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Bumper and Grille Airbags Concept for Enhanced Vehicle Compatibility in Side Impact: Phase II

机译:保险杠和格栅安全气囊概念增强了侧面碰撞中的车辆兼容性:第二阶段

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Objectives: Fundamental physics and numerous field studies have shown a higher injury and fatality risk for occupants in smaller and lighter vehicles when struck by heavier, taller and higher vehicles. The consensus is that the significant parameters influencing compatibility in front-to-side crashes are geometric interaction, vehicle stiffness, and vehicle mass. The objective of this research is to develop a concept of deployable bumper and grille airbags for improved vehicle compatibility in side impact. The external airbags, deployed upon signals from sensors, may help mitigate the effect of weight, geometry and stiffness differences and reduce side intrusions. However, a highly reliable pre-crash sensing system is required to enable the reliable deployment, which is currently not technologically feasible. Methods: Analytical and numerical methods and hardware testing were used to help develop the deployable external airbags concept. Various Finite Element (FE) models at different stages were developed and an extensive number of iterations were conducted to help optimize airbag and inflator parameters to achieve desired targets. The concept development was executed and validated in two phases. This paper covers Phase II ONLY, which includes: (1) Re-design of the airbag geometry, pressure, and deployment strategies; (2) Further validation using a Via sled test of a 48 kph perpendicular side impact of an SUV-type impactor against a stationary car with US-SID-H3 crash dummy in the struck side; (3) Design of the reaction surface necessary for the bumper airbag functionality. The concept was demonstrated through live deployment of external airbags with a reaction surface in a full-scale perpendicular side impact of an SUV against a stationary passenger car at 48 kph. This research investigated only the concept of the inflatable devices since pre-crash sensing development was beyond the scope of this research. Results: The concept design parameters of the bumper and grille airbags are presented in this paper. Full vehicle-to-vehicle crash test results, Via sled test, and simulation results are also presented. Head peak acceleration, Head Injury Criteria (HIC), Thoracic Trauma Index (TTI), and Pelvic acceleration for the SID-H3 dummy and structural intrusion profiles were used as performance metrics for the bumper and grille airbags. Results obtained from the Via sled tests and the full vehicle-to-vehicle tests with bumper and grille airbags were compared to those of baseline test results with no external airbags.
机译:目标:基础物理学和大量现场研究表明,较小,较轻的车辆被重,高,高的车辆撞击时,乘员受伤和死亡的风险较高。普遍认为,影响前后碰撞的相容性的重要参数是几何相互作用,车辆刚度和车辆质量。这项研究的目的是开发一种可展开的保险杠和格栅安全气囊的概念,以改善侧面碰撞时的车辆兼容性。根据来自传感器的信号展开的外部安全气囊可以帮助减轻重量,几何形状和刚度差异的影响,并减少侧面侵入。但是,需要高度可靠的碰撞前感测系统来实现可靠的部署,这在技术上目前尚不可行。方法:使用分析和数值方法以及硬件测试来帮助开发可展开的外部安全气囊概念。在不同阶段开发了各种有限元(FE)模型,并进行了广泛的迭代,以帮助优化安全气囊和充气机参数以实现所需目标。概念开发的执行和验证分两个阶段进行。本文仅涵盖第二阶段,其中包括:(1)重新设计安全气囊的几何形状,压力和展开策略; (2)使用Via雪橇测试对SUV型撞击器以48 kph垂直侧向撞击在撞击侧的US-SID-H3碰撞假人对固定汽车进行撞击时进行进一步验证; (3)设计保险杠安全气囊功能所需的反作用面。 SUV通过以48 km / h的速度对SUV进行全比例垂直侧面碰撞,并通过反应表面的外部安全气囊进行现场演示,证明了这一概念。由于碰撞前感测的发展超出了本研究的范围,因此本研究仅研究了充气设备的概念。结果:本文介绍了保险杠和格栅安全气囊的概念设计参数。还提供了完整的车辆至汽车碰撞测试结果,Via雪橇测试以及仿真结果。 SID-H3假人和结构侵入曲线的头部峰值加速度,头部伤害标准(HIC),胸外伤指数(TTI)和骨盆加速度被用作保险杠和格栅安全气囊的性能指标。将通过Via雪橇测试以及使用保险杠和格栅安全气囊的完整车辆对车辆测试的结果与不使用外部安全气囊的基线测试结果进行了比较。

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