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Robust Energy Management of a Hybrid Wind and Flywheel Energy Storage System Considering Flywheel Power Losses Minimization and Grid-Code Constraints

机译:考虑飞轮功率损耗最小化和电网规范约束的混合风飞轮储能系统的鲁棒能源管理

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The maximum power and power ramp rate are important grid codes for integrating renewable energy resources in transmission systems. The power curtailment regulates the maximum power and ramp rate; however, adding an energy storage system (ESS) can time shift surplus wind energy instead of curtailing it. The flywheel energy storage system (FESS) has the advantages of high efficiency and long lifetime; however, it has non-negligible standby losses and its lifetime is reduced exponentially as the rotating speed increases. Considering such practical constraints, this work presents an energy management system (EMS) for a hybrid power system composed of a wind farm with a FESS. The FESS time shifts the surplus wind energy to respect the grid codes and reduce wind curtailment; meanwhile, the EMS aims at minimizing the FESS standby losses and boosting its lifetime using the predicted wind power data. The EMS is composed of two controllers. The first controller is a linear model predictive controller that defines the long-term FESS power set-point. The second controller is a real-time adaptive hysteresis controller that compensates for the wind-power prediction error. Comparative simulation studies and hardware-in-the-loop test results validate the effectiveness of the proposed EMS in reducing the FESS losses while respecting the grid integration code constraints.
机译:最大功率和功率斜率是用于在传输系统中集成可再生能源的重要电网代码。功率限制调节最大功率和斜坡率;但是,增加一个储能系统(ESS)可以时移多余的风能,而不是减少它。飞轮储能系统(FESS)具有效率高,寿命长的优点。但是,它具有不可忽略的待机损耗,并且随着转速的增加,其使用寿命将成倍缩短。考虑到这样的实际限制,这项工作提出了一种用于由风电场和FESS组成的混合动力系统的能源管理系统(EMS)。 FESS时间转移了多余的风能,以遵守电网法规并减少风的削减;同时,EMS的目标是利用预测的风能数据将FESS待机损耗降至最低,并延长其使用寿命。 EMS由两个控制器组成。第一个控制器是定义长期FESS功率设定点的线性模型预测控制器。第二控制器是实时自适应磁滞控制器,用于补偿风电预测误差。对比仿真研究和硬件在环测试结果验证了所提出的EMS在降低FESS损失的同时尊重网格集成代码约束的有效性。

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