng,Xie De-qiao,et al.Ultrasonic impact refines the microstructure of FGH95 nickel-based superalloy laser cladding layer[J].Journal of Welding,2015,36(3):59-62.) [5]Suh C,Song G,Suh M,et al.Fatigue and mechanical characteristics of nano-structured tool steel by ultrasonic cold forging technology[J].Materials Science & Engineering A,2006,443(1):101-106. [6]Ye H,Ye K,Guo B G,et al.Effects of combining ultrasonic micro-forging treatment with laser metal wire deposition on microstructural and mechanical properties in Ti-6Al-4V alloy[J].Materials Characterization,2020,162:110187. [7]任朝晖,刘振,张小双,等.超声微锻造辅助激光熔丝增材制造数值模拟研究[J].东北大学学报(自然科学版),2019,40(11):1590-1594,1599.(Ren Zhao-hui,Liu Zhen,Zhang Xiao-shuang,et al.Numerical simulation of ultrasonic micro-forging assisted laser fuse additive manufacturing[J].Journal of Northeastern University(Natural Science),2019,40(11):1590-1594 ,1599.) [8]Yin J,Zhu H H,Ke L D,et al.Simulation of temperature distribution in single metallic powder layer for laser micro-sintering[J].Computational Materials Science,2012,53(1):333-339. [9]Carou D,Rubio E,Agustina B,et al.Experimental study for the effective and sustainable repair and maintenance of bars made of Ti-6Al-4V alloy:application to the aeronautic industry [J].Journal of Cleaner Production,2017,164:465-475. [10]Sun C Q,Li Y Q,Xu K L,et al.Effects of intermittent loading time and stress ratio on dwell fatigue behavior of titanium alloy Ti-6Al-4V ELI used in deep-sea submersibles[J].Journal of Materials Science & Technology,2021,77:223-236. [11]Ding Z L,Zhou Q,Wang Y,et al.Microstructure and properties of monolayer,bilayer and multilayer Ta2O5-based coatings on biomedical Ti-6Al-4V alloy by magnetron sputtering[J].Ceramics International,2020,9(6):16329-16338. [12]宋丽莉,李庆.基于MSC.Marc的钛合金激光快速成形过程模拟[J].热加工工艺,2013,42(15):68-71.(Song Li-li,Li Qing.Simulation of laser rapid prototyping of titanium alloy based on MSC.Marc[J].Heat Processing Technology,2013,42(15):68-71.) [13]Kardas O O,Keles O,Akhtar S,et al.Laser cutting of rectangular geometry in 2024 aluminum alloy:thermal stress analysis[J].Optics & Laser Technology,2014,64:247-256.