NUMERICAL SIMULATION OF MULTI-MATERIAL GYROID STRUCTURES MADE BY FUSED DEPOSITION MODELING

被引:0
作者
Teawdeswan, Ladpha [1 ]
Tinsley, Jake [1 ]
Carpenter, Dana [1 ]
Dong, Guoying [1 ]
机构
[1] Univ Colorado Denver, Denver, CO 80204 USA
来源
PROCEEDINGS OF ASME 2024 19TH INTERNATIONAL MANUFACTURING SCIENCE AND ENGINEERING CONFERENCE, MSEC2024, VOL 1 | 2024年
关键词
Multi-material; Fused Deposition Modeling; Gyroid Structure; Finite Element Analysis; LATTICE STRUCTURES;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Multi-material fused deposition modeling (FDM) is an advanced 3D printing technology that allows for the simultaneous use of multiple materials, each with its unique properties, in a single print job. It opens up new possibilities for creating intricate and functional 3D-printed multi-material objects. Multi-material FDM is particularly valuable in industries where multi-material capabilities are required to achieve the desired characteristics and performance in printed parts. Recently, FDM has been successfully used to fabricate multi-material gyroid structures, weaving together polylactic acid (PLA) and thermoplastic polyurethane (TPU) materials. The gyroid structure is a complex, three-dimensional, periodic minimal surface structure characterized by its intricate, intertwined network of interlocking channels. The cellular characteristic of gyroid structures makes it a prime candidate for lightweight and energy absorption applications. It was found that multi-material gyroid structures made with PLA and TPU materials can achieve intermediate mechanical properties, including elastic modulus, yield stress, and energy absorption, compared to single-material gyroids made with PLA or TPU. The mechanical properties of multi-material gyroid structures can be controlled by adjusting the relative density and the material ratio between TPU and PLA. However, the numerical simulation of gyroid structures can be challenging due to the intricate, complex, and highly porous nature of these structures, especially multi-material ones that need to consider the interaction between dissimilar materials. In this study, a numerical simulation model is developed that can predict nonlinear mechanical properties of multi-material gyroid structures using finite element analysis (FEA). Firstly, the gyroid is divided into two material regions and tetrahedral meshes are generated in each region. Two regions are assigned with the material properties of PLA and TPU, respectively. Then, the interaction constraints are added to the overlapped surfaces in two regions. The overlapped surfaces in the PLA region are set to master surfaces and the overlapped surfaces in the TPU region are set to slave surfaces. Finally, the displacement load is added to the top surface of the gyroid and the reaction forces on the bottom surface are summed up to calculate the total force. The force-displacement curves obtained from the simulation model are compared to the experimental results. It was found that by adjusting the material properties of PLA and TPU, the simulation model can accurately predict the mechanical behavior of multi-material gyroid structures. Although the material properties of PLA and TPU can be obtained from the tensile or compressive test, the simulation result of the gyroid can deviate from the experimental results. Because the materials in the gyroid structure are printed like thin curved walls. The asbuilt material properties can be different from the bulk material properties. The interfacial bonding between TPU and PLA can also affect the overall mechanical properties of multi-material gyroid structures.
引用
收藏
页数:8
相关论文
共 36 条
  • [1] Additive manufacturing of multi-material structures
    Bandyopadhyay, Amit
    Heer, Bryan
    [J]. MATERIALS SCIENCE & ENGINEERING R-REPORTS, 2018, 129 : 1 - 16
  • [2] Towards design of mechanical part and electronic control of multi-material/multicolor fused deposition modeling 3D printing
    Boulaala, Mohammed
    Elmessaoudi, Driss
    Buj-Corral, Irene
    El Mesbahi, Jihad
    Ezbakhe, Omar
    Astito, Abdelali
    El Mrabet, Mhamed
    El Mesbahi, Abdelilah
    [J]. INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2020, 110 (1-2) : 45 - 55
  • [3] A review on recent advancements in fused deposition modeling
    Dhinakaran, V.
    Kumar, K. P. Manoj
    Ram, P. M. Bupathi
    Ravichandran, M.
    Vinayagamoorthy, M.
    [J]. MATERIALS TODAY-PROCEEDINGS, 2020, 27 : 752 - 756
  • [4] Optimizing process parameters of fused deposition modeling by Taguchi method for the fabrication of lattice structures
    Dong, Guoying
    Wijaya, Grace
    Tang, Yunlong
    Zhao, Yaoyao Fiona
    [J]. ADDITIVE MANUFACTURING, 2018, 19 : 62 - 72
  • [5] Topological design optimization of lattice structures to maximize shear stiffness
    Du, Yixian
    Li, Hanzhao
    Luo, Zhen
    Tian, Qihua
    [J]. ADVANCES IN ENGINEERING SOFTWARE, 2017, 112 : 211 - 221
  • [6] Material jetting for advanced applications: A state-of-the-art review, gaps and future directions
    Elkaseer, Ahmed
    Chen, Karin J.
    Janhsen, Jan C.
    Refle, Oliver
    Hagenmeyer, Veit
    Scholz, Steffen G.
    [J]. ADDITIVE MANUFACTURING, 2022, 60
  • [7] Printing and characterisation of Kagome lattice structures by fused deposition modelling
    Gautam, Rinoj
    Idapalapati, Sridhar
    Feih, Stefanie
    [J]. MATERIALS & DESIGN, 2018, 137 : 266 - 275
  • [8] Gibson I., 2021, Additive Manufacturing Technologies, V3rd, DOI 10.1007/978-3-030-56127-7
  • [9] The Effect of Functional Gradient Material Distribution and Patterning on Torsional Properties of Lattice Structures Manufactured Using MultiJet Fusion Technology
    Hailu, Yeabsra Mekdim
    Nazir, Aamer
    Lin, Shang-Chih
    Jeng, Jeng-Ywan
    [J]. MATERIALS, 2021, 14 (21)
  • [10] Recent advances in multi-material additive manufacturing: methods and applications
    Han, Daehoon
    Lee, Howon
    [J]. CURRENT OPINION IN CHEMICAL ENGINEERING, 2020, 28 : 158 - 166