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Hypersonic vehicle control law development using H infinity and mu-synthesis

机译:利用H无限和mu合成开发高超音速车辆控制律

摘要

Applicability and effectiveness of robust control techniques to a single-stage-to-orbit (SSTO) airbreathing hypersonic vehicle on an ascent accelerating path and their effectiveness are explored in this paper. An SSTO control system design problem, requiring high accuracy tracking of velocity and altitude commands while limiting angle of attack oscillations, minimizing control power usage and stabilizing the vehicle all in the presence of atmospheric turbulence and uncertainty in the system, was formulated to compare results of the control designs using H infinity and mu-synthesis procedures. The math model, an integrated flight/propulsion dynamic model of a conical accelerator class vehicle, was linearized as the vehicle accelerated through Mach 8. Controller analysis was conducted using the singular value technique and the mu-analysis approach. Analysis results were obtained in both the frequency and the time domains. The results clearly demonstrate the inherent advantages of the structured singular value framework for this class of problems. Since payload performance margins are so critical for the SSTO mission, it is crucial that adequate stability margins be provided without sacrificing any payload mass.
机译:本文探讨了鲁棒控制技术在加速加速路径上对单级至轨道(SSTO)呼吸超音速飞行器的适用性和有效性,以及它们的有效性。制定了SSTO控制系统设计问题,要求对速度和高度命令进行高精度跟踪,同时限制攻角振荡,最小化控制功率使用并在系统存在大气湍流和不确定性的情况下稳定车辆,以比较以下结果:使用H无限和mu合成程序进行控制设计。数学模型是圆锥形加速器类飞行器的综合飞行/推进动力学模型,随着飞行器通过Mach 8加速而线性化。使用奇异值技术和mu分析方法进行了控制器分析。在频域和时域均获得了分析结果。结果清楚地证明了结构化奇异值框架对于此类问题的固有优势。由于有效载荷性能裕度对于SSTO任务至关重要,因此至关重要的是要在不牺牲任何有效载荷质量的情况下提供足够的稳定性裕度。

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