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Diagonalizing controller for a superconducting six-axis accelerometer

机译:用于超导六轴加速度计的对角化控制器

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A relatively simple MIMO (multiple input, multiple output) controller which converts an instrument with a nondiagonally dominant transfer function matrix into a strongly diagonally dominant device is developed. The instrument, which uses inductance bridges to sense the position of a magnetically levitated superconducting mass, has very lightly damped resonances and fairly strong cross coupling. By taking advantage of the particular structure of the instrument's transfer function matrix, it is possible to develop a relatively simple controller which achieves the desired decoupling. This controller consists of two parts. The first part cancels the nondiagonal terms of the open-loop transfer function matrix, while the second part is simply a set of SISO (single input, single output) controllers. The stability of the closed-loop system is studied using Rosenbrock's inverse Nyquist array technique which produces a simple set of conditions guaranteeing stability. Simulation of the closed-loop system indicates that it should easily achieve its performance goals.
机译:开发了一种相对简单的MIMO(多输入,多个输出)控制器,其将具有非正式主导传递函数矩阵的仪器转换为强对角显性装置。使用电感桥以感测磁升高超导质量的位置的仪器具有非常轻微地阻尼的共振和相当强的交叉耦合。通过利用仪器的传递函数矩阵的特定结构,可以开发一个相对简单的控制器,该控制器实现所需的去耦。该控制器由两部分组成。第一部分取消了开环传输函数矩阵的非透析术语,而第二部分只是一组SISO(单输入,单输出)控制器。使用Rosenbrock的逆奈奎斯特阵列技术研究了闭环系统的稳定性,该阵列技术可以保证稳定性的简单条件。闭环系统的仿真表明它应该容易地实现其性能目标。

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