Lattice Structures-Mechanical Description with Respect to Additive Manufacturing

被引:3
作者
Raz, Karel [1 ]
Chval, Zdenek [1 ]
Pereira, Mathis [2 ]
机构
[1] Univ West Bohemia, Reg Technol Inst, Fac Mech Engn, Univ 2732-8, Plzen 30100, Czech Republic
[2] Polytech Montpellier, Select Engn Sch, Pl Eugene Bataillon, F-34090 Montpellier, France
关键词
additive manufacturing; lattice structures; compression; MJF; 3D PRINTING TECHNOLOGY; BUILD ORIENTATION; POROSITY; IMPACT; PARTS; PLA;
D O I
10.3390/ma17215298
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Lattice structures, characterized by their repetitive, interlocking patterns, provide an efficient balance of strength, flexibility, and reduced weight, making them essential in fields such as aerospace and automotive engineering. These structures use minimal material while effectively distributing stress, providing high resilience, energy absorption, and impact resistance. Composed of unit cells, lattice structures are highly customizable, from simple 2D honeycomb designs to complex 3D TPMS forms, and they adapt well to additive manufacturing, which minimizes material waste and production costs. In compression tests, lattice structures maintain stiffness even when filled with powder, suggesting minimal effect from the filler material. This paper shows the principles of creating finite element simulations with 3D-printed specimens and with usage of the lattice structure. The comparing of simulation and real testing is also shown in this research. The efficiency in material and energy use underscores the ecological and economic benefits of lattice-based designs, positioning them as a sustainable choice across multiple industries. This research analyzes three selected structures-solid material, pure latices structure, and boxed lattice structure with internal powder. The experimental findings reveal that the simulation error is less than 8% compared to the real measurement. This error is caused by the simplified material model, which is considering the isotropic behavior of the used material PA12GB (not the anisotropic model). The used and analyzed production method was multi jet fusion.
引用
收藏
页数:14
相关论文
共 52 条
[11]   The impact of 3D Printing Technology on the supply chain: Manufacturing and legal perspectives [J].
Chan, Hing Kai ;
Griffin, James ;
Lim, Jia Jia ;
Zeng, Fangli ;
Chiu, Anthony S. F. .
INTERNATIONAL JOURNAL OF PRODUCTION ECONOMICS, 2018, 205 :156-162
[12]   Young's modulus and volume porosity relationships for additive manufacturing applications [J].
Choren, J. A. ;
Heinrich, S. M. ;
Silver-Thorn, M. B. .
JOURNAL OF MATERIALS SCIENCE, 2013, 48 (15) :5103-5112
[13]  
Chua CK, 2017, STANDARDS, QUALITY CONTROL, AND MEASUREMENT SCIENCES IN 3D PRINTING AND ADDITIVE MANUFACTURING, P181, DOI 10.1016/B978-0-12-813489-4.00008-8
[14]   A review on wood powders in 3D printing: processes, properties and potential applications [J].
Das, Atanu Kumar ;
Agar, David A. ;
Rudolfsson, Magnus ;
Larsson, Sylvia H. .
JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2021, 15 :241-255
[15]   Optimized build orientation of additive manufactured parts for improved surface quality and build time [J].
Delfs, P. ;
Tows, M. ;
Schmid, H. -J. .
ADDITIVE MANUFACTURING, 2016, 12 :314-320
[16]   The Influence of Printing Layer Thickness and Orientation on the Mechanical Properties of DLP 3D-Printed Dental Resin [J].
Farkas, Andrei Zoltan ;
Galatanu, Sergiu-Valentin ;
Nagib, Riham .
POLYMERS, 2023, 15 (05)
[17]  
Fradl D., 2017, P SCI AG EXP C BOST
[18]   Tribological Properties of Glass Bead-Filled Polyamide 12 Composite Manufactured by Selective Laser Sintering [J].
Gadelmoula, Abdelrasoul ;
Aldahash, Saleh Ahmed .
POLYMERS, 2023, 15 (05)
[19]   Geometric precision analysis for Additive Manufacturing processes: A comparative study [J].
Geng, Zhaohui ;
Bidanda, Bopaya .
PRECISION ENGINEERING-JOURNAL OF THE INTERNATIONAL SOCIETIES FOR PRECISION ENGINEERING AND NANOTECHNOLOGY, 2021, 69 :68-76
[20]  
HandySCAN3D, 2022, Proven and Trusted Professional 3D Scanners at an Accessible Price