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首页> 外文期刊>SAE International Journal of Materials and Manufacturing >Front Under Run Protection Device Strength Test Certification Through FE Simulations
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Front Under Run Protection Device Strength Test Certification Through FE Simulations

机译:通过有限元仿真进行前部欠载保护装置强度测试认证

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摘要

Passive safety regulations specify minimum safety performance requirements of vehicle in terms of protecting its occupants and other road users in accident scenarios. Currently for majority cases, the compliance of vehicle design to passive safety regulations is assessed through physical testing. With increased number of products and more comprehensive passive safety requirements, the complexity of certification is getting challenged due to high cost involved in prototype parts and the market pressures for early product introduction through reduced product development timelines. One of the ways for addressing this challenge is to promote CAE based certification of vehicle designs for regulatory compliance. Since accuracy of CAE predictions have improved over a period of time, such an approach is accepted for few regulations like ECE-R 66/01, AIS069 etc which involves only loadings of the structures. In this approach use of numerical tools like Finite element simulation technique is allowed for certification purpose. This paper describes the experience in use of CAE tools for certification of commercial vehicles for FUPD (front under run protection device) strength requirements as per AIS069 regulatory requirements. Paper explains about the CAE & test correlation process, CAE methodology adopted and the approach used for certifying FUPD models through FE simulations. Using this approach almost fifteen different commercial vehicles were certified for FUPD strength requirements saving substantial amount of cost and time involved in physical prototype tests.
机译:被动安全法规规定了车辆在事故场景中保护乘员和其他道路使用者的最低安全性能要求。当前,在大多数情况下,通过物理测试来评估车辆设计是否符合被动安全法规。随着产品数量的增加和更全面的被动安全要求,由于原型零件涉及的高成本以及通过缩短产品开发时间而提早推出产​​品的市场压力,认证的复杂性正面临挑战。解决这一挑战的方法之一是促进基于CAE的车辆设计认证,以符合法规要求。由于CAE预测的准确性在一段时间内有所提高,因此这种方法已被少数法规(如ECE-R 66/01,AIS069等)接受,这些法规仅涉及结构的荷载。在这种方法中,允许使用有限元模拟技术之类的数字工具进行认证。本文介绍了根据AIS069法规要求使用CAE工具对FUPD(前部行驶保护装置)强度要求进行商用车辆认证的经验。论文解释了有关CAE和测试关联过程,采用的CAE方法以及通过有限元仿真验证FUPD模型的方法。使用这种方法,近15种不同的商用车通过了FUPD强度要求认证,从而节省了物理原型测试所需的大量成本和时间。

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