Modeling and Energy Management of a Microgrid Based on Predictive Control Strategies

Pub Date : 2023-01-10 DOI:10.3390/solar3010005
Álex Omar Topa Gavilema, J. D. Gil, J. Á. Álvarez Hervás, José Luis Torres Moreno, Manuel Pérez García
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引用次数: 2

Abstract

This work presents the modeling and energy management of a microgrid through models developed based on physical equations for its optimal control. The microgrid’s energy management system was built with one of the most popular control algorithms in microgrid energy management systems: model predictive control. This control strategy aims to satisfy the load demand of an office located in the CIESOL bioclimatic building, which was placed in the University of Almería, using a quadratic cost function. The simulation scenarios took into account real simulation parameters provided by the microgrid of the building. For case studies of one and five days, the optimization was aimed at minimizing the input energy flows of the microgrid and the difference between the energy generated and demanded by the load, subject to a series of physical constraints for both outputs and inputs. The results of this work show how, with the correct tuning of the control strategy, the energy demand of the building is covered through the optimal management of the available energy sources, reducing the energy consumption of the public grid, regarding a wrong tuning of the controller, by 1 kWh per day for the first scenario and 7 kWh for the last.
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基于预测控制策略的微电网建模与能量管理
这项工作通过基于其最优控制的物理方程开发的模型,介绍了微电网的建模和能量管理。微电网的能量管理系统采用了微电网能量管理系统中最流行的控制算法之一:模型预测控制。该控制策略旨在满足位于CIESOL生物气候建筑的办公室的负载需求,该建筑位于Almería大学,使用二次成本函数。仿真场景考虑了建筑微电网提供的真实仿真参数。对于1天和5天的案例研究,优化的目的是在输出和输入都受到一系列物理约束的情况下,最大限度地减少微电网的输入能量流以及负载产生和需求的能量差。这项工作的结果表明,通过正确调整控制策略,通过对可用能源的优化管理来覆盖建筑物的能源需求,减少公共电网的能源消耗,由于控制器的错误调整,第一种情况每天减少1千瓦时,最后一种情况每天减少7千瓦时。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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