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Model Predictive Control for Modular Multilevel Converters based on a Box-constrained Quadratic Problem Solver

机译:基于盒子约束二次问题求解器的模块化多级转换器模型预测控制

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The model predictive control (MPC) method has become more popular and widely used to control power converters due to its fast dynamic response and easy implementation. With the MPC method, it is simple to achieve multiple control objectives and handle the system constraints and nonlinearities by using a cost function. MPC can also be employed on the modular multilevel converters (MMCs) to achieve the control of output currents, circulating currents and DC-link voltage/ current. However, the biggest obstacle to applying MPC on the MMC is the huge calculation. To achieve the optimal switching state, MPC needs to evaluate all the possible switching states. As the number of submodules (SMs) increases, the number of the switching states drastically increases, which puts a huge computational burden on the processor. To solve this problem, the MPC with a box-constrained quadratic programming solver has been proposed. In this method, a quadratic problem (QP) has been solved firstly. Based on this solution, the possible switching combinations have been determined. Instead of evaluating all the possible switching states, only a very small number of switching combinations needs to be evaluated. Besides, by using this method, the computational burden does not increase as the number of SMs increases.
机译:由于其快速动态响应和简单实现,模型预测控制(MPC)方法变得更加流行且广泛用于控制电源转换器。通过MPC方法,通过使用成本函数实现多种控制目标并处理系统约束和非线性的简单。 MPC也可以用于模块化多电平转换器(MMC),以实现输出电流,循环电流和DC-LING电压/电流的控制。然而,在MMC上应用MPC的最大障碍是巨大的计算。为了实现最佳切换状态,MPC需要评估所有可能的交换状态。随着子模块(SMS)的数量增加,交换状态的数量大幅增加,这对处理器进行了巨大的计算负担。为了解决这个问题,已经提出了具有盒子约束的二次编程解器的MPC。在该方法中,首先解决了二次问题(QP)。基于该解决方案,已经确定了可能的切换组合。不需要评估所有可能的切换状态,而不是评估所有可能的交换状态。此外,通过使用这种方法,随着SMS的数量增加,计算负担不会增加。

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