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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Lightweight design of automotive wheel made of long glass fiber reinforced thermoplastic
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Lightweight design of automotive wheel made of long glass fiber reinforced thermoplastic

机译:由长玻璃纤维增​​强热塑性塑料制成的汽车车轮的轻量化设计

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Aiming to the lightweight design of the long glass fiber reinforced thermoplastic (LGFT) composite wheel, this paper constructs the design process and the strength analysis method of long glass fiber reinforced thermoplastic wheel. First, the multi-objective topology optimization under multiple design spaces and multiple loading cases is conducted to obtain the robust structure, where the complicated ribs generated in design spaces are quite distinct from conventional steel or aluminum alloy wheel. The effects of weighting factors of two objectives and three loading cases on the topological results are discussed. And the long glass fiber reinforced thermoplastic wheel including the aluminum alloy insert is also designed in detail based on the concept structure and molding process. The novel metallic insert molded-in is another typical feature of long glass fiber reinforced thermoplastic wheel. Capturing the material anisotropy, the strength performances of long glass fiber reinforced thermoplastic wheel are simulated by using the finite element analysis method. The results show that there is a larger safety margin than the baseline wheel based on the maximum stress failure criterion. The long glass fiber reinforced thermoplastic wheel of 5.59kg saves 22.3% weight compared to the aluminum alloy baseline. For the increasing requirement of automotive components lightweight design, the method and consideration in this paper may also provide some ways for the design and strength analysis of other carrying structures made of thermoplastic composite.
机译:针对长玻璃纤维增​​强热塑性塑料轮(LGFT)的轻量化设计,构建了长玻璃纤维增​​强热塑性塑料轮的设计过程和强度分析方法。首先,在多个设计空间和多个载荷工况下进行多目标拓扑优化,以获得坚固的结构,其中在设计空间中生成的复杂肋与常规钢或铝合金轮毂截然不同。讨论了两个目标和三个加载情况的加权因子对拓扑结果的影响。此外,还根据概念结构和成型工艺对包括铝合金嵌件的长玻璃纤维增​​强热塑性车轮进行了详细设计。新型金属嵌件是长玻璃纤维增​​强热塑性车轮的另一个典型特征。捕捉材料的各向异性,采用有限元分析方法模拟了长玻璃纤维增​​强热塑性车轮的强度性能。结果表明,基于最大应力破坏准则,安全极限比基线车轮更大。与铝合金基准线相比,5.59kg的长玻璃纤维增​​强热塑性车轮可减轻22.3%的重量。对于汽车零部件轻量化设计的日益增长的需求,本文中的方法和考虑也可能为热塑性复合材料制成的其他承载结构的设计和强度分析提供一些方法。

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