A Novel Model Predictive Control for Stability Improvement of Small Scaled Zero-inertia Multiple DGs Micro-grid

Abdulrahman J. Babqi
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引用次数: 1

Abstract

A zero-inertia micro-grid is a power system consisting of multiple renewable energy power sources and energy storage systems without the presence of conventional synchronous generators. In such a system, a large variation of the load or source sides during the islanded mode of operation extremely degrades the micro-grid's voltage and frequency stability. This study presents a virtual inertia-based predictive control strategy for a small-scale zero-inertia multiple distributed generators (DGs) micro-grid. In islanded mode, Voltage Model Predictive Control (VMPC) was implemented to control and maintain the voltage and frequency of the micro-grid. However, instabilities in frequency and voltage may rise at the Point of Common Coupling (PCC) due to large variations at both source and load sides. Therefore, the proposed virtual inertia loop calculates the amount of active power to be delivered or absorbed by each DG, and its effect is reflected in the estimated d current component of the VMPC, thus providing better frequency regulation. In grid-connected mode, Direct Power Model Predictive Control (DPMPC) was implemented to manage the power flow between each DG and the utility grid. The control approach also enables the DG plug and play characteristics. The performance of the control strategy was investigated and verified using the PSCAD/EMTDC software platform.
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一种改进小型零惯量多dg微电网稳定性的新型模型预测控制
零惯性微电网是一个由多个可再生能源电源和储能系统组成的电力系统,没有传统的同步发电机。在这种系统中,在孤岛运行模式下,负载侧或源侧的较大变化将极大地降低微电网的电压和频率稳定性。针对小型零惯性多分布式发电机组微电网,提出了一种基于虚拟惯性的预测控制策略。在孤岛模式下,采用电压模型预测控制(VMPC)对微电网的电压和频率进行控制和维持。然而,频率和电压的不稳定性可能在共耦合点(PCC)由于在源端和负载端的大变化而上升。因此,所提出的虚拟惯性回路计算出每个DG要输出或吸收的有功功率,其效果反映在VMPC估计的d电流分量中,从而提供更好的频率调节。在并网模式下,采用直接功率模型预测控制(DPMPC)对各DG与公用电网之间的潮流进行管理。控制方法也使DG即插即用特性。利用PSCAD/EMTDC软件平台对控制策略的性能进行了研究和验证。
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来源期刊
Periodica polytechnica Electrical engineering and computer science
Periodica polytechnica Electrical engineering and computer science Engineering-Electrical and Electronic Engineering
CiteScore
2.60
自引率
0.00%
发文量
36
期刊介绍: The main scope of the journal is to publish original research articles in the wide field of electrical engineering and informatics fitting into one of the following five Sections of the Journal: (i) Communication systems, networks and technology, (ii) Computer science and information theory, (iii) Control, signal processing and signal analysis, medical applications, (iv) Components, Microelectronics and Material Sciences, (v) Power engineering and mechatronics, (vi) Mobile Software, Internet of Things and Wearable Devices, (vii) Solid-state lighting and (viii) Vehicular Technology (land, airborne, and maritime mobile services; automotive, radar systems; antennas and radio wave propagation).
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