Effect of Vertical Strut Arrangements on Compression Characteristics of 3D Printed Polymer Lattice Structures: Experimental and Computational Study

被引:0
作者
Abdalsalam Fadeel
Ahsan Mian
Mohammed Al Rifaie
Raghavan Srinivasan
机构
[1] Wright State University,Department of Mechanical and Material Engineering
来源
Journal of Materials Engineering and Performance | 2019年 / 28卷
关键词
3D printing; additive manufacturing; energy absorption; lattice truss structures;
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学科分类号
摘要
This paper discusses the behavior of the three-dimensional (3D) printed polymer lattice core structures during compressive deformation, by both physical testing and computer modeling. Four lattice configurations based on the body-centered cubic (BCC) unit cell were selected to investigate the effect of vertical strut arrangements on stiffness, failure load, and energy absorption per unit mass or the specific energy absorption (SEA). The basic BCC unit cell consists of struts connecting the body center to the corners of the cube. Three variations in the BCC configuration considered in this study are (1) BCCV, with vertical members connecting all nodes of the lattice, (2) BCCA, with vertical members in alternating layers of the lattice, and (3) BCCG, with a gradient in the number of vertical members increasing from none at the top layer to all vertical members at the bottom layer. The unit cell dimensions were 5 mm × 5 mm × 5 mm with strut diameter of 1 mm. The lattice was assembled with 5 cells in the x and y directions and 4 cells in the z direction. Specimens were first made by 3D printing by using a fused deposition modeling printer with acrylonitrile–butadiene–styrene thermoplastic. Specimens were then tested under compression in the z direction under quasi-static conditions. Finite element analysis was used to model the compressive behavior of the different lattice structures. Results from both experiments and finite element models show that the strength of the lattice structures is greater when vertical members are present, and the SEA depends on the lattice geometry and not its mass.
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页码:709 / 716
页数:7
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共 47 条
  • [1] Sypeck D(2005)Cellular Truss Core Sandwich Structure Appl. Compos. Mater. 12 229-246
  • [2] Queheillalt D(2008)Mechanical Properties of an Extruded Pyramidal Lattice Truss Sandwich Structure Scripta Mater. 58 76-79
  • [3] Murty Y(2011)Characterization of Selectively Laser Melted Ti-6Al-4V Micro-lattice Struts Procedia Eng. 10 536-541
  • [4] Hasana R(2013)Prediction of Mechanical Properties of Micro-lattice Structure Subjected to Multi-axial Loading Int. J. Mech. Sci. 68 47-55
  • [5] Mines R(2015)Effect of Initiator, Design, and Material on Crashworthiness Performance of Thin-Walled Cylindrical Tubes: A Primary Multi-criteria Analysis in Lightweight Design Thin Walled Struct. 96 169-182
  • [6] Fox P(2016)Composite 3D-Printed Metastructures for Low Frequency and Broad Band Vibration Absorption PNAS 113 8386-8390
  • [7] Ushijima K(2016)Characterization of Titanium Lattice Structure Fabricated by Selective Laser Melting Using an Adapted Compressive Test Method Exp. Method 56 735-748
  • [8] Cantwell W(2017)Impact Response of Additively Manufactured Metallic Hybrid Lattice Materials Int. J. Impact Eng. 104 177-191
  • [9] Chen D(2017)Compression Performance of Hollow Structures: From Topology Optimisation to Design 3D Printing Int. J. Mech. Sci. 133 728-739
  • [10] Rezvani M(2016)Anisotropic Damage Inferred to 3D Printed Polymers Using Fused Deposition Modelling and Subject to Severe Compression Eur. Polym. J. 85 324-340