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Additive Manufacturing of Honeycomb Lattice Structure-From Theoretical Models to Polymer and Metal Products.
Goldmann, Tomás; Huang, Wei-Chin; Rzepa, Sylwia; Dzugan, Jan; Sedlácek, Radek; Daniel, Matej.
Afiliación
  • Goldmann T; Department of Mechanics, Biomechanics and Mechatronics, Faculty of Mechanical Engineering, Czech Technical University in Prague, Technická 1902/4, 16000 Prague, Czech Republic.
  • Huang WC; Laser and Additive Manufacturing Technology Center, Industrial Technology Research Institute, No. 8, Gongyan Rd., Liujia Dist., Tainan City 734, Taiwan.
  • Rzepa S; Mechanical Testing and Thermophysical Measurement Department, COMTES FHT a.s., Prumyslová 995, 33441 Dobrany, Czech Republic.
  • Dzugan J; Mechanical Testing and Thermophysical Measurement Department, COMTES FHT a.s., Prumyslová 995, 33441 Dobrany, Czech Republic.
  • Sedlácek R; Department of Mechanics, Biomechanics and Mechatronics, Faculty of Mechanical Engineering, Czech Technical University in Prague, Technická 1902/4, 16000 Prague, Czech Republic.
  • Daniel M; Department of Mechanics, Biomechanics and Mechatronics, Faculty of Mechanical Engineering, Czech Technical University in Prague, Technická 1902/4, 16000 Prague, Czech Republic.
Materials (Basel) ; 15(5)2022 Mar 01.
Article en En | MEDLINE | ID: mdl-35269069
ABSTRACT
The study aims to compare mechanical properties of polymer and metal honeycomb lattice structures between a computational model and an experiment. Specimens with regular honeycomb lattice structures made of Stratasys Vero PureWhite polymer were produced using PolyJet technology while identical specimens from stainless steel 316L and titanium alloy Ti6Al4V were produced by laser powder bed fusion. These structures were tested in tension at quasi-static rates of strain, and their effective Young's modulus was determined. Analytical models and finite element models were used to predict effective Young's modulus of the honeycomb structure from the properties of bulk materials. It was shown, that the stiffness of metal honeycomb lattice structure produced by laser powder bed fusion could be predicted with high accuracy by the finite element model. Analytical models slightly overestimate global stiffness but may be used as the first approximation. However, in the case of polymer material, both analytical and FEM modeling significantly overestimate material stiffness. The results indicate that computer modeling could be used with high accuracy to predict the mechanical properties of lattice structures produced from metal powder by laser melting.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Revista: Materials (Basel) Año: 2022 Tipo del documento: Article País de afiliación: República Checa

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Revista: Materials (Basel) Año: 2022 Tipo del documento: Article País de afiliación: República Checa
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