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DEVELOPMENT OF CRASH ENERGY MANAGEMENT FOR LIGHT RAIL VEHICLES

机译:轻轨车辆碰撞能源管理的发展

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Rail vehicle safety standards for the United States have historically placed emphasis on static structural strength requirements to ensure safety. The primary requirements to ensure crash safety of light rail vehicles were static load cases including car body buff loads, collision post loads, corner post loads, etc. More recent developments for light rail vehicles in the United States have included crash energy management design methodologies. This is consistent with the trend in other modes of transportation applying modern crashworthiness engineering. The challenges of incorporating crash energy management into light rail vehicles are the lack of crashworthiness standards for the light rail industry, the introduction of new design methodologies, and the concerns of compatibility of new and older equipment. This issue of compatibility in vehicle designs would often inhibit introduction of innovations and potential safety improvements within an existing light rail transit system. However, there are ongoing efforts to address each of these challenges. The American Society of Mechanical Engineers has a committee working on the development of a new safety standard for light rail vehicles. Light rail vehicle manufacturers are increasingly using modern crashworthiness design principles. In addition, modern crash analysis methodologies allow for the assessment of vehicle incompatibilities in the design process. In this paper, the developments of crash energy management strategies in the light rail industry are discussed. These include the ongoing standards development efforts and the application of crash energy management principles in recent light rail vehicle design efforts. Examples will be provided for the use of crash analyses in a vehicle design. The interaction of the crash and static analyses will be discussed and examples of both compatible and incompatible collision scenarios will be presented.
机译:轨道车辆的美国安全标准历史上强调静态结构强度要求,以确保安全。确保轻轨车辆碰撞安全性的主要要求是静态载荷盒,包括汽车身体Buff负载,碰撞后荷载,转角载荷等。美国轻轨车辆的最新发展包括崩溃能源管理设计方法。这与应用现代崩溃工程的其他运输方式的趋势一致。将坠机能源管理纳入轻轨车辆的挑战是轻轨行业缺乏持续性标准,引进新的设计方法,以及新和旧设备兼容性的关切。这种车辆设计兼容性兼容性往往会抑制现有轻轨交通系统内的创新和潜在的安全改进。但是,正在努力解决每个挑战。美国机械工程师协会有一个委员会,致力于开发轻轨车辆的新安全标准。轻轨车辆制造商越来越多地利用现代耐火材料设计原则。此外,现代崩溃分析方法允许评估设计过程中的车辆不兼容性。本文讨论了轻轨行业坠机能源管理战略的发展。这些包括较持续的标准开发努力和在近期轻轨车辆设计努力中的碰撞能源管理原则在崩溃能源管理原则的应用。将提供用于在车辆设计中使用碰撞分析的例子。将讨论崩溃和静态分析的相互作用,并且将呈现兼容和不兼容的冲突方案的示例。

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