Chinese Journal of Lasers, Volume. 50, Issue 8, 0802301(2023)
Effects of Different Process Strategies on Surface Quality and Mechanical Properties of 316L Stainless Steel Fabricated via Hybrid Additive-Subtractive Manufacturing
[1] Chen X, Li J, Cheng X et al. Microstructure and mechanical properties of the austenitic stainless steel 316L fabricated by gas metal arc additive manufacturing[J]. Materials Science and Engineering: A, 703, 567-577(2017).
[2] Ning J Q, Sievers D E, Garmestani H et al. Analytical modeling of transient temperature in powder feed metal additive manufacturing during heating and cooling stages[J]. Applied Physics A, 125, 496(2019).
[3] Zhao Y H, Sun J, Li J F et al. The stress coupling mechanism of laser additive and milling subtractive for FeCr alloy made by additive-subtractive composite manufacturing[J]. Journal of Alloys and Compounds, 769, 898-905(2018).
[4] Li Z, Chen J, Sui S et al. The microstructure evolution and tensile properties of Inconel 718 fabricated by high-deposition-rate laser directed energy deposition[J]. Additive Manufacturing, 31, 100941(2020).
[5] Ding D, Shen C, Pan Z et al. Towards an automated robotic arc-welding-based additive manufacturing system from CAD to finished part[J]. Computer-Aided Design, 73, 66-75(2016).
[6] Tao W, Jin Z, Shuai J et al. Effect of laser scanning and milling speed on surface roughness of TC4 hybrid prepared[J]. The International Journal of Advanced Manufacturing Technology, 117, 1663-1674(2021).
[7] Möhring H C, Becker D, Eisseler R et al. Influence of the manufacturing parameters of an AlMg5 wire-based hybrid production process on quality and mechanical properties[J]. The International Journal of Advanced Manufacturing Technology, 119, 2445-2460(2022).
[8] Zou J, Liu H J, Zhao Y H et al. Study on process parameters of high-strength Al-Mg-Sc-Zr alloy prepared by laser melting deposition[J]. Laser & Optoelectronics Progress, 60, 0914003(2023).
[9] Wang Y, Shi T, Shi S H et al. Inside-laser powder feeding cladding forming of arc-shaped twisted structural parts[J]. Chinese Journal of Lasers, 48, 2202015(2021).
[10] Qin W T, Yang Y Q, Weng C W et al. Comparative forming size and mechanical properties of 316L stainless steel fabricated using laser/plasma arc directed energy deposition[J]. Chinese Journal of Lasers, 48, 2202006(2021).
[11] Luo X M, Frank M C. A layer thickness algorithm for additive/subtractive rapid pattern manufacturing[J]. Rapid Prototyping Journal, 16, 100-115(2010).
[12] Zhang J T, Zhang W, Li Y J et al. Laser deposition additive/subtractive hybrid manufacturing process for stainless steel powder based on DMG MORI LASERTEC 65 3D[J]. Materials Science and Engineering of Powder Metallurgy, 23, 368-374(2018).
[13] Chen F, Song C H, Yang Y Q et al. Surface quality and mechanical properties of 316L stainless steel manufactured by powder feeding laser additive and milling subtractive hybrid manufacturing[J]. Laser & Optoelectronics Progress, 59, 0114009(2022).
[14] Yang Y Y, Gong Y D, Qu S S et al. Densification, mechanical behaviors, and machining characteristics of 316L stainless steel in hybrid additive/subtractive manufacturing[J]. The International Journal of Advanced Manufacturing Technology, 107, 177-189(2020).
[15] Zhu G X, Zhang A F, Li D C. Effect of process parameters on surface smoothness in laser cladding[J]. Chinese Journal of Lasers, 37, 296-301(2010).
[16] Wang B, Zhao J X, Zhang X Y et al. Effect of side milling parameters on surface roughness and material removal rate of TC4 titanium alloy[J]. Tool Engineering, 55, 9-12(2021).
[17] Zhang P Q. Study on laser metal deposition process and mechanical properties of 304L/IN625 functionally gradient materials[D], 16-17(2020).
[18] Zhang X Y, Li X B, Tan Z et al. Microstructure and mechanical properties of water atomized Cu-10Sn alloy powder formed parts by selective laser melting[J]. Chinese Journal of Lasers, 45, 1002009(2018).
[19] Yao Y S, Wang J, Chen Q B et al. Research status of defects and defect treatment technology for laser additive manufactured products[J]. Laser & Optoelectronics Progress, 56, 100004(2019).
[20] Bartolomeu F, Buciumeanu M, Pinto E et al. 316L stainless steel mechanical and tribological behavior: a comparison between selective laser melting, hot pressing and conventional casting[J]. Additive Manufacturing, 16, 81-89(2017).
Get Citation
Copy Citation Text
Zihao Cai, Yongqiang Zhu, Changjun Han, Shao He, Ye He, Zhiheng Tai, Vyacheslav Trofimov, Yongqiang Yang. Effects of Different Process Strategies on Surface Quality and Mechanical Properties of 316L Stainless Steel Fabricated via Hybrid Additive-Subtractive Manufacturing[J]. Chinese Journal of Lasers, 2023, 50(8): 0802301
Category: Laser Additive Manufacturing
Received: Oct. 24, 2022
Accepted: Jan. 4, 2023
Published Online: Mar. 28, 2023
The Author Email: Changjun Han (cjhan@scut.edu.cn)