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An analysis and design framework for robust control of a multi-axis active vibration isolation system with unknown payload

机译:有效载荷未知的多轴主动隔振系统鲁棒控制的分析和设计框架

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摘要

This paper presents a framework for model-based analysis of robust stability and performance for a multi-axis active vibration isolation system with constant but unknown payload and subject to modelling errors associated with structural flexibility. The theoretical treatment involves a linear time-invariant system subject to real parameter uncertainty associated with the unknown payload. A set of performance indices are formulated based on generalized H2 (Hg) and H measures. A method for stability/performance verification is then developed using a parameter-dependent Lyapunov function that incorporates the kinetic energy of the uncertain payload mass. This allows nonconservative bounds on the performance indices to be established via numerical solution of a corresponding set of matrix inequalities. The approach is especially suitable, and computationally efficient, for multi-degree-of-freedom systems as the overall (symmetric positive-definite) properties of the system mass matrix are accounted for without involving information for each scalar parameter. The associated LMIs can therefore be solved in polynomial time with respect to the number of unknown parameters. Numerical examples for the case of sky-hook damping control and multi-objective Hg/H control are provided that demonstrate the effectiveness of the method as a tool for model-based controller evaluation and multi-objective optimization.
机译:本文提出了一个基于模型的多轴主动隔振系统的稳健性和性能分析框架,该系统具有恒定但未知的有效载荷,并存在与结构灵活性相关的建模误差。理论处理涉及线性时不变系统,该系统要承受与未知有效载荷相关的实际参数不确定性。基于广义H2(Hg)和H测度制定了一组性能指标。然后使用参数相关的Lyapunov函数开发一种用于稳定性/性能验证的方法,该函数结合了不确定有效负载质量的动能。这允许通过一组矩阵不等式的相应解来建立性能指标的非保守范围。该方法特别适用于多自由度系统,并且计算效率高,因为考虑了系统质量矩阵的总体(对称正定)特性,而无需涉及每个标量参数的信息。因此,可以针对未知参数的数量在多项式时间内求解关联的LMI。给出了用于天钩阻尼控制和多目标Hg / H控制的数值示例,证明了该方法作为基于模型的控制器评估和多目标优化工具的有效性。

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