Directed energy deposition on sheet metal forming for reinforcement structures

被引:0
作者
Chen, Fan [1 ,2 ]
Zha, Rujing [1 ]
Jeong, Jihoon [1 ,3 ]
Liao, Shuheng [1 ,4 ]
Cao, Jian [1 ]
机构
[1] Department of Mechanical Engineering, Northwestern University, Evanston, 60208, IL
[2] Matériaux et Mécanique des Solides, Université de Liège, Allée de la Découverte 9 B52/3, Liège
[3] Wm Michael Barnes ’64 Department of Industrial and Systems Engineering, Texas A&M University, College Station, 77843, TX
[4] Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, 02139, MA
基金
美国国家科学基金会;
关键词
Additive manufacturing; Directed energy deposition; Finite element method; Incremental forming; Residual stress; Thermal distortion;
D O I
10.1016/j.jmapro.2025.03.120
中图分类号
学科分类号
摘要
While incremental forming processes can inexpensively create complex geometries from sheet metal, they struggle with adding sharp out of plane features for stiffness enhancement. With the implementation of directed-energy deposition (DED), an additive manufacturing process that locally deposits metal onto metallic substrates, reinforcement structures can be formed on the sheet metal. Furthermore, a design engineer may take advantage of the high residual stresses of DED to directly alter shapes in the substrate metal sheet. This hybrid forming-deposition process, as well as the application of local reinforcement, requires a good understanding of the process mechanism to predict expected shapes and minimize undesired deformations. In this work, numerical approaches are applied to evaluate heat transfer, thermal stress, and buckling of thin sheets under the stresses of deposition. These results are compared to analogous experiments conducted on an open-architecture laser-powder DED machine. The results of the thermal-mechanical analysis resemble the deformation trends observed in the experiments. However, the small-displacement formulation in the simulation used for ease of convergence does not fully capture the magnitude of the observed deformations. Nevertheless, the simulations effectively illustrate the effect of different scan strategies on the final deformed shape of the sheet metal. © 2025 The Society of Manufacturing Engineers
引用
收藏
页码:339 / 349
页数:10
相关论文
共 31 条
  • [11] Bambach M., Sviridov A., Weisheit A., Schleifenbaum J.H., Case studies on local reinforcement of sheet metal components by laser additive manufacturing, Metals, 7, 4, (2017)
  • [12] McColl I.R., Morley J.G., Cottrell A.H., Damage tolerant fibre reinforced sheet metal composites, Philosophical Transactions of the Royal Society of London Series A, Mathematical and Physical Sciences, 287, 1338, pp. 17-43, (1997)
  • [13] Krassmann D., Moritzer E., Development of a new joining technology for hybrid joints of sheet metal and continuous fiber-reinforced thermoplastics, Weld World, 66, 1, pp. 45-60, (2022)
  • [14] Lauter C., Troster T., Reuter C., Hybrid structures consisting of sheet metal and fibre reinforced plastics for structural automotive applications, Advanced composite materials for automotive applications, pp. 149-174, (2013)
  • [15] Nayak L.J., Roy G.G., Thermocouple temperature measurement during high speed electron beam welding of SS 304, Optik, 201, (2020)
  • [16] Sweet J.N., Roth E.P., Moss M., Thermal conductivity of Inconel 718 and 304 stainless steel, Int J Thermophys, 8, 5, pp. 593-606, (1987)
  • [17] Halama R., Fumfera J., Gal P., Kumar T., Markopoulos A., Modeling the strain-range dependent cyclic hardening of SS304 and 08Ch18N10T stainless steel with a memory surface, Metals, 9, 8, (2019)
  • [18] Vijaya G., Et al., Nano indentation studies on ceramic thinfilms coatings deposited using sputtering process for energy applications, Materials Science for Energy Technologies, 7, pp. 115-123, (2024)
  • [19] Arora H., Singh R., Brar G.S., Numerical simulation on residual stresses of stainless steel SS-304 thin welded pipe, Measurement and Control, 53, 7-8, pp. 1183-1193, (2020)
  • [20] Kang G., Kan Q., Constitutive modeling for uniaxial time-dependent ratcheting of SS304 stainless steel, Mech Mater, 39, 5, pp. 488-499, (2007)