一种有效的控制技术,用于实现混合太阳能光伏并网中敏感负载的IUPQC设计

O. Osaloni, A. S. Akinyemi, Abayomi Adebiyi, Ayodeji Olalekan Salau
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引用次数: 2

摘要

电力电子应用在电力系统(EPS)中的最新创新催生了一种改进的统一电能质量调节器(IUPQC),它对电力系统产生了积极影响。应用IUPQC的先前可用的缓解方法是单调的,并且是针对特定电能质量(PQ)问题的主要设计,该问题不考虑传递程度。本文针对光伏-太阳能(PV)混合电网中的敏感负载,提出了一种有效的IUPQC设计控制架构,重点关注对微小变化做出响应的负载的电压需求。这项工作的目的是设计一种灵活的控制器,该控制器可以响应有关电压、可变负载和太阳能照射的不同程度的PQ挑战。它结合了IUPQC和电网集成光伏电源的优点。实现了UPQC并联补偿器中串联的电压源逆变器(VSI)和电流源逆变器(CSI)的有效控制器,以提高不同电压和电流失真的器件强度。串联补偿器采用基于自适应陷波滤波器的增强型同步参考帧(SRF)技术进行控制。该方法的并行部分采用了自适应对数绝对算法(ALAL)。平均转向滤波器(MTF)被用作直流节点电压管理的低通滤波器(LPF)的替代品,使高频和低频波纹不受影响。为了在电网扰动期间保持电网侧的恒定电流,在并联CSI控制器中引入了前馈元件。实验验证表明,在各种网络情况下,如欠压、过电压、电压失真、谐波、负载快速变化和太阳能发电波动等,控制系统的性能较好。最后,观察到,由于应用控制,0.984p.u.的电压分布落在允许的限度内。在开发的配电系统模型和验证的实验样机上,在MATLAB Simulink中对所提出的控制器进行了测试。
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An Effective Control Technique to Implement an IUPQC Design for Sensitive Loads in a Hybrid Solar PV-Grid Connection
The recent innovation in power electronic application in the electrical power system (EPS) has given birth to an Improved Unified Power Quality Conditioner (IUPQC) that positively impacts the electrical power system (EPS). The previously available mitigation approaches with the application IUPQC are monotonous and are major designs for a particular power quality (PQ) issue which does not take care of the degree of impart. This paper presents an effective control architecture of an IUPQC design for sensitive loads in hybrid Photovoltaic Solar (PV) connected grid, concentrating on the voltage demand of loads that respond to slight changes. The objective of this work is to design a flexible controller that can respond to the different degrees of PQ challenges concerning voltage, variable load, and solar irradiation. It has combined the merits of an IUPQC and grid-integrated PV source. Effective controllers for Voltage Source Inverter (VSI) connected in series and Current Source Inverter (CSI) connected in shunt compensators of the UPQC are implemented to increase device strength for different voltage and current distortions. The series compensator was controlled using an enhanced Synchronous Reference Frame (SRF) technique based on adaptive notch filters. An Adaptive Logarithmic Absolute Algorithm (ALAL) was deployed for the parallel section of the proposed approach. The Mean Turning Filter (MTF) was used as a replacement for a low pass filter (LPF) for direct current node voltage management, leaving high and low-frequency ripples unaffected. To maintain a constant current on the grid side during grid disturbances, a feed-forward element has been introduced to the shunt CSI controller. Under various network situations, such as under-voltage, over-voltage, voltage distortion, harmonics, rapid load changes, and fluctuation in solar power, the control system performance is better as confirmed by experimental validation. Finally, it is observed that the voltage profile of 0.984 p.u. due to application control falling within the permissible limits. The proposed controllers are tested in the MATLAB Simulink on a developed distribution system model and validated experimental prototype.
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来源期刊
WSEAS Transactions on Power Systems
WSEAS Transactions on Power Systems Engineering-Industrial and Manufacturing Engineering
CiteScore
1.10
自引率
0.00%
发文量
36
期刊介绍: WSEAS Transactions on Power Systems publishes original research papers relating to electric power and energy. We aim to bring important work to a wide international audience and therefore only publish papers of exceptional scientific value that advance our understanding of these particular areas. The research presented must transcend the limits of case studies, while both experimental and theoretical studies are accepted. It is a multi-disciplinary journal and therefore its content mirrors the diverse interests and approaches of scholars involved with generation, transmission & distribution planning, alternative energy systems, power market, switching and related areas. We also welcome scholarly contributions from officials with government agencies, international agencies, and non-governmental organizations.
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