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Evaluating the stability of NASA’s space launch system with adaptive augmenting control

机译:评估NASA空间发射系统具有自适应增强控制的稳定性

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NASA’s baseline space launch system (SLS) flight control system (FCS) design includes an adaptive augmenting control (AAC) component that modifies the attitude control system response by augmenting the classical gain-scheduled architecture with additional performance and robustness. The NASA Engineering and Safety Center (NESC) teamed with the SLS Program to perform a comprehensive assessment of the stability and robustness of this FCS with emphasis on the AAC component. Multiple analysis techniques applicable to nonlinear systems were commissioned as part of this assessment, which was conducted in parallel with the program’s standard design analysis cycle. The following analyses were included, with each technique adding unique valuable insights: Lyapunov-based stability analysis, classical stability analysis with static AAC gain variations, circle criterion-based analysis of the FCS with a time-varying gain element, time-domain stability margin assessment, Monte Carlo simulations with expanded dispersions, and an extensive set of stressing cases. Several of the completed analyses focused on determining whether the inclusion of AAC introduced risk to the FCS, while others quantified the benefits of the adaptive augmentation.
机译:NASA的基准空间发射系统(SLS)飞行控制系统(FCS)设计包括一个自适应增强控制(AAC)组件,通过增强具有额外性能和鲁棒性的经典增益计划架构来修改姿态控制系统响应。美国宇航局的工程和安全中心(NESC)与SLS计划合作,对该FCS的稳定性和稳健性进行了全面评估,重点是AAC组件。适用于非线性系统的多种分析技术作为本评估的一部分,与该计划的标准设计分析周期平行进行。包括以下分析,每种技术都有独特的有价值的见解:Lyapunov的稳定性分析,具有静态AAC增益变化的经典稳定性分析,基于圈子标准的FCS分析,具有时域稳定性边缘的时域稳定性余量评估,蒙特卡罗模拟扩展分散体,以及一套大量的强调案例。有几个完成的分析专注于确定是否将AAC纳入FCS的风险,而其他分析则量化了自适应增强的益处。

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