DOI QR코드

DOI QR Code

Powder Bed Fusion 방식 금속 적층 제조 방식 기술 분석

Status Quo of Powder Bed Fusion Metal Additive Manufacturing Technologies

  • 황인석 (충북대학교 바이오시스템공학과) ;
  • 신창섭 (충북대학교 바이오시스템공학과)
  • Hwang, In-Seok (Department of Biosystems Engineering, Chungbuk National University) ;
  • Shin, Chang-Seop (Department of Biosystems Engineering, Chungbuk National University)
  • 투고 : 2022.05.30
  • 심사 : 2022.06.24
  • 발행 : 2022.07.31

초록

Recently, metal additive manufacturing (AM) is being investigated as a new manufacturing technology. In metal AM, powder bed fusion (PBF) is a promising technology that can be used to manufacture small and complex metallic components by selectively fusing each powder layer using an energy source such as laser or an electron beam. PBF includes selective laser melting (SLM) and electron beam melting (EBM). SLM uses high power-density laser to melt and fuse metal powders. EBM is similar to SLM but melts metals using an electron beam. When these processes are applied, the mechanical properties and microstructures change due to the many parameters involved. Therefore, this study is conducted to investigate the effects of the parameters on the mechanical properties and microstructures such that the processes can be performed more economically and efficiently.

키워드

과제정보

이 논문은 2019학년도 충북대학교학술연구지원 사업의 연구비 지원에 의하여 연구되었음

참고문헌

  1. Kang, M. C., Ye, D. H. and Go, G. H., "International Development Trend and Technical Issues of Metal Additive Manufacturing," Journal of Welding and Joining, Vol. 34, No. 4, pp. 9-16, 2016. https://doi.org/10.5781/JWJ.2016.34.4.9
  2. Jang, S. G., Woo, D. G., and Kim, T. H., "Development of Motor-Driven Convenience Equipment for Harvesting Chili Peppers on Bare Ground," Journal of Biosystems Engineering, Vol. 45, No. 1, 2020.
  3. Song, H. S., and Kim, Y. Y., "Determination of the Properties of the Rubber Mounted Under the Agricultural Tractor Rollover Protective Structure Cabin Using a Hyperelastic Tensile Test and Finite Element Analysis," Journal of Biosystems Engineering, Vol. 45, No. 3, 2020.
  4. Hwang, S. J., Kim, J. H., and Nam, J. S., "Factorial Experiment for the Collecting Device of an Agricultural By-product Collector," Journal of Biosystems Engineering, Vol. 45, No. 3, 2020.
  5. Kim, B. S., Han, H. W., and Park, Y. J., "Experimental Analysis of Noise Characteristics of Electric Agricultural Utility Terrain Vehicle Gearbox," Journal of Biosystems Engineering, Vol. 45, No. 3, 2020.
  6. Saha, K. K., Hossain, A., Hoque, M. A., Jahan, M. A. H. S., Ahmed, S., and Timsina, J., "Development and Performance Evaluation of a Two-Wheeled Power-Tiller Multi-row Weeder," Journal of Biosystems Engineering, Vol. 46, No. 1, 2021.
  7. Shafaei, S. M., Loghavi, M., and Kamgar, S., "Analytical Description of Power Delivery Efficiency of Front Wheel Assist Tractor in Tillage Works," Journal of Biosystems Engineering, Vol. 46, No. 3, 2021.
  8. Koo, Y. M., and Kang, Y. S., "Characteristics of Power and Fuel Use of a Tractor-Mounted Integrated Implement for Round Ridge Preparation," Journal of Biosystems Engineering, Vol. 46, No. 4, 2021.
  9. Jang, S. G., Woo, D. G. and Kim, T. H., "Development of Motor-Driven Convenience Equipment for Harvesting Chili Peppers on Bare Ground," Journal of Biosystems Engineering, Vol. 45, No. 1, 2020.
  10. Yap, C. Y., Chua, C. K., Dong, Z. L., Liu, Z. H., Zhang, D. Q., Loh, L. E. and Sing, S. L., "Review of Selective Laser Melting: Materials and Applications," Applied Physics Review, Vol. 2, No. 4, 2015.
  11. Sander, G., Babu, A. P., Gao, X., Jiang, D. and Birbilis, N., "On the Effect of Build Orientation and Residual Stress on the Corrosion of 316L Stainless Steel Prepared by Selective Laser Melting," Corrosion Science, Vol. 179, 2021.
  12. Song, Y., Sun, Q., Guo, K., Wang, X., Liu, J. and Sun, J., "Effect of Scanning Strategies on the Microstructure and Mechanical Behavior of 316L Stainless Steel Fabricated by Selective Laser Melting," Materials Science and Engineering: A, Vol. 793, 2020.
  13. Maass, R., Van Petegem,. S., Grolimund, D. and Van Swygenhoven, H., "A Strong Micropillar Containing a Low Angle Grain Boundary," Applied Physics Letters, Vol. 91, No. 13, 2007.
  14. Bruno, J., Rochman, A. and Cassar, G., "Effect of Build Orientation of Electron Beam Melting on Microstructure and Mechanical Properties of Yi-6Al-4V," Journal of Materials Engineering and Performance, Vol. 26, pp. 692-703, 2017. https://doi.org/10.1007/s11665-017-2502-4
  15. Razavi, S. M. J., Van Hooreweder, B. and Berto, F., "Effect of Build Thickness and Geometry on Quasi-static and Fatigue Behavior of Ti-6Al-4V Produced by Electron Beam Melting," Additive Manufacturing, Vol. 36, 2020.
  16. Neikter, M., Akerfeldt, P., Pederson, R. and Antti, M. L., "Microstructure Characterisation of Ti-6Al-4V from Different Additive Manufacturing Processes," IOP Conference Series: Materials Science and Engineering, Vol. 258, 2017.
  17. Zhang, C., Hu, K., Zheng, M., Zhu, W. and Song, G., "Effect of Surface Nanocrystallization on Fatigue Properties of Ti-6Al-4V Alloys with Bimodal and Lamellar Structure," Materials Science & Engineering A, Vol. 813, 2021.