Experimental characterization of the mechanical properties of 3D printed TPU auxetic cellular materials under cyclic compressive loadings

被引:8
|
作者
Chapa, Amador [1 ]
Cuan-Urquizo, Enrique [2 ]
Urbina-Coronado, P. D. [1 ]
Roman-Flores, Armando [1 ]
机构
[1] Tecnol Monterrey, Escuela Ingn & Ciencias, Monterrey, Mexico
[2] Tecnol Monterrey, Inst Adv Mat Sustainable Mfg, Monterrey, Mexico
关键词
Additive manufacturing; Cellular materials; Mechanical metamaterials; Compression test; Compression loading; Fused deposition modeling; ENERGY-ABSORPTION; LATTICE STRUCTURES; HONEYCOMBS; BEHAVIOR; DESIGN;
D O I
10.1108/RPJ-07-2022-0226
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
PurposeFused filament fabrication (FFF) is a popular technique in rapid prototyping capable of building complex structures with high porosity such as cellular solids. The study of cellular solids is relevant by virtue of their enormous potential to exhibit non-traditional deformation mechanisms. The purpose of this study is to exploit the benefits of the FFF technology to fabricate re-entrant honeycomb structures using thermoplastic polyurethane (TPU) to characterize their mechanical response when subjected to cyclic compressive loadings. Design/methodology/approachSpecimens with different volume fraction were designed, three-dimensionally printed and tested in uniaxial cyclic compressions up until densification strain. The deformation mechanism and apparent elastic moduli variation throughout five loading/unloading cycles in two different loading orientations were studied experimentally. FindingsExperimental results demonstrated a nonlinear relationship between volume fraction and apparent elastic modulus. The amount of energy absorbed per loading cycle was computed, exhibiting reductions in energy absorbed of 12%-19% in original orientation and 15%-24% when the unit cells were rotated 90 degrees. A softening phenomenon in the specimens was identified after the first compression when compared to second compression, with reduction in apparent elastic modulus of 23.87% and 28.70% for selected samples V-3 and H-3, respectively. Global buckling in half of the samples was observed, so further work must include redesign in the size of the samples. OriginalityThe results of this study served to understand the mechanical response of TPU re-entrant honeycombs and their energy absorption ability when compressed in two orientations. This study helps to determine the feasibility of using FFF as manufacturing method and TPU to construct resilient structures that can be integrated into engineering applications as crash energy absorbers. Based on the results, authors suggest structure's design optimization to reduce weight, higher number of loading cycles (n > 100) and crushing velocities (v > 1 m/s) in compression testing to study the dynamic mechanical response of the re-entrant honeycomb structures and their ability to withstand multiple compressions.
引用
收藏
页码:1800 / 1813
页数:14
相关论文
共 50 条
  • [1] Compressive properties of 3D printed auxetic structures: experimental and numerical studies
    Alomarah, Amer
    Masood, Syed H.
    Sbarski, Igor
    Faisal, Batool
    Gao, Zhanyuan
    Ruan, Dong
    [J]. VIRTUAL AND PHYSICAL PROTOTYPING, 2020, 15 (01) : 1 - 21
  • [2] 3D Printed Cellular Structure Materials under Impact and Compressive Loading
    Ardebili, Mahmoud K.
    Ikikardaslar, Kerim Tuna
    Ehrnfeld, Colt
    Delale, Feridun
    [J]. PROCEEDINGS OF THE ASME 2020 INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, IMECE2020, VOL 12, 2020,
  • [3] Characterization of 3D printed ABS specimens under static and cyclic torsional loadings
    Ferreira, Carla M.
    Vicente, Carlos M. S.
    Sardinha, Manuel
    Leite, Marco
    Reis, Luis
    [J]. SECOND EUROPEAN CONFERENCE ON THE STRUCTURAL INTEGRITY OF ADDITIVELY MANUFACTURED MATERIALS, 2021, 34 : 205 - 210
  • [4] Experimental characterization of 3D printed cellular structures
    Heiml, Eva
    Hoessinger-Kalteis, Anna
    Major, Zoltan
    [J]. MATERIALS TODAY-PROCEEDINGS, 2022, 62 : 2528 - 2532
  • [5] Performance of 3D printed topologically optimized novel auxetic structures under compressive loading: experimental and FE analyses
    Gohar, Sohail
    Hussain, Ghulam
    Ilyas, Muhammad
    Ali, Aaqib
    [J]. JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2021, 15 : 394 - 408
  • [6] Experimental Characterization of the Mechanical Properties of 3D Printed ABS and Polycarbonate Parts
    Cantrell, Jason
    Rohde, Sean
    Damiani, David
    Gurnani, Rishi
    DiSandro, Luke
    Anton, Josh
    Young, Andie
    Jerez, Alex
    Steinbach, Douglas
    Kroese, Calvin
    Ifju, Peter
    [J]. ADVANCEMENT OF OPTICAL METHODS IN EXPERIMENTAL MECHANICS, VOL 3, 2017, : 89 - 105
  • [7] Mechanical properties of 3D auxetic closed-cell cellular structures
    Yu, Lin
    Tan, Huifeng
    Zhou, Zhengong
    [J]. INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2020, 177
  • [8] Tuning mechanical properties of 3D printed composites with PLA:TPU programmable filaments
    Darnal, Aryabhat
    Shahid, Zaryab
    Deshpande, Himani
    Kim, Jeeeun
    Muliana, Anastasia
    [J]. COMPOSITE STRUCTURES, 2023, 318
  • [9] Mechanical properties of 3D re-entrant auxetic cellular structures
    Wang, Xin-Tao
    Wang, Bing
    Li, Xiao-Wen
    Ma, Li
    [J]. INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2017, 131 : 396 - 407
  • [10] 3D printed auxetic forms on knitted fabrics for adjustable permeability and mechanical properties
    Grimmelsmann, N.
    Meissner, H.
    Ehrmann, A.
    [J]. 2016 GLOBAL CONFERENCE ON POLYMER AND COMPOSITE MATERIALS (PCM 2016), 2016, 137