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PROTOTYPE DESIGN OF AN ENGINEER COLLISION PROTECTION SYSTEM

机译:发动机防撞系统的原型设计

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This research program was sponsored by the Federal Railroad Administration (FRA) Office of Research and Development in support of the advancement of improved safety standards for passenger rail vehicles. In a train collision, the cab or locomotive engineer is in a vulnerable position at the leading end of the vehicle. As cars with increased crashworthiness are introduced into service, there is a greater potential to preserve the space occupied by the engineer following an accident. In particular, full-scale impact tests have demonstrated the engineer's space can be preserved at closing speeds up to 30 mph. When sufficient survival space is preserved, the next objective is to protect the engineer from the forces and accelerations associated with secondary impacts between the engineer and the control cab. Given the hard surfaces and protruding knobs in a control cab, even a low speed collision can result in large, concentrated forces acting upon the engineer.Researchers have designed a passive (i.e., requiring no action by the operator) interior protection system for cab car and locomotive engineers. The occupant protection system will protect engineers from the secondary impact that occurs following a frontal train impact, when the engineer impacts the control console. The protection system will result in compartmentalization of a 95th percentile anthropomorphic test device (ATD), and measured injury criteria for the ATD's head, chest, neck, and femur that are below those currently specified in Federal Motor Vehicle Safety Standard (FMVSS) 208 [1].The system that has been developed to protect the engineer includes a specialized airbag and a knee bolster with energy absorbing honeycomb material and deformable brackets. Finite element and lumped mass-spring analyses show the effectiveness of the system in limiting the injury criteria to survivable limits. Component tests have measured the key characteristics of the airbag and the knee brackets and have provided test data necessary to validate the analyses.Two tests were conducted to validate the airbag model. A static deployment test of the airbag measured the inflation progression, the inflated shape and the internal pressure of the airbag. A drop tower test of the airbag measured the force-crush and energy absorbing characteristics of the airbag. The knee bolster assembly consists of two components. Separate quasi-static tests of the aluminum honeycomb and the knee bolster bracket measured the force-crush and energy absorbing characteristics. The component test results were used to improve the computer model and permit analysis of the entire system.This paper discusses the prototype design, including background research, baseline definition and prototype development. The initial prototype design is analyzed using computer models. The components are tested to verify and improve the computer models. The test and analysis results are presented. Future work is planned for fabrication of the cab desk and prototype system to be used in a sled test with a 95 th percentile ATD.
机译:该研究计划由联邦铁路管理局(FRA)研究与发展办公室赞助,以支持提高乘用铁路车辆的安全标准。在火车相撞时,出租车或机车工程师在车辆的前端处于易受伤害的位置。随着具有更高防撞性的汽车投入使用,在事故发生后,保留工程师所占用空间的潜力更大。尤其是,全面的冲击测试表明,工程师的空间可以以高达30 mph的关闭速度保存。当保留了足够的生存空间时,下一个目标是保护工程师免受与工程师和控制室之间的次要冲击相关的力和加速度。考虑到驾驶室中坚硬的表面和突出的旋钮,即使是低速碰撞也可能导致作用在工程师上的集中力很大。研究人员为驾驶室汽车设计了一种被动式(即,无需操作员采取任何行动)内部保护系统和机车工程师。当工程师撞击控制台时,乘员保护系统将保护工程师免受正面列车撞击后产生的二次撞击。该保护系统将使第95个百分数拟人化测试设备(ATD)分隔开来,并且测得的ATD头部,胸部,颈部和股骨的伤害标准低于联邦机动车辆安全标准(FMVSS)208 []中指定的标准。 1]。为保护工程师而开发的系统包括一个特殊的安全气囊和一个带有吸能蜂窝材料和可变形支架的护膝。有限元和集总质量弹簧分析显示了该系统在将损伤标准限制在可生存的范围内的有效性。组件测试测量了安全气囊和膝盖支架的关键特性,并提供了验证分析所需的测试数据。进行了两次测试以验证安全气囊模型。气囊的静态展开测试测量了气囊的充气过程,充气形状和内部压力。安全气囊的落塔测试测量了安全气囊的力击和能量吸收特性。膝盖支撑组件由两个组件组成。铝蜂窝和护膝支架分别进行了准静态测试,测量了力挤压和能量吸收特性。组件测试结果被用来改善计算机模型并允许对整个系统进行分析。本文讨论了原型设计,包括背景研究,基线定义和原型开发。使用计算机模型分析初始原型设计。对组件进行了测试,以验证和改进计算机模型。给出了测试和分析结果。计划在未来的工作中制造驾驶台和原型系统,以用于具有95%ATD的雪橇测试中。

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