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SIMULATION METHODOLOGY FOR OCCUPANT SAFETY ASSESSMENT OF INDIAN RAILWAY PASSENGER COACH

机译:印度铁路乘客教练乘员安全评估的模拟方法

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This work intends to lay the groundwork for Computer Aided Engineering (CAE)-based occupant safety of a typical tier-Ill Indian Railway (IR) passenger coach in a collision accident. Our previous work presented in International Crashworthiness Conference 2010 under the title "Simulation of Crash Behaviour of a Common Indian Railway Passenger Coach" provided crashworthiness assessment of a typical tier-Ⅲ passenger coach structure for representative head-on collision scenarios namely, against an identical passenger coach and against a stationary locomotive. These scenarios were envisioned to be part of a bigger accident scenario e.g - head-on collision between two trains moving towards each other. Analysis of involved chain of events for entire rolling stock and resulting internal collisions between individual passenger cars was out of scope of this work and necessary inputs were obtained from available literature on the same. This work used a full scale Finite Element (FE) simulation model and commercial explicit solver LS-Dyna. FE model was validated using International Railway Union (UIC) code OR566 specified proof loads for design. Simulation methodology used for dynamic impact was validated by component level crushing experiments using a drop tower facility. Material modelling incorporated strain rate effect on yield strength which is essential for obtaining accurate structural deformations under dynamic impact loading. Contacts were modelled using the penalty method option provided by the solver. This model was simulated for collisions at 30, 40 and 56 km/h against a stationary rigid barrier. Collision speeds were chosen to simulate impact energies involved in collision scenarios as mentioned above. The structure was found to exhibit global bending deformation and jackknifing with pivot position at the door section. In this paper, we present an extension of this work - coupled occupant safety simulation and injury assessment. It was accomplished by recording head, neck, chest and knee responses of a Hybrid-Ill 50th percentile male Anthropomorphic Test Device (ATD) FE model, seated in passenger position on lower berth of the first cabin of a passenger car. Interiors were modelled to represent the actual structure. Dummy model was adapted to passenger cabin's excessive mobility conditions and responses were revalidated against Federal Motor Vehicle Safety Standards (FMVSS) limits. Injury interpretation was based on Abbreviated Injury Scale (AIS), automotive injury criteria and injury risk curves for Head Injury Criterion (HIC), thoracic spine acceleration, neck bending moment in flexion and extension and knee force. This study provides with estimates of injury and fatality based on computer simulation of accident scenarios. However, attempts of correlating to any available injury and fatality statistics were out of scope of this study.
机译:这项工作旨在为发生碰撞事故的典型的印度裔印度铁路(IR)旅客教练的基于计算机辅助工程(CAE)的乘员安全打下基础。我们之前在2010年国际耐撞性会议上发表的题为“模拟印度普通铁路客车的撞车行为”的工作为典型的正面碰撞场景(即针对同一名乘客)提供了典型的Ⅲ级客车结构的耐撞性评估。教练和静止的机车。这些场景被设想为更大事故场景的一部分,例如-两列相互靠近的火车之间发生正面碰撞。整个机车车辆所涉及的事件链分析以及单个乘用车之间发生的内部碰撞的分析不在这项工作的范围之内,而必要的输入数据则可从同一文献中获得。这项工作使用了全尺寸有限元(FE)仿真模型和商用显式求解器LS-Dyna。有限元模型已使用国际铁路联盟(UIC)编码OR566指定的设计验证载荷进行了验证。用于动态冲击的仿真方法已通过使用落塔装置进行的组件级破碎实验进行了验证。材料建模包含了应变速率对屈服强度的影响,这对于在动态冲击载荷下获得精确的结构变形至关重要。使用求解器提供的惩罚方法选项对联系人建模。模拟该模型,以30、40和56 km / h的速度与固定的刚性障碍物碰撞。如上所述,选择碰撞速度来模拟碰撞场景中涉及的冲击能量。发现该结构表现出整体弯曲变形和在门部分具有枢转位置的波折。在本文中,我们提出了这项工作的扩展-乘员安全模拟和伤害评估的结合。它是通过记录混合动力型第50个百分位数男性拟人化测试设备(ATD)FE模型的头部,颈部,胸部和膝盖的响应来完成的,该模型位于乘客的位置,位于乘用车的第一个客舱的下层。内部建模以代表实际结构。虚拟模型适用于客舱的过度机动性条件,并根据联邦机动车辆安全标准(FMVSS)限制重新验证了响应。损伤的解释是基于简短损伤量表(AIS),汽车损伤标准和颅脑损伤标准(HIC),胸椎加速,屈曲和伸展时颈部弯曲力矩以及膝力的伤害风险曲线。这项研究基于事故场景的计算机模拟提供了伤害和死亡的估计。但是,与任何可用的伤害和死亡统计数据相关的尝试不在本研究的范围之内。

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