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EVALUATION OF RISK REDUCTION FROM TANK CAR DESIGN AND OPERATIONS IMPROVEMENTS -AN EXTENDED STUDY

机译:从坦克汽车设计和运营的风险降低评估改进 - 延长研究

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Critical derailment incidents associated with crude oil and ethanol transport have led to a renewed focus on improving the performance of tank cars against the potential for puncture under derailment conditions. Proposed strategies for improving puncture performance have included design changes to tank cars as well as operational considerations, such as reduced speeds and upgraded brake systems. In a prior paper on this topic, the authors conceptualized a novel and objective methodology for quantifying and characterizing the reductions in risk that result from changes to tank car design or to the tank car operating environment. This paper describes an extension of that effort to include additional derailment cases, additional operating speeds, considerations for alternate train configurations, such as Distributed Power (DP) and Electrically Controlled Pneumatic (ECP) brakes, as well as options for component level studies. In essence, the developed methodology considers key elements that are relevant to tank car derailment performance and combines these elements into a consistent probabilistic framework to estimate the relative merit of proposed mitigation strategies. The relevant elements considered include variations in the derailment scenarios, chaotic derailment dynamics, the distribution of impact loads and impactor sizes, various operating speeds, brake system differences, and variations in tank car design. The paper also provides an overview of the validation efforts which suggest that the gross dynamics of a tank car train derailment, and the resulting puncture performance of the tank cars, are captured well by this methodology.
机译:与原油和乙醇运输有关的关键脱轨事件导致重新重点关注提高坦克汽车对脱轨条件刺穿潜力的态度。提出改善穿刺性能的策略包括对坦克汽车以及操作考虑的设计变更,例如减少速度和升级制动系统。在本主题的先前文件中,作者概念化了一种新颖的和客观方法,用于量化和表征导致坦克汽车设计或坦克汽车操作环境的变化导致的风险减少。本文介绍了该努力的扩展,包括额外的脱轨病例,额外的操作速度,用于替代列车配置的考虑,例如分布式功率(DP)和电控气动(ECP)制动器,以及组件水平研究的选项。从本质上讲,发达的方法考虑与坦克汽车脱轨性能相关的关键元素,并将这些元素结合成一致的概率框架,以估计建议缓解策略的相对优点。所考虑的相关元素包括脱轨情景,混沌脱轨动态,冲击载荷和撞击尺寸的分布,各种操作速度,制动系统差异和坦克汽车设计的变化的变化。本文还概述了验证努力,表明坦克汽车火车排除的毛重和坦克汽车的刺穿性能,通过这种方法捕获。

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