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全正面碰撞下三明治复合结构电动客车车身的耐撞性分析与设计

Crashworthiness analysis and design of a sandwich composite electric bus structure under full frontal impact.

作者信息

Jongpradist Pattaramon, Saingam Napassakorn, Tangthamsathit Ploypimol, Chanpaibool Panittha, Sirichantra Jariyavadee, Aimmanee Sontipee

机构信息

Mobility and Vehicle Technology Research Center, King Mongkut's University of Technology Thonburi, 126 Pracha Uthit Rd., Bang Mod, Thung Khru, Bangkok, 10140, Thailand.

Department of Mechanical Engineering, Faculty of Engineering, King Mongkut's University of Technology Thonburi, 126 Pracha Uthit Rd., Bang Mod, Thung Khru, Bangkok, 10140, Thailand.

出版信息

Heliyon. 2022 Dec 5;8(12):e11999. doi: 10.1016/j.heliyon.2022.e11999. eCollection 2022 Dec.

Abstract

The transition toward sustainable transportation includes adopting ecofriendly electric vehicles in public transport, which reduces greenhouse gas emissions and increases energy efficiency. One of the critical features in fuel economy improvement of electric vehicles lies in lightweight structural design. Nevertheless, the crashworthiness of the structures of the vehicles and the safety of passengers must be guaranteed in the attempt of mass reduction because the crash of large vehicles such as buses usually costs many lives. This paper, therefore, aims to present an in-depth analysis of the impact behavior of a lightweight monocoque sandwich composite microbus body under full-frontal crash conditions. The bus structure, made of a high-density polyurethane foam core and woven glass fabric-epoxy face sheets, was modeled and simulated via LS-DYNA dynamic analysis using strength-based Chang-Chang criteria to characterize the failure mechanism of the structure and investigate intrusion into the passenger survival space. Under front collision, the front panel, A-pillars, and front sidewalls of the original bus were found to be extensively damaged in the compressive fiber mode. Based on the 50 percentile male dummy anthropometric parameters, injury indices of 0-5 intervals were proposed to evaluate occupant injury risks. The maximum front and side intrusion into the specified safety space under a maximum impact speed of 50 km/h is 208 mm at the front panel and 221 mm at the sidewall, indicating high injury indices of 3.59 and 4.81, respectively. The effects of stiffeners reinforced in the front panel and foam core thicknesses in the sidewalls, floor, and bottom parts on crashworthiness improvement were thoroughly discussed. The improved bus design can significantly enhance the safety of the occupants with a minimal increase in structural weight of merely 35.6 kg. An effective vehicle safety design under full frontal collision is presented.

摘要

向可持续交通的转变包括在公共交通中采用环保型电动汽车,这有助于减少温室气体排放并提高能源效率。电动汽车燃油经济性提高的关键特征之一在于轻量化结构设计。然而,在减轻重量的过程中,必须确保车辆结构的防撞性和乘客的安全,因为公交车等大型车辆发生碰撞通常会导致许多人丧生。因此,本文旨在深入分析轻型单壳夹层复合微型巴士车身在全正面碰撞条件下的碰撞行为。该巴士结构由高密度聚氨酯泡沫芯和玻璃纤维织物 - 环氧树脂面板制成,通过LS - DYNA动态分析进行建模和模拟,使用基于强度的Chang - Chang准则来表征结构的失效机制并研究对乘客生存空间的侵入情况。在前碰撞中,发现原始巴士的前面板、A柱和前侧壁在压缩纤维模式下受到广泛损坏。基于第50百分位男性假人的人体测量参数,提出了0 - 5区间的伤害指数来评估乘员受伤风险。在最大碰撞速度为50 km/h时,进入指定安全空间的最大前部和侧面侵入量在前面板处为208 mm,在侧壁处为221 mm,表明伤害指数分别高达3.59和4.81。深入讨论了在前面板中加强筋以及在侧壁、地板和底部部件中泡沫芯厚度对提高防撞性的影响。改进后的巴士设计能够在结构重量仅增加35.6 kg的情况下显著提高乘员的安全性。本文提出了一种在全正面碰撞下有效的车辆安全设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/468c/9732307/e9af357eb03b/gr001.jpg

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