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Research on high-bandwidth linear active disturbance rejection control method for variable speed turboshaft engine

  • Bo Huang , Wenbo Li EMAIL logo , Yerong Peng und Jie Song
Veröffentlicht/Copyright: 19. Dezember 2023
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Abstract

The wide flight range and high torsional vibration frequency of high-speed helicopters impose stricter criteria for the high-bandwidth control of turboshaft engines. Consequently, research is underway to implement a high-bandwidth control method for turboshaft engines using the linear active disturbance rejection control (LADRC) theory. Initially, the LADRC is designed based on the mathematical model of the integrated helicopter/engine system. To address the challenge of maintaining control quality with varying speed reference commands for the power turbine, an improved LADRC method with tracking differentiators (TD) is developed. Numerical simulations comparing the control effectiveness of LADRC with TD to cascade PID and conventional LADRC methods are conducted. The results demonstrate that the improved LADRC gains have a wider tuning range than the LADRC controller, and the power turbine speed tracking effect of LADRC with TD is optimal. It is more conducive to accomplish high-bandwidth control of turboshaft engine with variable rotational speed.


Corresponding author: Wenbo Li, Nanjing University of Aeronautics and Astronautics, JiangSu Province Key Laboratory of Aerospace Power System, No. 29 Yudao Street, Nanjing 210016, China, E-mail:

Acknowledgments

The work has been co-supported by the National Science and Technology Major Project (Grant/Award Number: J2019-I-0020-0019).

  1. Research ethics: Not applicable.

  2. Author contributions: The authors have accepted responsibility for the entire content of this manuscript and approved its submission.

  3. Competing interests: The authors state no conflict of interest.

  4. Research funding: None declared.

  5. Data availability: Not applicable.

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Received: 2023-10-10
Accepted: 2023-12-03
Published Online: 2023-12-19
Published in Print: 2024-08-27

© 2023 Walter de Gruyter GmbH, Berlin/Boston

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