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MODEL PREDICTIVE CONTROL FOR ENERGY MAXIMIZATION OF SMALL VERTICAL AXIS WIND TURBINES

机译:小垂直轴风轮机能量最大化的模型预测控制

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In this paper, a model predictive control (MPC) approach is presented to maximize the energy generated by a small vertical axis wind turbine (VAWT) subject to current and voltage constraints of electrical and power electronic components. Our method manipulates a load coefficient and optimizes the control trajectory over a prediction horizon such that a cost function that measures the deviation from the maximum available energy and the violation of current and voltage constraints is minimized. Simplified models for the VAWT and a permanent magnet generator have been used. A number of simulations have been carried out to demonstrate the performance of the proposed method at step and oscillatory wind conditions. Furthermore, impacts of the constraints on energy generation have been investigated. Moreover, the performance of the MPC has been compared with a typical maximum power point tracking algorithm in order to show that maximizing the instantaneous power does not mean maximizing the energy; and simulation results have shown that the MPC outperforms the maximum power point tracking algorithm in terms of generated energy by allowing deviations from the maximum power instantaneously for future gains in energy generation.
机译:在本文中,提出了一种模型预测控制(MPC)方法,以使小型垂直轴风力涡轮机(VAWT)所产生的能量最大化,从而不受电气和电力电子组件的电流和电压限制。我们的方法可操纵负载系数,并在预测范围内优化控制轨迹,从而使测量与最大可用能量的偏差以及违反电流和电压约束的成本函数最小化。使用了VAWT和永磁发电机的简化模型。已经进行了许多模拟,以证明所提出的方法在有风和有风的条件下的性能。此外,已经研究了约束对能量产生的影响。此外,已将MPC的性能与典型的最大功率点跟踪算法进行了比较,以表明最大化瞬时功率并不意味着最大化能量。仿真结果表明,MPC通过允许瞬时偏离最大功率,从而在将来的发电中获得更大的发电能量,其性能优于最大功率点跟踪算法。

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