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Shuttle Program Loads Integration: Going From Concept to Operations and Staying Successful

机译:Shuttle程序加载集成:从概念到运营,并保持成功

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From the beginning of the Shuttle Program to its end, integrated loads and dynamics analyses and tests have been critical in shaping the vehicle design and operational decisions for NASA and its customers. Starting with scaled models and simple mathematical simulations of the structural dynamics, engineers defined the required structural stiffness and predicted the limit loads for each element of the system. Early structural tests provided reasonable confidence that the models and predictions were good. The first launch of the Space Shuttle brought surprises, though, when the ignition overpressure event caused a forward fuel tank support strut to buckle, among several unexpected effects. The launch pad and other ground equipment became an integral part of the system integration, especially where the acoustic and pressure environments of ignition and lift-off were concerned. Following the Challenger accident, operating limits were changed in response to new understandings of how the integrated system performed. Controlling loads while maximizing performance was a key tenet of the Performance Enhancement design process, which enabled construction of the International Space Station. During the return to flight after the Columbia accident, engineers grew to understand that loads during the roll maneuver were also important to the vehicle's structural margin and life. At this point the crawler transport from the Vehicle Assembly Building to the launch pad also became a part of the integrated loads analysis. Even in the last years of the Space Shuttle Program, new data still provided interesting insights into this complicated and fascinating spaceship. This paper will present some examples of the important findings by the team of specialists that supported the Integrated Loads and Dynamics Panel for the Space Shuttle Program.
机译:从航天飞机计划的开始到结束,集成的载荷,动力学分析和测试对于塑造NASA及其客户的车辆设计和运营决策至关重要。从比例缩放模型和结构动力学的简单数学模拟开始,工程师定义了所需的结构刚度并预测了系统中每个元素的极限载荷。早期的结构测试为模型和预测提供了良好的信心。但是,航天飞机的首次发射带来了惊喜,当点火超压事件导致油箱前支撑杆弯曲时,产生了一些意外效果。发射台和其他地面设备已成为系统集成的组成部分,尤其是在涉及着火和升空的声学和压力环境的情况下。挑战者事故发生后,为响应对集成系统运行方式的新认识,更改了运行极限。在最大程度地提高性能的同时控制负载是“性能增强”设计过程的主要宗旨,该过程使国际空间站的建设成为可能。在哥伦比亚事故发生后的返航过程中,工程师逐渐了解到,侧倾操纵过程中的载荷对车辆的结构裕度和使用寿命也很重要。此时,履带从车辆装配大楼到发射台的运输也已成为集成载荷分析的一部分。即使在航天飞机计划的最后几年,新数据仍然提供了对这种复杂而有趣的宇宙飞船的有趣见解。本文将介绍支持航天飞机计划综合载荷和动力学小组的专家小组的重要发现的一些示例。

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