Friction Behavior of 3D-printed Polymeric Materials Used in Sliding Systems

被引:9
|
作者
Chisiu, Georgiana [1 ]
Stoica, Nicolae-Alexandru [1 ]
Stoica, Alina-Maria [1 ]
机构
[1] Univ Politehn Bucuresti, Fac Mech Engn & Mechatron, Dept Machine Elements & Tribol, 313 Splaiul Independentei, Bucharest 060042, Romania
关键词
3D-printed polymer; friction behavior; PLA; ABS; printing orientation; MECHANICAL-PROPERTIES; WEAR; PLA;
D O I
10.37358/MP.21.1.5457
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Recently, 3D-printed polymeric materials have been successfully replacing the usual ones especially used in sliding systems like couplings. Among the polymeric materials, Acrylonitrile Butadiene Styrene (ABS) and Poly Lactic Acid (PLA) can be the competitive materials in such application after 3D-printing. In this study, 3D printing was used to produce samples from ABS and PLA via fused deposition modelling (FDM) technology. Then friction behavior of 3D-printed samples was investigated depending on printing orientation of the samples. Ultra High Molecular Polyethylene Weight (UHMWPE), as a well-known industrial polymer, was also used for comparing the friction behavior of 3D-printed ABS and PLA polymers. Friction tests were conducted using a pin-on-plate type tribometer according to ASTM G133 under different applied loads and sliding speeds at room temperature. It was found that printing orientation of all ABS and PLA samples has a considerable effect on their friction behavior. Transverse direction (T.D) of the 3D-printed samples shows higher coefficient of friction (COF) values than the longitudinal direction under all applied loads and sliding speeds. On the other hand, COF values obtained in both 3D-printed samples increase as the load and speed increase regardless of the printing direction. When both 3D-printed materials are compared, PLA samples exhibit lower COF values than ABS samples in both printing directions and under all loads and speeds. However, the UHMWPE sample produced with traditional method shows much lower COF values and stable change in friction behavior under all conditions compared to 3D-printed PLA and ABS samples.
引用
收藏
页码:176 / 185
页数:10
相关论文
共 50 条
  • [31] Corrosion of 3D-Printed Orthopaedic Implant Materials
    Mah, Dominic
    Pelletier, Matthew Henry
    Lovric, Vedran
    Walsh, William Robert
    ANNALS OF BIOMEDICAL ENGINEERING, 2019, 47 (01) : 162 - 173
  • [32] Dynamic fatigue of 3D-printed splint materials
    Wulff, Johann
    Schmid, Alois
    Huber, Christina
    Rosentritt, Martin
    JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2021, 124
  • [33] Bacterial Biofilm Growth on 3D-Printed Materials
    Hall, Donald C. Jr Jr
    Palmer, Phillip
    Ji, Hai-Feng
    Ehrlich, Garth D.
    Krol, Jaroslaw E.
    FRONTIERS IN MICROBIOLOGY, 2021, 12
  • [34] Bending behavior of sandwich composite structures with tunable 3D-printed core materials
    Li, Tiantian
    Wang, Lifeng
    COMPOSITE STRUCTURES, 2017, 175 : 46 - 57
  • [35] Functional 3D-Printed Polymeric Materials with Metallic Reinforcement for Use in Cut-Resistant Gloves
    Zylka, Emilia
    Irzmanska, Emilia
    Saramak, Jakub
    Jurczyk-Kowalska, Magdalena
    MATERIALS, 2024, 17 (01)
  • [36] Dynamic Mechanical and Biological Characterization of New 3D-Printed Polymeric Dental Materials: A Preliminary Study
    Valenti, Chiara
    Pagano, Stefano
    Xhimitiku, Iva
    Kutrolli, Mikaela
    Masciotti, Francesca
    Zara, Tommaso
    Truffarelli, Tiberio
    Tribbiani, Giulio
    Nanussi, Alessandro
    Marinucci, Lorella
    PROSTHESIS, 2024, 6 (02): : 263 - 273
  • [37] Thermoforming behavior of 3D-printed PLA sheets
    Eksi, Olcay
    Karabeyoglu, Sencer Sureyya
    Cinar, Kenan
    Muhurcu, Aydin
    MATERIALS TESTING, 2020, 62 (06) : 617 - 625
  • [38] Tribological behavior of polymeric 3D-printed surfaces with deterministic patterns inspired in snake skin morphology
    Ballesteros, Luis Miguel
    Zuluaga, Efrain
    Cuervo, Paula
    Rudas, J. Sebastian
    Toro, Alejandro
    SURFACE TOPOGRAPHY-METROLOGY AND PROPERTIES, 2021, 9 (01):
  • [39] 3D-printed biomimetic bone implant polymeric composite scaffolds
    Oladapo, Bankole
    Zahedi, Abolfazl
    Ismail, Sikiru
    Fernando, Wattala
    Ikumapayi, Omolayo
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2023, 126 (9-10): : 4259 - 4267
  • [40] Femtosecond optical parametric oscillator with 3D-printed polymeric parts
    Pirzio, Federico
    Negri, Jacopo Rubens
    Agnesi, Antonio
    OPTICS AND LASER TECHNOLOGY, 2022, 147