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An innovative methodology for allocating reliability and cost in a lunar exploration architecture.

机译:一种在月球探索架构中分配可靠性和成本的创新方法。

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摘要

In January 2005, President Bush announced the Vision for Space Exploration. This vision involved a progressive expansion of human capabilities beyond Low Earth Orbit beginning with a return to the moon starting no later than 2020. Current design processes utilized to meet this vision employ performance based trade studies to determine the lowest cost, highest reliability solution. The methodology implemented in this dissertation focuses on a concurrent evaluation of the performance, cost, and reliabilities of lunar architectures. This process directly addresses the top level requirements early in the design process and allows the decision maker to evaluate the highest reliability, lowest cost lunar architectures without being distracted by the performance details of the architecture.;To achieve this methodology of bringing optimal cost and reliability solutions to the decision maker, parametric performance, cost, and reliability models are created to model each vehicle element. These models were combined using multidisciplinary optimization techniques and response surface equations to create parametric vehicle models which quickly evaluate the performance, reliability, and cost of the vehicles. These parametric models, known as ROSETTA models, combined with a life cycle cost calculator provide the tools necessary to create a lunar architecture simulation. The integration of the tools into an integrated framework that can quickly and accurately evaluate the lunar architectures is presented. This lunar architecture selection tool is verified and validated against the Apollo and ESAS lunar architectures. The results of this lunar architecture selection tool are then combined into a Pareto frontier to guide the decision maker to producing the highest reliability architecture for a given life cycle cost.;With this presented methodology, the decision maker can transparently choose a lunar architecture solution based upon the high level design discriminators. This method can achieve significant reductions in life cycle costs (over 40%) keeping the same architecture reliability as a traditional design process point solution. This methodology also allows the decision maker to choose a solution which achieves a significant reduction in failure rate (over 50%) while maintaining the same life cycle costs as the point solution of a traditional design process.
机译:2005年1月,布什总统宣布了“太空探索远景”。该构想涉及人类能力逐步扩展到近地轨道之外,直到不迟于2020年才返回月球。为实现该构想而使用的当前设计流程采用基于性能的贸易研究来确定成本最低,可靠性最高的解决方案。本文所采用的方法论着重于对月球结构的性能,成本和可靠性的同时评估。该过程直接在设计过程的早期就满足了最高级别的要求,并使决策者能够评估最高可靠性,最低成本的登月建筑,而不会被建筑的性能细节所干扰。;要实现这种带来最佳成本和可靠性的方法为决策者提供解决方案,参数性能,成本和可靠性模型,以对每个车辆元素建模。使用多学科优化技术和响应面方程将这些模型进行组合,以创建可快速评估车辆性能,可靠性和成本的参数化车辆模型。这些参数化模型(称为ROSETTA模型)与生命周期成本计算器相结合,可提供创建月球建筑模拟所需的工具。介绍了将工具集成到可以快速,准确地评估月球体系结构的集成框架中的过程。该月球架构选择工具已针对Apollo和ESAS月球架构进行了验证和验证。然后将此月球体系结构选择工具的结果合并到Pareto边界中,以指导决策者在给定的生命周期成本下生产出最高可靠性的体系结构;通过这种方法,决策者可以透明地选择基于月球体系结构的解决方案基于高级设计鉴别器。这种方法可以显着降低生命周期成本(超过40%),并保持与传统设计过程点解决方案相同的体系结构可靠性。该方法还允许决策者选择一种解决方案,该解决方案可以显着降低故障率(超过50%),同时保持与传统设计过程的点解决方案相同的生命周期成本。

著录项

  • 作者

    Young, David A.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 270 p.
  • 总页数 270
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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