Optimizing adaptability and rational control strategies for cyclogyro systems

The cyclogyro, due to its potential applications in aviation and complex dynamic characteristics, has become the focus of our research. Although traditional PID control is effective in many cases, it may struggle in handling the complex nonlinear dynamics often encountered in cyclogyro systems. Ther...

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Main Author: Sibei Wei
Format: Article
Language:English
Published: National Aerospace University «Kharkiv Aviation Institute» 2024-11-01
Series:Авіаційно-космічна техніка та технологія
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Online Access:http://nti.khai.edu/ojs/index.php/aktt/article/view/2668
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author Sibei Wei
author_facet Sibei Wei
author_sort Sibei Wei
collection DOAJ
description The cyclogyro, due to its potential applications in aviation and complex dynamic characteristics, has become the focus of our research. Although traditional PID control is effective in many cases, it may struggle in handling the complex nonlinear dynamics often encountered in cyclogyro systems. Therefore, the objective of this study was to design and implement a control system for the cyclogyro based on optimized strategies to improve the system stability and response speed. The proposed approach integrates mathematical modeling, optimization algorithms, real-time data analysis, and feedback mechanisms to predict and adjust the system behavior. The performance of traditional PID control was compared with that of Model Predictive Control (MPC) in a dual-target speed control system. The numerical simulation results demonstrated that the MPC-based optimized control significantly outperformed PID control, achieving higher stability and faster response speed when dealing with external disturbances and nonlinear dynamic changes, with the average response time reduced by 92.5% (p < 1e-10). This enhanced performance is due to the system’s ability to dynamically adjust its control strategies in response to varying environmental conditions. The conclusions of this research highlight the substantial advantages of optimized control strategies for cyclogyro systems, offering new insights into the development of complex aviation control systems and demonstrating the potential of these strategies to enhance both performance and adaptability.
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institution Kabale University
issn 1727-7337
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language English
publishDate 2024-11-01
publisher National Aerospace University «Kharkiv Aviation Institute»
record_format Article
series Авіаційно-космічна техніка та технологія
spelling doaj-art-10f741990d2d423a8ed2aa4c96829cd02025-01-10T07:31:31ZengNational Aerospace University «Kharkiv Aviation Institute»Авіаційно-космічна техніка та технологія1727-73372663-22172024-11-0106153310.32620/aktt.2024.6.022372Optimizing adaptability and rational control strategies for cyclogyro systemsSibei Wei0National Aerospace University "Kharkiv Aviation In-stitute", KharkіvThe cyclogyro, due to its potential applications in aviation and complex dynamic characteristics, has become the focus of our research. Although traditional PID control is effective in many cases, it may struggle in handling the complex nonlinear dynamics often encountered in cyclogyro systems. Therefore, the objective of this study was to design and implement a control system for the cyclogyro based on optimized strategies to improve the system stability and response speed. The proposed approach integrates mathematical modeling, optimization algorithms, real-time data analysis, and feedback mechanisms to predict and adjust the system behavior. The performance of traditional PID control was compared with that of Model Predictive Control (MPC) in a dual-target speed control system. The numerical simulation results demonstrated that the MPC-based optimized control significantly outperformed PID control, achieving higher stability and faster response speed when dealing with external disturbances and nonlinear dynamic changes, with the average response time reduced by 92.5% (p < 1e-10). This enhanced performance is due to the system’s ability to dynamically adjust its control strategies in response to varying environmental conditions. The conclusions of this research highlight the substantial advantages of optimized control strategies for cyclogyro systems, offering new insights into the development of complex aviation control systems and demonstrating the potential of these strategies to enhance both performance and adaptability.http://nti.khai.edu/ojs/index.php/aktt/article/view/2668cyclogyrocontrol systempid controlmodel predictive control (mpc)optimized control strategynonlinear dynamicssystem stabilityresponse speednumerical simulationadaptability
spellingShingle Sibei Wei
Optimizing adaptability and rational control strategies for cyclogyro systems
Авіаційно-космічна техніка та технологія
cyclogyro
control system
pid control
model predictive control (mpc)
optimized control strategy
nonlinear dynamics
system stability
response speed
numerical simulation
adaptability
title Optimizing adaptability and rational control strategies for cyclogyro systems
title_full Optimizing adaptability and rational control strategies for cyclogyro systems
title_fullStr Optimizing adaptability and rational control strategies for cyclogyro systems
title_full_unstemmed Optimizing adaptability and rational control strategies for cyclogyro systems
title_short Optimizing adaptability and rational control strategies for cyclogyro systems
title_sort optimizing adaptability and rational control strategies for cyclogyro systems
topic cyclogyro
control system
pid control
model predictive control (mpc)
optimized control strategy
nonlinear dynamics
system stability
response speed
numerical simulation
adaptability
url http://nti.khai.edu/ojs/index.php/aktt/article/view/2668
work_keys_str_mv AT sibeiwei optimizingadaptabilityandrationalcontrolstrategiesforcyclogyrosystems