Characterization and Comparative Analysis of Mechanical Parameters of FDM- and SLA-Printed ABS Materials

被引:5
|
作者
Hozdic, Elvis [1 ]
机构
[1] Univ Novo Mesto, Fac Mech Engn, Na Loko 2, Novo Mesto 8000, Slovenia
来源
APPLIED SCIENCES-BASEL | 2024年 / 14卷 / 02期
关键词
additive manufacturing; FDM; SLA; ABS filament; ABS resin; mechanical parameters; PROPERTY; TECHNOLOGY; TENSILE;
D O I
10.3390/app14020649
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
This research paper provides an in-depth examination of the mechanical characteristics of 3D-printed specimens made from acrylonitrile butadiene styrene (ABS) and resins akin to ABS, with a focus on two widely used 3D printing methodologies: fused deposition modeling (FDM) and stereolithography (SLA). The study investigates how variations in 3D printing technology and infill density impact mechanical parameters such as Young's modulus, tensile strength, strain, nominal strain at break, maximum displacement, and maximum force at break. Tensile testing was conducted to assess these critical parameters. The results indicate distinct differences in mechanical performance between FDM- and SLA-printed specimens, with SLA consistently showing superior mechanical parameters, especially in terms of tensile strength, displacement, and Young's modulus. SLA-printed specimens at 30% infill density exhibited a 38.11% increase in average tensile strength compared to FDM counterparts and at 100% infill density, a 39.57% increase was observed. The average maximum displacement for SLA specimens at 30% infill density showed a 14.96% increase and at 100% infill density, a 30.32% increase was observed compared to FDM specimens. Additionally, the average Young's modulus for SLA specimens at 30% infill density increased by 17.89% and at 100% infill density, a 13.48% increase was observed, highlighting the superior mechanical properties of SLA-printed ABS-like resin materials. In tensile testing, FDM-printed specimens with 30% infill density showed an average strain of 2.16% and at 100% infill density, a slightly higher deformation of 3.1% was recorded. Conversely, SLA-printed specimens at 30% infill density exhibited a strain of 2.24% and at 100% infill density, a higher strain value of 4.15% was observed. The comparison suggests that increasing the infill density in FDM does not significantly improve deformation resistance, while in SLA, it leads to a substantial increase in deformation, raising questions about the practicality of higher infill densities. The testing data underscore the impact of infill density on the average nominal strain at break, revealing improved performance in FDM and significant strain endurance in SLA. The study concludes that SLA technology offers clear advantages, making it a promising option for producing ABS and ABS-like resin materials with enhanced mechanical properties.
引用
收藏
页数:22
相关论文
共 50 条
  • [41] Comparison of mechanical properties of components 3D printed from different brand ABS filament on different FDM printers
    Khabia, Sunil
    Jain, K. K.
    MATERIALS TODAY-PROCEEDINGS, 2020, 26 : 2907 - 2914
  • [42] 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
    ADVANCEMENT OF OPTICAL METHODS IN EXPERIMENTAL MECHANICS, VOL 3, 2017, : 89 - 105
  • [43] Effect of process parameters on mechanical properties of 3d printed samples using FDM process
    Giri, Jayant
    Chiwande, Anagha
    Gupta, Yash
    Mahatme, Chetan
    Giri, Pallavi
    MATERIALS TODAY-PROCEEDINGS, 2021, 47 : 5856 - 5861
  • [44] Effect of process parameters on mechanical and tribological characteristics of FDM printed glass fiber reinforced PLA composites
    Begum, S. Rashia
    Vasumathi, M.
    Karupaiah, Vigneshwaran
    Narayanan, Venkateshwaran
    RAPID PROTOTYPING JOURNAL, 2024, 30 (09) : 1859 - 1875
  • [45] The influence of printing parameters on selected mechanical properties of FDM/FFF 3D-printed parts
    Cwikla, G.
    Grabowik, C.
    Kalinowski, K.
    Paprocka, I.
    Ociepka, P.
    MODTECH INTERNATIONAL CONFERENCE - MODERN TECHNOLOGIES IN INDUSTRIAL ENGINEERING V, 2017, 227
  • [46] Experimental characterization of the mechanical properties of 3D-printed ABS and polycarbonate parts
    Cantrell, Jason T.
    Rohde, Sean
    Damiani, David
    Gurnani, Rishi
    DiSandro, Luke
    Anton, Josh
    Young, Andie
    Jerez, Alex
    Steinbach, Douglas
    Kroese, Calvin
    Ifju, Peter G.
    RAPID PROTOTYPING JOURNAL, 2017, 23 (04) : 811 - 824
  • [47] A study on the influence of process parameters on the Mechanical Properties of 3D printed ABS composite
    Christiyan, K. G. Jaya
    Chandrasekhar, U.
    Venkateswarlu, K.
    2ND INTERNATIONAL MANUFACTURING ENGINEERING CONFERENCE AND 3RD ASIA-PACIFIC CONFERENCE ON MANUFACTURING SYSTEMS (IMEC-APCOMS 2015), 2016, 114
  • [48] Characterization and control of primary natural frequency of FDM ABS prints through printer parameters and STL file manipulation
    Funke, Lawrence W.
    Lamison, Connor
    Hylton, J. Blake
    Opara, Matthew N.
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2023, 129 (5-6): : 2139 - 2151
  • [49] Characterization and control of primary natural frequency of FDM ABS prints through printer parameters and STL file manipulation
    Lawrence W. Funke
    Connor Lamison
    J. Blake Hylton
    Matthew N. Opara
    The International Journal of Advanced Manufacturing Technology, 2023, 129 (5-6) : 2139 - 2151
  • [50] MATERIALS TESTING OF 3D PRINTED ABS AND PLA SAMPLES TO GUIDE MECHANICAL DESIGN
    Farbman, Daniel
    McCoy, Chris
    PROCEEDINGS OF THE ASME 11TH INTERNATIONAL MANUFACTURING SCIENCE AND ENGINEERING CONFERENCE, 2016, VOL 2, 2016,