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首页> 外文期刊>Mathematical Problems in Engineering >Speed Control for a Marine Diesel Engine Based on the Combined Linear-Nonlinear Active Disturbance Rejection Control
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Speed Control for a Marine Diesel Engine Based on the Combined Linear-Nonlinear Active Disturbance Rejection Control

机译:基于线性-非线性主动干扰抑制组合的船用柴油机速度控制

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摘要

In this paper, a compound control scheme with linear active disturbance rejection control (LADRC) and nonlinear active disturbance rejection control (NLADRC) is designed to stabilize the speed control system of the marine engine. To deal with the high nonlinearity and the complex disturbance and noise conditions in marine engines, the advantages of both LADRC and NLADRC are employed. As the extended state observer (ESO) is affected severely by the inherent characteristics (cyclic speed fluctuation, cylinder-to-cylinder deviations, etc.) of the reciprocating engines, a cycle-detailed hybrid nonlinear engine model is adopted to analyze the impact of such characteristics. Hence, the controller can be evaluated based on the modified engine model to achieve more reliable performance. Considering the mentioned natural properties in reciprocating engines, the parameters of linear ESO (LESO), nonlinear ESO (NLESO), and the switching strategy between LADRC and NLADRC are designed. Finally, various comparative simulations are carried out to show the effectiveness of the proposed control scheme and the superiority of switching strategy. The simulation results demonstrate that the proposed control scheme has prominent control effects both under the speed tracking mode and the condition with different types and levels of load disturbance. This study also reveals that when ADRC related approaches are employed to the reciprocating engine, the impact of the inherent characteristics of such engine on the ESO should be considered well.
机译:本文设计了一种线性主动干扰抑制控制(LADRC)和非线性主动干扰抑制控制(NLADRC)的复合控制方案,以稳定船用发动机的速度控制系统。为了应对船用发动机中的高非线性和复杂的干扰和噪声条件,LADRC和NLADRC均具有优势。由于扩展状态观察器(ESO)受到往复式发动机固有特性(循环速度波动,汽缸间偏差等)的严重影响,因此采用循环详细的混合非线性发动机模型来分析发动机的影响。这样的特点。因此,可以基于修改后的引擎模型对控制器进行评估,以实现更可靠的性能。考虑到往复式发动机的上述自然特性,设计了线性ESO(LESO),非线性ESO(NLESO)的参数以及LADRC和NLADRC之间的切换策略。最后,进行了各种比较仿真,以证明所提出的控制方案的有效性和切换策略的优越性。仿真结果表明,所提出的控制方案在速度跟踪模式和负载扰动类型和等级不同的条件下均具有显着的控制效果。该研究还表明,当将ADRC相关方法应用于往复式发动机时,应充分考虑此类发动机的固有特性对ESO的影响。

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