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Feasibility of optimising bicycle helmet design safety through the use of additive manufactured TPE cellular structures

机译:通过使用增材制造的TPE蜂窝结构来优化自行车头盔设计安全性的可行性

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摘要

Bicycle helmets are designed to attenuate forces and accelerations experienced by the head during cycling accidents. An essential element of bicycle helmet design is, therefore, the appropriate manufacturing of energy-dissipating components. The focus of this study was to evaluate the feasibility of using thermoplastic elastomer (TPE) cellular structures (DuraformA (R) Flex), manufactured via a laser sintering (LS) process, as the energy-dissipating inner liner of the bicycle helmet. This study is presented in two sections; the optimisation of the LS process capabilities for the manufacture of cellular structures and an evaluation of the effects of cellular structure density on helmet impact kinematics. Through the fabrication and testing of tensile and compressive specimens, each process parameter (laser power, scanning exposure, build temperature and part orientation) was optimised to maximise compressive strength. The energy-dissipating characteristics of helmet cellular structures, made from this optimised material, were evaluated during simulated helmeted headform impact tests. Reduced accelerations and increased pulse durations were reported for decreased structural densities, demonstrating improved energy-dissipating characteristics for this novel technique. This study demonstrates that cellular structure-based inner liners, manufactured via additive manufacturing processes, have exciting potential towards improving bicycle helmet safety.
机译:自行车头盔的设计旨在减轻骑行事故中头部受到的力和加速度。因此,自行车头盔设计的基本要素是适当制造耗能部件。这项研究的重点是评估使用通过激光烧结(LS)工艺制造的热塑性弹性体(TPE)蜂窝结构(DuraformA(R)Flex)作为自行车头盔的消能内衬的可行性。本研究分为两个部分:优化了用于制造蜂窝结构的LS工艺能力,并评估了蜂窝结构密度对头盔碰撞运动学的影响。通过拉伸和压缩样品的制造和测试,优化了每个工艺参数(激光功率,扫描曝光,成型温度和零件方向)以最大化压缩强度。在优化的头盔式头盔冲击试验中,评估了由这种优化材料制成的头盔式蜂窝结构的耗能特性。据报道,减小的加速度和增加的脉冲持续时间可降低结构密度,这表明该新技术具有改善的耗能特性。这项研究表明,通过增材制造工艺制造的基于蜂窝结构的内衬在提高自行车头盔安全性方面具有令人兴奋的潜力。

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