Rational manufacture of fibre-reinforced plastics components

被引:0
|
作者
Michaeli, W.
Goedel, M.
Greif, H.
Jehrke, M.
机构
来源
Kunststoffe, German plastics | 1991年 / 81卷 / 10期
关键词
Plastics Products--Manufacture - Plastics; Reinforced--Manufacture;
D O I
暂无
中图分类号
TQ32 [合成树脂与塑料工业];
学科分类号
0805 ; 080502 ;
摘要
The principal uses for high-performance fiber-reinforced plastics are in space technology and production of sports equipment. Otherwise, these long-fiber-reinforced polymeric materials have not been widely accepted in general engineering, even though their performance has by now reached a level that technically justifies their use instead of metallic materials. One of the reasons for the low rate of adoption is that production of components from fiber-reinforced plastics is much more complex than manufacture from metals. Fiber-reinforced plastics (FRP) components with a closed surface (hollow bodies) have, so far, mostly been manufactured by a winding process. When the part geometry is complex, the process is pushed to its limits. If defined fiber orientation in the part is needed, braiding techniques offer better possibilities. This article describes the state of the art for both processes. The production methods presented for long-fiber plastics composites represent a mature technology, and thus contribute to the cost-effective production of FRP parts. For figures and literature see German text.
引用
收藏
页码:56 / 58
相关论文
共 50 条
  • [31] An overview of the technology of fibre-reinforced plastics for design purposes
    Edwards, KL
    MATERIALS & DESIGN, 1998, 19 (1-2): : 1 - 10
  • [32] Fracture toughness of fibre-reinforced plastics:: Effect of fibre type and temperature
    Ünal, A
    PROCESSING AND FABRICATION OF ADVANCED MATERIALS V, 1996, : 431 - 442
  • [33] Flash upcycling of glass fibre-reinforced plastics waste
    Zhedong Liu
    Yanan Chen
    Nature Sustainability, 2024, 7 : 381 - 382
  • [34] The exit defects in drilling carbon fibre-reinforced plastics
    Zhang, HJ
    Chen, WY
    Chen, DC
    Zhang, LC
    PROGRESS OF MACHINING TECHNOLOGY: WITH SOME TOPICS IN ADVANCED MANUFACTURING TECHNOLOGY, 2000, : 18 - 23
  • [35] Micro-EDM of carbon fibre-reinforced plastics
    Teicher, U.
    Mueller, S.
    Muenzner, J.
    Nestler, A.
    PROCEEDINGS OF THE SEVENTEENTH CIRP CONFERENCE ON ELECTRO PHYSICAL AND CHEMICAL MACHINING (ISEM), 2013, 6 : 320 - 325
  • [36] Strain corrosion of glass fibre-reinforced plastics pipes
    Farshad, M
    Necola, A
    POLYMER TESTING, 2004, 23 (05) : 517 - 521
  • [37] Osteointegration properties of carbon fibre-reinforced plastics.
    Schreiner, U
    Schwarz, M
    Scheller, G
    Schroeder-Boersch, H
    Jani, L
    ZEITSCHRIFT FUR ORTHOPADIE UND IHRE GRENZGEBIETE, 2000, 138 (06): : 540 - 543
  • [39] DYNAMIC STRESS-STRAIN CURVES FOR VARIOUS PLASTICS AND FIBRE-REINFORCED PLASTICS
    BILLINGTON, EW
    BRISSENDEN, C
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1971, 4 (02) : 272 - +
  • [40] Information fusion for holistic quality control of fibre-reinforced plastics
    Zaiss, Marielouise
    Haefner, Benjamin
    Lanza, Gisela
    6. VDI-FACHTAGUNG OPTISCHE MESSUNG VON FUNKTIONSFLACHEN 2018 / 2. VDI-FACHTAGUNG MULTISENSORIK IN DER FERTIGUNGSMESSTECHNIK 2018, 2018, 2326 : 173 - 184