首页> 外文会议>ASME/IEEE/ASCE joint rail conference 2008 : Mechanical and civil engineering papers ; Electrical engineering papers >UPDATE ON ONGOING TANK CAR CRASHWORTHINESS RESEARCH: PREDICTED PERFORMANCE AND FABRICATION APPROACH
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UPDATE ON ONGOING TANK CAR CRASHWORTHINESS RESEARCH: PREDICTED PERFORMANCE AND FABRICATION APPROACH

机译:正在进行中的坦克汽车全天候研究的最新进展:预期的性能和制造方法

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Research is currently underway to develop strategies for maintaining the structural integrity of railroad tank cars carrying hazardous materials during collisions. This research, sponsored by the Federal Railroad Administration (FRA), has focused on four design functions to accomplish this goal: blunting the impact load, absorbing the collision energy, strengthening the commodity tank, and controlling the load path into the tank. Previous papers have been presented outlining the weight and space restrictions for this new design, as well as the approach being taken in developing the design. The performance goals for the new car have also been outlined. A key goal for the new design is the ability to contain its lading at four times the impact energy of the baseline equipment.rnPresently, a preliminary design has been developed that will incorporate these four functions together. This new design features a conventional commodity tank with external reinforcements to strengthen the tank. The reinforced tank is situated on a structural foam cradle, within an external carbody. This carbody has been designed utilizing welded steel sandwich panels. The body is designed to take all of the in-service loads, removing the commodity tank from the load path during normal operations. Additionally, the carbody panels will serve as an energy-absorbing mechanism in the event of a collision.rnPreliminary steps for fabricating and assembling the new tank car design have been outlined. These steps were developed with the intention of paralleling existing tank car fabrication process as much as is practical.rnUsing the commercial finite element analysis (FEA) software ABAQUS/Explicit, the improved design has been analyzed for its response to an impact by a rigid punch. Simulations of two generalized impact scenarios have beenrnmade for this rigid punch impacting the improved tank car head as well as the improved tank car shell. Results of these analyses, including the force-displacement curves for both impacts, are presented within this paper. These results show that an improved-design tank car can contain the commodity for a head impact with eight times the energy of the baseline car, and four times the energy for a shell impact.
机译:目前正在进行研究以开发策略,以在碰撞期间保持运载有害物质的铁路罐车的结构完整性。这项由联邦铁路管理局(FRA)资助的研究集中在实现此目标的四个设计功能上:钝化冲击载荷,吸收碰撞能量,加固商品油箱以及控制通往油箱的装载路径。之前的论文已经概述了该新设计的重量和空间限制,以及开发该设计所采用的方法。还概述了新车的性能目标。新设计的一个主要目标是能够将其装箱量限制为基线设备的冲击能量的四倍。目前,已经开发出了将这四个功能结合在一起的初步设计。这项新设计采用了常规的商品水箱,并带有外部加强件以加强水箱。加固的油箱位于外部车身内部的结构泡沫支架上。该车身采用焊接的钢夹心板设计。车体设计成可承受所有使用中的负载,在正常运行期间将商品箱从负载路径中移出。此外,在发生碰撞时,车身面板将用作能量吸收机制。概述了制造和组装新油罐车设计的初步步骤。开发这些步骤的目的是尽可能地与现有的油罐车制造过程并行进行。使用商业有限元分析(FEA)软件ABAQUS / Explicit,对改进的设计对刚性冲头的冲击响应进行了分析。 。针对这种刚性冲头撞击改进的油罐车头部以及改进的油罐车壳体,已经进行了两种广义碰撞方案的仿真。这些分析的结果,包括两种冲击的力-位移曲线,均在本文中给出。这些结果表明,经过改进设计的油罐车可以容纳商品,其头部撞击的能量是基线汽车的八倍,而外壳撞击的能量是四倍。

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