FRICTION COEFFICIENTS AND SURFACE PROPERTIES FOR LASER SINTERED PARTS

被引:0
|
作者
Roppenecker, Daniel B. [1 ]
Grazek, Rebecca [1 ]
Coy, Johannes A. [1 ]
Irlinger, Franz [1 ]
Lueth, Tim C. [1 ]
机构
[1] Tech Univ Munich, MiMed Dept, D-80290 Munich, Bavaria, Germany
关键词
Rapid manufacturing; selective laser sintering; polyamide; tribology; friction coefficient;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Today different types of established rapid prototyping (RP) systems are available. In a Selective Laser Sintering (SLS)-process a CAD-model is designed and converted into a STL-file (Standard Tessellation Language). Next the body information is sliced into layers and transferred to the production system. By melting the powder-material using a laser beam, parts can be created layer by layer. Afterwards the parts are cleaned and several finishing treatments can be applied. The primarily aim in using RP was to reduce the product development time and to create design models. Nowadays whole assemblies and complex parts can be produced altogether in one manufacturing step with RP-systems. To ensure a save part construction due to calculation formulas and basic material constants, predictable design calculations are necessary. Concerning SLS-materials like polyamide PA 2200 components, only specific mechanical values like the tensile and flexural modulus have been identified. To fill this gap concerning tribological characteristics and to reach the next level of rapid manufacturing the key aspects of this article are the determination of the coefficient of friction la of SLS-parts made of polyamide PA 2200 concerning several influence factors. An anisotropic material behavior, a decrease of the coefficient of friction mu 0 with increasing contact pressure, larger contact areas and more intensive finishing treatment could be detected. Due to the knowledge of the identified material properties, now friction loaded components can be configured and used as functional machine parts.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Friction and wear properties of Fe-based sintered materials after laser quenching
    Li, Yue-Ying
    Liu, Yong-Bing
    Lu, Yun
    2003, Science Press (28):
  • [22] The effect of build orientation and surface modification on mechanical properties of high speed sintered parts
    Ellis, Adam
    Brown, Ryan
    Hopkinson, Neil
    SURFACE TOPOGRAPHY-METROLOGY AND PROPERTIES, 2015, 3 (03):
  • [23] Tribological investigations of parts sintered and coated by laser beam
    Sebestyén, T
    Buza, G
    Franek, F
    Takács, J
    Kálazi, Z
    Pauschitz, A
    Tóth, L
    MATERIALS SCIENCE, TESTING AND INFORMATICS II, 2005, 473-474 : 255 - 260
  • [24] Preprocess-Optimization for Polypropylene Laser Sintered Parts
    Reinhardt, Thomas
    Martha, Alexander
    Witt, Gerd
    Köhler, Peter
    Computer-Aided Design and Applications, 2014, 11 (01): : 49 - 61
  • [25] Technology of laser welding application for sintered steel parts
    Murai, Yasuo, 1600, Kobe Steel Ltd, Kobe, Japan (44):
  • [26] Nucleation and Impact Modification of Polypropylene Laser Sintered Parts
    Kleijnen, R. G.
    Schmid, M.
    Wegener, K.
    PROCEEDINGS OF THE REGIONAL CONFERENCE GRAZ 2015 - POLYMER PROCESSING SOCIETY PPS: CONFERENCE PAPERS, 2016, 1779
  • [27] Effect of bronze infiltration into laser sintered metallic parts
    Kumar, S.
    Kruth, J. -P.
    MATERIALS & DESIGN, 2007, 28 (02): : 400 - 407
  • [28] Effect of surface orientation on the tribological properties of laser sintered polyamide 12
    Bai, Jiaming
    Yuan, Shangqin
    Chow, Wanlu
    Chua, Chee Kai
    Zhou, Kun
    Wei, Jun
    POLYMER TESTING, 2015, 48 : 111 - 114
  • [29] SURFACE-PROPERTIES OF EXCIMER-LASER-IRRADIATED SINTERED ALUMINA
    LAUDE, LD
    KOLEV, K
    BRUNEL, M
    DELETER, P
    APPLIED SURFACE SCIENCE, 1995, 86 (1-4) : 368 - 381
  • [30] Comparison of long-term properties of laser sintered and injection molded polyamide 12 parts
    Woerz, Andreas
    Wudy, Katrin
    Drummer, Dietmar
    Wegner, Andreas
    Witt, Gerd
    JOURNAL OF POLYMER ENGINEERING, 2018, 38 (06) : 573 - 582