Additive manufacturing and mechanical characterization of sinusoidal-based lattice structures: a numerical and experimental approach

被引:0
作者
M. Gómez-Castañeda
E. Cuan-Urquizo
A. L. Giraldo-Betancur
C. Félix-Martínez
A. Gómez-Ortega
J. M. Alvarado-Orozco
机构
[1] Unidad Querétaro,Materials Department, Centro de Investigación y de Estudios Avanzados del IPN
[2] Centro de Ingeniería y Desarrollo Industrial (CIDESI),undefined
[3] CONACYT,undefined
[4] Tecnologico de Monterrey,undefined
[5] Escuela de Ingeniería y Ciencias,undefined
[6] Tecnologico de Monterrey,undefined
[7] Institute of Advanced Materials for Sustainable Manufacturing,undefined
[8] CONACyT-Centro de Investigación y de Estudios Avanzados del IPN,undefined
[9] Unidad Querétaro,undefined
[10] Consorcio de Manufactura Aditiva (CONMAD),undefined
来源
Progress in Additive Manufacturing | 2024年 / 9卷
关键词
Lattice materials; Tensile tests; Auxetic material; Additive manufacturing; Fused filament fabrication;
D O I
暂无
中图分类号
学科分类号
摘要
The design and manufacturability of structured materials have been accelerated due to the advances in additive manufacturing (AM) technologies. The synthesis of structures with tailored made properties demands a thorough characterization of the geometric parameters-effective properties relation. In order to bring alternatives to this subject, this work is focused on analyzing the relation between geometric parametrization (amplitude, thickness, and wavelength) and mechanical properties (elastic modulus and Poisson’s ratio) of two sinusoidal-based lattice structures, i.e., achiral and chiral, through a computational-and-experimental approach. The apparent Young’s modulus was characterized by Finite Element computation analysis and experimental measurements on tensile specimens fabricated via extrusion-based AM. A correlation between the relative density, Poisson’s ratio, and its topological-geometrical parameters was obtained and discussed. The mechanical characterization showed a coupled bending-dominated response of the constituent struts with a rotational deformation of the nodes for both structures. In addition, the achiral structure exhibits a higher auxetic behavior than the chiral structure by a factor of 2.41 in the lowest relation density configurations. Moreover, a contrast with other cell topologies is presented, where the achiral structure is 6.56% softer than a reported square structure compared at the same relative density. Finally, a discussion concerning the deviations between experimental and computational data results was presented in terms of the current limitations and defects of the additive manufacturing process (e.g., infill type, extruding temperature, nozzle geometry) of the tensile specimens.
引用
收藏
页码:315 / 330
页数:15
相关论文
共 143 条
  • [1] Jia Z(2020)Engineering lattice metamaterials for extreme property, programmability, and multifunctionality J Appl Phys 67 187-199
  • [2] Liu F(2018)Flexural elasticity of woodpile lattice beams Eur J Mech A/Solids 20 3132-837
  • [3] Jiang X(2020)Cellular auxetic structures for mechanical metamaterials: a review Sensors 10 823-1063
  • [4] Wang L(2011)Poisson’s ratio and modern materials Nat Mater 5 1052-15
  • [5] Cuan-Urquizo E(2010)A review on auxetic structures and polymeric materials Sci Res Essays 11 1-91
  • [6] Bhaskar A(2021)Dynamic deformation behaviour of chiral auxetic lattices at low and high strain-rates Metals (Basel) 80 84-314
  • [7] Kelkar PU(2015)Influence of translational disorder on the mechanical properties of hexachiral honeycomb systems Compos B Eng 39 305-7037
  • [8] Kim HS(1997)Properties of a chiral honeycomb with a Poisson’s ratio of—1 Int J Mech Sci 3346072 234-153
  • [9] Cho K-H(2008)Application of chiral cellular materials for the design of innovative components ProQuest Dissertations and Theses 51 7029-120
  • [10] Greaves GN(2021)Micropolar homogenization of wavy tetra-chiral and tetra-achiral lattices to identify axial–shear coupling and directional negative Poisson’s ratio Mater Des 58 140-28