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涡扇发动机变参数鲁棒H滤波器设计

  • Qiu Sheng Jia
  • , Xin Xing Shi
  • , Hua Cong Li
  • , Hong Liang Xiao
  • , Xiao Bao Han

科研成果: 期刊稿件文章同行评审

1 引用 (Scopus)

摘要

As to solve the problem of performance parameters estimation of turbofan engine, under modeling error and measurement noise disturbances, there are some flaws including the low filter estimation accuracy, the slow filter convergence rate, and sensitive to uncertain measurement noise and modeling errors in Kalman filter algorithm and its extension. An approach based on the parameter-varying robust H filter technique is investigated. A robust filter, which satisfied robust H performance requirement, is developed by using affine parameter-dependent Lyapunov functions. The couping product term, between parameter-varying Lyapunov functions matrix and system coefficient matrix in parameter-dependent Linear Matrix Inequalities (LMIs), will lead to non-convex optimization problem. By introducing convex polytope technology, the problem above can be transformed into conventional LMIs constraint convex optimization problem to solve. The conservatism of Linear Parameter Varying (LPV) robust filter design is reduced, and the global solution is obtained. The simulation results of a turbofan engine showed that, compared with the extended Kalman filter, the designed filter has fast dynamic tracking speed and high filtering accuracy, with steady-state estimation error of ΔFn less than 0.1% and relative estimation error of ΔFn less than 2.5%. Beyond that, it can restrain modeling error and measurement noise disturbance strongly.

投稿的翻译标题Parameter-Varying Robust H Filter Design for a Turbofan Engine
源语言繁体中文
页(从-至)910-915
页数6
期刊Tuijin Jishu/Journal of Propulsion Technology
41
4
DOI
出版状态已出版 - 1 4月 2020

关键词

  • Linear matrix inequality
  • Linear parameter varying
  • Parameter-dependent Lyapunov functions
  • Robust H filter
  • Turbofan engine

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