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Investigation of an Adaptable Crash Energy Management System to Enhance Vehicle Crashworthiness

机译:旨在提高车辆耐撞性的自适应碰撞能量管理系统的研究

摘要

The crashworthiness enhancement of vehicle structures is a very challenging task during the vehicle design process due to complicated nature of vehicle design structures that need to comply with different conflicting design task requirements. Although different safety agencies have issued and modified standardized crash tests to guarantee structural integrity and occupant survivability, there is continued rise of fatalities in vehicle crashes especially the passenger cars. This dissertation research explores the applicability of a crash energy management system of providing variable energy absorbing properties as a function of the impact speed to achieve enhanced occupant safety. The study employs an optimal crash pulse to seek designs of effective energy absorption mechanisms for reducing the occupant impact severity. The study is conducted in four different phases, where the performance potentials of different concepts in add-on energy absorbing/dissipating elements are investigated in the initial phase using a simple lumped-parameter model. For this purpose, a number of performance measures related to crash safety are defined, particular those directly related to occupant deceleration and compartment intrusion. Moreover, the effects of the linear, quadratic and cubic damping properties of the add-on elements are investigated in view of structure deformation and occupant`s Head Injury Criteria (HIC). ud In the second phase of this study, optimal design parameters of the proposed add-on energy absorber concept are identified through solutions of single- and weighted multi-objective minimization functions using different methods, namely sequential quadratic programming (SQP), genetic algorithms (GA) and hybrid genetic algorithms. The solutions obtained suggest that conducting multiobjective optimization of conflicting functions via genetic algorithms could yield an improved design compromise over a wider range of impact speeds. The effectiveness of the optimal add-on energy absorber configurations are subsequently investigated through its integration to a full-scale vehicle model in the third phase. The elasto-plastic stress-strain and force-deflection properties of different substructures are incorporated in the full-scale vehicle model integrating the absorber concept. A scaling method is further proposed to adapt the vehicle model to sizes of current automobile models. The influences of different design parameters on the crash energy management safety performance measures are studied through a comprehensive sensitivity analysis. udIn the final phase, the proposed add-on absorber concept is implemented in a high fidelity nonlinear finite element (FE) model of a small passenger car in the LS-DYNA platform. The simulation results of the model with add-on system, obtained at different impact speeds, are compared with those of the baseline model to illustrate the crashworthiness enhancement and energy management properties of the proposed concept. The results show that vehicle crashworthiness can be greatly enhanced using the proposed add-on crash energy management system, which can be implemented in conjunction with the crush elements.ud
机译:由于需要遵循不同的冲突设计任务要求的车辆设计结构的复杂性质,增强车辆结构的耐撞性是一项非常具有挑战性的任务。尽管不同的安全机构已经发布并修改了标准化的碰撞测试以保证结构的完整性和乘员的生存能力,但车辆碰撞,尤其是乘用车碰撞中的死亡人数持续上升。本论文的研究探索了碰撞能量管理系统的适用性,该系统提供可变的能量吸收特性作为冲击速度的函数,以提高乘员的安全性。该研究采用最佳碰撞脉冲来寻求有效的能量吸收机制的设计,以降低乘员撞击的严重性。该研究在四个不同阶段进行,其中在初始阶段使用简单的集总参数模型研究了附加能量吸收/耗散元件中不同概念的性能潜力。为此,定义了许多与碰撞安全有关的性能指标,尤其是与乘员减速和车厢侵入直接相关的性能指标。此外,鉴于结构变形和乘员头部受伤准则(HIC),研究了附加元件的线性,二次方和三次方阻尼特性的影响。 ud在本研究的第二阶段,通过使用不同方法(即顺序二次规划(SQP),遗传算法)的单目标和加权多目标最小化函数的解决方案,确定了所提出的附加能量吸收器概念的最佳设计参数。 (GA)和混合遗传算法。获得的解决方案表明,通过遗传算法对冲突功能进行多目标优化可以在更大的撞击速度范围内产生改进的设计折衷。随后,通过在第三阶段将其集成到大型车辆模型中,研究了最佳附加式能量吸收器配置的有效性。不同子结构的弹塑性应力应变和力挠度特性被纳入整合了减震器概念的全尺寸汽车模型中。还提出了缩放方法,以使车辆模型适应当前汽车模型的尺寸。通过综合敏感性分析,研究了不同设计参数对碰撞能量管理安全性能指标的影响。 ud在最后阶段,在LS-DYNA平台上的小型乘用车的高保真非线性有限元(FE)模型中实现了所建议的附加吸收器概念。将在不同冲击速度下获得的带有附加系统的模型的仿真结果与基线模型的仿真结果进行比较,以说明所提出概念的耐撞性增强和能量管理特性。结果表明,使用建议的附加碰撞能量管理系统可以大大提高车辆的耐撞性,该系统可以与挤压元件结合使用。 ud

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