PSI - Issue 69
Mohammadjavad Abdollahzadeh et al. / Procedia Structural Integrity 69 (2025) 2–19
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28. Jafari, A. and V. Saljooghi Nezhad, Employing DEM to study the impact of different parameters on the screening efficiency and mesh wear. Powder Technology, 2016. 297 : p. 126-143. 29. ABEDI, H., Modeling of CP titanium annealing process with a single or dual beam laser source. 2014. 30. Shrestha, S. and Y. Kevin Chou, A numerical study on the keyhole formation during laser powder bed fusion process. Journal of Manufacturing Science and Engineering, 2019. 141 (10). 31. Xing, W., et al., Effect of energy density on defect evolution in 3D printed Zr-based metallic glasses by selective laser melting. Science China Physics, Mechanics & Astronomy, 2020. 63 (2): p. 1-7. 32. Cheng, B., et al., Computational investigation of melt pool process dynamics and pore formation in laser powder bed fusion. Journal of Materials Engineering and Performance, 2019. 28 (11): p. 6565-6578. 33. Xiang, Y., et al., Forming and defect analysis for single track scanning in selective laser melting of Ti6Al4V. Applied Physics A, 2018. 124 (10): p. 1-12. 34. Wang, H. and Y. Zou, Microscale interaction between laser and metal powder in powder-bed additive manufacturing: conduction mode versus keyhole mode. International Journal of Heat and Mass Transfer, 2019. 142 : p. 118473. 35. Lee, Y. and W. Zhang, Modeling of heat transfer, fluid flow and solidification microstructure of nickel-base superalloy fabricated by laser powder bed fusion. Additive Manufacturing, 2016. 12 : p. 178-188. 36. Zhao, Y., et al., Molten pool behavior and effect of fluid flow on solidification conditions in selective electron beam melting (SEBM) of a biomedical Co-Cr-Mo alloy. Additive Manufacturing, 2019. 26 : p. 202-214. 37. Lu, P., et al., Molten pool structure, temperature and velocity flow in selective laser melting AlCu5MnCdVA alloy. Materials Research Express, 2020. 7 (8): p. 086516. 38. Cheng, B., et al. Multi-physics modeling of single track scanning in selective laser melting: powder compaction effect . in 2018 International Solid Freeform Fabrication Symposium . 2018. University of Texas at Austin. 39. Bayat, M., S. Mohanty, and J.H. Hattel, Multiphysics modelling of lack-of-fusion voids formation and evolution in IN718 made by multi track/multi-layer L-PBF. International Journal of Heat and Mass Transfer, 2019. 139 : p. 95-114. 40. Tian, Y., et al., Numerical analysis of powder bed generation and single track forming for selective laser melting of SS316L stainless steel. Journal of Manufacturing Processes, 2020. 58 : p. 964-974. 41. Wu, Y.-C., et al., Numerical modeling of melt-pool behavior in selective laser melting with random powder distribution and experimental validation. Journal of Materials Processing Technology, 2018. 254 : p. 72-78. 42. Ninpetch, P., et al. Thermal and melting track simulations of laser powder bed fusion (L-PBF) . in IOP Conference Series: Materials Science and Engineering . 2019. IOP Publishing. 43. Wei, P., et al., Thermal behavior in single track during selective laser melting of AlSi10Mg powder. Applied Physics A, 2017. 123 (9): p. 1-13. 44. Chen, Z., et al., Thermal dynamic behavior during selective laser melting of K418 superalloy: numerical simulation and experimental verification. Applied Physics A, 2018. 124 (4): p. 1-16. 45. Li, E., et al., Melt pool dynamics and pores formation in multi-track studies in laser powder bed fusion process. Powder Technology, 2022: p. 117533. 46. Nandi, S.K., R. Kumar, and A. Agrawal, Computationally inexpensive semi-analytical thermal model to predict melt-pool dimensions for a single-track in Selective Laser Melting. Journal of Manufacturing Processes, 2022. 80 : p. 469-479. 47. Lu, P., et al., Molten pool structure and temperature flow behavior of green-laser powder bed fusion pure copper. Materials Research Express, 2022. 9 (1): p. 016504. 48. Lu, H., et al., Constructing function domains in NiTi shape memory alloys by additive manufacturing. Virtual and Physical Prototyping, 2022. 17 (3): p. 563-581. 49. Hu, Y., et al., Multi-physics modeling for laser powder bed fusion process of NiTi shape memory alloy. Journal of Alloys and Compounds, 2023. 954 : p. 170207. 50. Qiu, C., et al., On the role of melt flow into the surface structure and porosity development during selective laser melting. Acta Materialia, 2015. 96 : p. 72-79. 51. Chernyshikhin, S.V., D.G. Firsov, and I.V. Shishkovsky, Selective Laser Melting of Pre-Alloyed NiTi Powder: Single-Track Study and FE Modeling with Heat Source Calibration. Materials, 2021. 14 (23): p. 7486. 52. Andersson, J.O., et al., Thermo-Calc & DICTRA, computational tools for materials science. Calphad, 2002. 26 (2): p. 273-312. 53. Tu, J. and N. Reeves, Feasibility study of microneedle fabrication from a thin nitinol wire using a CW single-mode fiber laser. Open Engineering, 2019. 9 (1): p. 167-177. 54. Stachiv, I., E. Alarcon, and M. Lamac, Shape memory alloys and polymers for MEMS/NEMS applications: review on recent findings and challenges in design, preparation, and characterization. Metals, 2021. 11 (3): p. 415. 55. Abdollahzadeh, M.J. and A. Moosavi, Optimization of microgrooves for water–solid drag reduction using genetic algorithm. Journal of Ocean Engineering and Marine Energy, 2020. 6 (3): p. 221-242. 56. Bayat, M., et al., Keyhole-induced porosities in Laser-based Powder Bed Fusion (L-PBF) of Ti6Al4V: High-fidelity modelling and experimental validation. Additive Manufacturing, 2019. 30 : p. 100835. 57. Cho, J.-H. and S.-J. Na, Implementation of real-time multiple reflection and Fresnel absorption of laser beam in keyhole. Journal of Physics D: Applied Physics, 2006. 39 (24): p. 5372-5378. 58. Masmoudi, A., R. Bolot, and C. Coddet, Investigation of the laser–powder–atmosphere interaction zone during the selective laser melting process. Journal of Materials Processing Technology, 2015. 225 : p. 122-132. 59. Li, Y. and D. Gu, Parametric analysis of thermal behavior during selective laser melting additive manufacturing of aluminum alloy powder. Materials & design, 2014. 63 : p. 856-867. 60. He, Q., et al., Modeling and numerical studies of selective laser melting: Multiphase flow, solidification and heat transfer. Materials & Design, 2020. 196 : p. 109115.
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