基于间接设计方法的AVR系统鲁棒PID整定

Mohd Ashraf Ahmad, Mohd Zaidi Mohd Tumari, M. R. Ghazali, M. H. Suid, J. J. Jui
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引用次数: 0

摘要

自动电压调节器(AVR)是为了自动保持同步发电机电压稳定而开发的。这种结构通常通过安装比例-积分-导数(PID)控制器来控制。当代的启发式方法进一步激发了学术界的追求,提倡许多创新的基于pid的优化技术。然而,由于建模误差和不确定性的存在,抵消了不成比例的理论结果的这些好处和精度,需要不断地调整PID控制器。考虑到手动优化控制器参数可能会危及操作的有效性和一致性,本研究通过在线整定从根本上保证了pid控制AVR系统的有效性。采用的间接设计技术强调在AVR结构中对先前优化的PID控制器的频移常数进行独占优化。通过从更新的频移常数中修改早期PID控制器的参数,可以实现控制效率和操作的增强。从最大灵敏度、增益和相位裕度三个方面对比了所引入的优化机构与原优化PID控制器参数的兼容性。仿真结果表明,通过对所引入的机构进行参数化优化,PID控制器大大提高了AVR结构的性能。
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Robust PID tuning of AVR system based on Indirect Design Approach-2
The Automatic Voltage Regulator (AVR) has been developed with the automated purpose of maintaining voltage stability for synchronous generators. This structure is often controlled by installation of the Proportional-Integral-Derivative (PID) controller. Contemporary heuristic approaches further inspired scholastic pursuits which advocate numerous innovative PID-based optimization techniques. Nevertheless, offsetting of such benefits and precision on disproportionate theoretical outcome by existence of modelling errors and uncertainties has necessitated continuous effort in tuning the PID controller. Considering possible jeopardizing of operational effectiveness and consistency through manualized optimization of controller’s parameters, the current study essentially secured the effectiveness of a PID-controlled AVR system through online tuning. The adopted indirect design technique emphasized exclusive optimization of frequency shift constant of a formerly optimized PID controller as employed within an AVR structure. Enhancement of control efficacy and operation is achievable through revised parameters in the earlier PID controller from an updated frequency shifted constant. Compatibility of the introduced optimization mechanism was contrasted against parameters of the formerly optimized PID controller on the account of maximum sensitivity, gain and phase margins. Conducted simulations demonstrate substantial enhancement in performance of AVR structure with PID con-troller through parametric refining of the introduced mechanism.
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