基于磷虾群算法的分数阶pid微电网系统最优频率控制

IF 1.6 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC Electrical Engineering & Electromechanics Pub Date : 2020-04-20 DOI:10.20998/2074-272x.2020.2.11
M. Regad, M. Helaimi, R. Taleb, H. Gabbar, A. Othman
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引用次数: 7

摘要

摘要本文研究了分数阶比例、积分和导数(FOPID)控制器在微电网系统频率和功率调节中的应用。拟议的微电网系统由可再生能源(如太阳能和风力发电机)、柴油发电机作为辅助电源来支持主发电机,以及不同的能量存储设备(如燃料电池、电池和飞轮)组成。由于风力涡轮机和光伏发电机等综合可再生能源的间歇性,依赖于天气条件和气候变化,这会通过考虑频率波动和功率偏差来影响微电网的稳定性,这些波动和功率偏差可以通过选择的控制器来改善。与传统的PID控制器相比,分数阶控制器具有5个参数,使其对微电网扰动具有更强的灵活性和鲁棒性。分数阶PID控制器参数的优化采用了一种新的优化技术——磷虾群优化技术,与粒子群优化技术相比,磷虾群优化技术是一种合适的优化方法。结果表明,采用基于分数阶PID控制器的Krill Herd算法,与传统PID控制器相比,消除了频率波动和功率偏差,使系统具有更好的性能。将所得结果与采用粒子群算法优化的分数阶PID控制器进行了比较。为了验证所提方法的鲁棒性,在标称条件下,采用蓄电池和飞轮系统等存储设备进行了仿真,并对仿真结果进行了比较。
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OPTIMAL FREQUENCY CONTROL IN MICROGRID SYSTEM USING FRACTIONAL ORDER PID CONTROLLER USING KRILL HERD ALGORITHM
Abstract. This paper investigates the use of fractional order Proportional, Integral and Derivative (FOPID) controllers for the frequency and power regulation in a microgrid power system. The proposed microgrid system composes of renewable energy resources such as solar and wind generators, diesel engine generators as a secondary source to support the principle generators, and along with different energy storage devices like fuel cell, battery and flywheel. Due to the intermittent nature of integrated renewable energy like wind turbine and photovoltaic generators, which depend on the weather conditions and climate change this affects the microgrid stability by considered fluctuation in frequency and power deviations which can be improved using the selected controller. The fractional-order controller has five parameters in comparison with the classical PID controller, and that makes it more flexible and robust against the microgrid perturbation. The Fractional Order PID controller parameters are optimized using a new optimization technique called Krill Herd which selected as a suitable optimization method in comparison with other techniques like Particle Swarm Optimization. The results show better performance of this system using the fractional order PID controller-based Krill Herd algorithm by eliminates the fluctuations in frequency and power deviation in comparison with the classical PID controller. The obtained results are compared with the fractional order PID controller optimized using Particle Swarm Optimization. The proposed system is simulated under nominal conditions and using the disconnecting of storage devices like battery and Flywheel system in order to test the robustness of the proposed methods and the obtained results are compared.
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来源期刊
Electrical Engineering & Electromechanics
Electrical Engineering & Electromechanics ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
2.40
自引率
50.00%
发文量
53
审稿时长
10 weeks
期刊最新文献
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