A Robust Control Approach for Frequency Support Capability of Grid-Tie Photovoltaic Systems

IF 2.1 4区 工程技术 Q3 ENERGY & FUELS Journal of Solar Energy Engineering-transactions of The Asme Pub Date : 2022-07-26 DOI:10.1115/1.4055099
Sid Ahmed El Mehdi Ardjoun, M. Denai, H. Chafouk
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引用次数: 7

Abstract

Distributed solar Photovoltaic (PV) generation is growing rapidly around the world. However, unlike conventional synchronous generators, PV systems do not have any rotating masses to deliver inertia to support the grid frequency. The paper presents a detailed modeling of a new converter configuration and control scheme to enable PV systems to adjust the real power output and contribute to the grid frequency regulation. The proposed topology consists of a two-stage converter without an energy storage system. A dc-dc buck converter is used instead of a dc-dc boost converter, and this simplifies the control scheme which aims to keep the PV generator power in the right side of the P-V characteristic and can be varied in the range from near-zero to the maximum power. The proposed control scheme combines robust and nonlinear sliding mode theory with fuzzy logic. The PV system is connected to a low inertia microgrid and its ability to contribute to frequency regulation is assessed for different controls. The proposed converter and its control are validated experimentally on a 3-kW PV system using OPAL-RT real-time simulator and tested under varying temperature, solar irradiance, and partial shading conditions. The results show that with the proposed circuit, the operating point is always on the right side of the P-V characteristic irrespective of the operating mode. Furthermore, the proposed control scheme provides PV generators with a fast and effective inertial response to support the grid and enhance its stability during contingencies.
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并网光伏系统频率支持能力的鲁棒控制方法
分布式太阳能光伏发电在世界各地迅速发展。然而,与传统的同步发电机不同,光伏系统没有任何旋转质量来传递惯性以支持电网频率。本文对一种新的转换器配置和控制方案进行了详细建模,使光伏系统能够调整实际功率输出,并有助于电网频率调节。所提出的拓扑结构由一个没有储能系统的两级转换器组成。使用直流-直流降压转换器代替直流-直流升压转换器,这简化了控制方案,该控制方案旨在将光伏发电机功率保持在P-V特性的右侧,并且可以在从接近零到最大功率的范围内变化。所提出的控制方案将鲁棒和非线性滑模理论与模糊逻辑相结合。光伏系统连接到低惯性微电网,并针对不同的控制方式评估其对频率调节的贡献能力。使用OPAL-RT实时模拟器在3kW光伏系统上对所提出的转换器及其控制进行了实验验证,并在不同的温度、太阳辐照度和部分遮光条件下进行了测试。结果表明,对于所提出的电路,无论工作模式如何,工作点总是在P-V特性的右侧。此外,所提出的控制方案为光伏发电机提供了快速有效的惯性响应,以支持电网并增强其在突发事件中的稳定性。
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来源期刊
CiteScore
5.00
自引率
26.10%
发文量
98
审稿时长
6.0 months
期刊介绍: The Journal of Solar Energy Engineering - Including Wind Energy and Building Energy Conservation - publishes research papers that contain original work of permanent interest in all areas of solar energy and energy conservation, as well as discussions of policy and regulatory issues that affect renewable energy technologies and their implementation. Papers that do not include original work, but nonetheless present quality analysis or incremental improvements to past work may be published as Technical Briefs. Review papers are accepted but should be discussed with the Editor prior to submission. The Journal also publishes a section called Solar Scenery that features photographs or graphical displays of significant new installations or research facilities.
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