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Decentralized Model Predictive Control of Plug-in Electric Vehicles Charging based on the Alternating Direction Method of Multipliers

机译:基于乘数交替方向法的插电式电动汽车充电分散模型预测控制

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This paper presents a decentralized Model Predictive Control (MPC) for Plug-in Electric Vehicles (PEVs) charging, in presence of both network and drivers' requirements. The open loop optimal control problem at the basis of MPC is modeled as a consesus with regularization optimization problem and solved by means of the decentralized Alternating Direction Method of Multipliers (ADMM). Simulations performed on a realistic test case show the potential of the proposed control approach and allow to provide a preliminary evaluation of the compatibility between the required computational effort and the application in real time charging control system.
机译:本文提出了一种在兼顾网络和驾驶员需求的情况下,用于插电式电动汽车(PEV)充电的分散模型预测控制(MPC)。将基于MPC的开环最优控制问题建模为一个带有正则化优化问题的问题,并通过分散的乘数交替方向法(ADMM)加以解决。在实际的测试用例上进行的仿真显示了所提出的控制方法的潜力,并允许对所需的计算工作量与实时充电控制系统中的应用之间的兼容性进行初步评估。

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