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DEVELOPING STRATEGIES FOR MAINTAINING TANK CAR INTEGRITY DURING TRAIN ACCIDENTS

机译:在火车事故中制定维持坦克汽车诚信的策略

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Accidents that lead to rupture of tank cars carrying hazardous materials can cause serious public safety hazards and substantial economic losses. The desirability of improved tank car designs that are better equipped to keep the commodity contained during impacts is clear. This paper describes a framework for developing strategies to maintain the structural integrity of tank cars during accidents. The target of this effort is to design a tank car capable of surviving impacts without loss of lading at twice the impact speed of current equipment (or, equivalently, is capable of absorbing four times the impact energy). The methodology developed breaks down the process into three steps: 1. Define the impact scenarios of concern 2. Choose strategies to mitigate failure modes present in each scenario 3. Design and select technology and tactics to implement the mitigation strategies. The railroad accidents involving tank cars that occurred in Minot, ND, in 2002, and Graniteville, SC, in 2005, are examined to define the impact scenarios. Analysis of these accidents shows that two car-to-car impact scenarios are of greatest concern: head impact, where railroad equipment impacts the end of a tank car and possibly overrides it, and shell impact, where the tank car is impacted on its side, possibly off center. A conceptual design that can protect its lading at twice the impact speed of current equipment in the car-to-car impact scenarios is being developed. The conceptual design includes four functions to meet the impact requirements: blunts the impact loads, absorbs collision energy, strengthens the tank, and controls the load path to assure that loads are blunted and that energy is absorbed before the tank is loaded. Preliminary studies of available weight and space, strategies for increasing energy absorption, and strategies for strengthening the head and shell are ongoing; this paper describes the current results of these studies. Additional studies are also ongoing. The steps required to complete this effort are also described.
机译:导致携带危险物资的坦克汽车破裂的事故可能导致严重的公共安全危害和大量经济损失。改进的坦克汽车设计的可取性更好地装备以保持在撞击期间包含的商品。本文介绍了开发策略,以在事故期间维持坦克汽车的结构完整性的框架。这项努力的目标是设计一种坦克汽车,该坦克汽车能够在当前设备的冲击速度的两倍(或等效,能够吸收4倍的冲击能量时,在不损失的情况下储存冲击的坦克汽车。该方法的方法将过程分为三个步骤:1。定义关注的影响方案2.选择减轻每个方案中存在的失败模式的策略3.设计和选择技术和策略以实现缓解策略。涉及在2005年在Minoot,ND发生的坦克汽车的铁路事故,2005年,在2005年进行了Graniteville,在2005年进行了检查,以定义影响情景。这些事故的分析表明,两个汽车到汽车影响方案最为伟大的问题:头部冲击,铁路设备影响坦克汽车的末端,可能会覆盖它,坦克汽车在其侧面受到影响,可能是偏离中心。正在开发一种概念设计,可以保护其在汽车到汽车冲击情景中当前设备的冲击速度的两倍。概念设计包括满足影响要求的四个功能:钝性载荷,吸收碰撞能量,增强罐,并控制负载路径以确保载荷均匀,并且在装载罐之前被吸收。可用重量和空间的初步研究,增加能量吸收的策略,以及加强头部和壳的策略正在进行中;本文介绍了这些研究的当前结果。其他研究也正在进行中。还描述了完成此努力所需的步骤。

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