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Load Frequency Control in Isolated Micro-Grids with Electrical Vehicles Based on Multivariable Generalized Predictive Theory

机译:基于多变量广义预测理论的电动汽车隔离微电网负荷频率控制

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In power systems, although the inertia energy in power sources can partly cover power unbalances caused by load disturbance or renewable energy fluctuation, it is still hard to maintain the frequency deviation within acceptable ranges. However, with the vehicle-to-grid (V2G) technique, electric vehicles (EVs) can act as mobile energy storage units, which could be a solution for load frequency control (LFC) in an isolated grid. In this paper, a LFC model of an isolated micro-grid with EVs, distributed generations and their constraints is developed. In addition, a controller based on multivariable generalized predictive control (MGPC) theory is proposed for LFC in the isolated micro-grid, where EVs and diesel generator (DG) are coordinated to achieve a satisfied performance on load frequency. A benchmark isolated micro-grid with EVs, DG, and wind farm is modeled in the Matlab/Simulink environment to demonstrate the effectiveness of the proposed method. Simulation results demonstrate that with MGPC, the energy stored in EVs can be managed intelligently according to LFC requirement. This improves the system frequency stability with complex operation situations including the random renewable energy resource and the continuous load disturbances.
机译:在电力系统中,尽管电源中的惯性能量可以部分弥补由负载扰动或可再生能源波动引起的功率不平衡,但仍然很难将频率偏差保持在可接受的范围内。但是,通过车对网(V2G)技术,电动汽车(EV)可以充当移动储能单元,这可能是隔离电网中负载频率控制(LFC)的解决方案。在本文中,建立了带有电动汽车,分布式发电及其约束的隔离微电网的LFC模型。此外,针对孤立微电网中的LFC提出了一种基于多变量广义预测控制(MGPC)理论的控制器,在该控制器中,电动汽车和柴油发电机(DG)相互配合以实现满意的负载频率性能。在Matlab / Simulink环境中对具有EV,DG和风电场的基准隔离微电网进行了建模,以证明该方法的有效性。仿真结果表明,借助MGPC,可以根据LFC要求对电动汽车中存储的能量进行智能管理。在复杂的运行情况下,包括随机的可再生能源和连续的负载干扰,这可以提高系统的频率稳定性。

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