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Gain Scheduling for the Orion Launch Abort Vehicle Controller

机译:Orion发射中止飞行器控制器的增益调度

摘要

One of NASAs challenges for the Orion vehicle is the control system design for the Launch Abort Vehicle (LAV), which is required to abort safely at any time during the atmospheric ascent portion of ight. The focus of this paper is the gain design and scheduling process for a controller that covers the wide range of vehicle configurations and flight conditions experienced during the full envelope of potential abort trajectories from the pad to exo-atmospheric flight. Several factors are taken into account in the automation process for tuning the gains including the abort effectors, the environmental changes and the autopilot modes. Gain scheduling is accomplished using a linear quadratic regulator (LQR) approach for the decoupled, simplified linear model throughout the operational envelope in time, altitude and Mach number. The derived gains are then implemented into the full linear model for controller requirement validation. Finally, the gains are tested and evaluated in a non-linear simulation using the vehicles ight software to ensure performance requirements are met. An overview of the LAV controller design and a description of the linear plant models are presented. Examples of the most significant challenges with the automation of the gain tuning process are then discussed. In conclusion, the paper will consider the lessons learned through out the process, especially in regards to automation, and examine the usefulness of the gain scheduling tool and process developed as applicable to non-Orion vehicles.
机译:对于猎户座飞行器来说,NASA面临的挑战之一是中止发射飞行器(LAV)的控制系统设计,该系统要求在飞行中的大气上升部分随时安全地中止飞行。本文的重点是控制器的增益设计和调度过程,该过程涵盖了从垫块到大气外飞行的潜在中止轨迹的整个包络期间所经历的各种车辆配置和飞行条件。在自动化过程中要考虑到一些因素来调整增益,包括中止效应器,环境变化和自动驾驶模式。使用线性二次调节器(LQR)方法针对整个时间范围,时间和高度以及马赫数中的解耦简化线性模型完成增益调度。然后,将所获得的增益实现​​到用于控制器要求验证的全线性模型中。最后,使用车载软件在非线性仿真中测试和评估增益,以确保满足性能要求。介绍了LAV控制器设计的概述和线性工厂模型的描述。然后讨论了增益调整过程自动化带来的最重大挑战的示例。总之,本文将考虑从整个过程中吸取的教训,尤其是在自动化方面,并研究适用于非Orion车辆的增益调度工具和过程的有用性。

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