首页|期刊导航|工程研究——跨学科视野中的工程|边远农牧地区孤岛运行光储交直流微电网控制策略研究

边远农牧地区孤岛运行光储交直流微电网控制策略研究OA

Research on Automatic Power Coordination Control Strategy of Off-Grid Optical Storage AC-DC Microgrid

中文摘要英文摘要

光储微电网主要包括光伏发电单元、储能设备、互联变换器和交直流负荷.在孤岛运行时,存在电能质量差、系统稳定性差等问题,因此需要建立发电、储能和交直流负荷间的自动功率协调控制策略,保证光能高效利用,维持系统的安全与稳定.为此,提出一种适用于光储一体微电网在孤网运行模式下的自动功率协调控制策略.对直流-直流变换器采用稳压控制,为逆变器提供稳定的直流电压,提高系统稳定性,对交直流变换器采用恒压恒频控制策略维持交流侧稳定的功率输出,以直流母线电压为平衡节点,发电单元、储能单元、互联变换器三者协同动作,实现网间自动功率协调.基于偏远农牧户和边防哨所用电工程设计案例,通过Simulink/Matlab仿真平台,验证了该控制设计策略可实现光储一体孤岛微电网的自动功率协调控制.

In the context of economic globalization,the escalating demand for electricity from residential,commercial,and industrial sectors has accelerated the depletion of non-renewable energy resources such as coal,oil,and natural gas.Coupled with mounting environmental concerns,this trend has prompted global efforts to accelerate the development of renewable energy technologies,with solar energy emerging as a primary focus.As part of this international movement,China has been steadily advancing its sustainable energy development strategy to optimize energy structure and reduce carbon emissions. However,the inherent limitations of distributed power generation systems—including intermittent power output,low operational flexibility,and grid integration challenges—necessitate innovative solutions.Microgrids have emerged as a promising technical approach to address these issues,particularly in remote or off-grid areas where reliable power supply cannot be guaranteed by conventional utility grids.Presently,microgrid systems are classified into three operational architectures:DC microgrids,AC microgrids,and hybrid AC/DC microgrids.The hybrid configuration,which integrates the complementary advantages of both AC and DC systems,has become a focal area of contemporary research. For isolated microgrids operating in island mode,the photovoltaic(PV)storage AC/DC hybrid system represents a critical technological solution.This system architecture typically comprises PV generation units,battery energy storage systems(BESS),AC/DC busbars,interlinking power converters,and bidirectional AC/DC loads.Given the inherent volatility and unpredictability of standalone PV systems,BESS plays a pivotal role as an energy buffer to mitigate power imbalances.To ensure efficient solar energy utilization while preventing premature battery degradation from overcharging/discharging,a sophisticated collaborative power regulation mechanism must be established among generation,storage,and load components. This paper proposes an adaptive power coordination control strategy specifically designed for islanded PV storage AC/DC microgrids.The control architecture adopts a hierarchical structure:(1)the energy storage system maintains DC bus voltage stability through droop control or model predictive control algorithms;(2)the interlinking converter implements a V/f(voltage-frequency)control strategy to establish stable AC subnet parameters;and(3)the DC bus voltage serves as the system's power balance reference,enabling autonomous power coordination among PV arrays,BESS,and converters. Simulation validation on a real-time digital simulator demonstrates the strategy's efficacy across three operational scenarios: (1)Under varying environmental conditions(temperature fluctuations,irradiance changes),the PV system achieves accurate maximum power point tracking(MPPT)with>98%efficiency. (2)The V/F-controlled interlinking converter maintains AC subnet voltage within±2%of rated value and frequency stability within±0.1 Hz,providing reliable reference signals for downstream loads. (3)During abrupt load transitions(±50%step changes in AC/DC demand),the DC bus voltage remains regulated within 3%deviation from nominal value,while the BESS exhibits smooth power absorption/injection characteristics following predefined state-of-charge(SOC)constraints. This control paradigm not only ensures stable operation of islanded microgrids but also prolongs energy storage system lifespan through intelligent power dispatch,offering a viable solution for decentralized renewable energy deployment in remote regions.

于溱;曹效义;杨柄元

内蒙古工业大学 电力学院,呼和浩特 010080内蒙古电力经济技术研究院,呼和浩特 010020内蒙古工业大学 电力学院,呼和浩特 010080

信息技术与安全科学

光伏发电储能系统光储一体孤岛微电网自动功率协调

photovoltaic power generationenergy storage systemAC-DC hybrid microgridautomatic power coordination

《工程研究——跨学科视野中的工程》 2026 (1)

28-40,13

10.3724/j.issn.1674-4969.20240138

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