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FPGA-Based Implementation of Dual Kalman Filter for PV MPPT Applications

机译:PV MPPT应用中基于FPGA的双卡尔曼滤波器实现

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The way of implementing an adaptive maximum power point tracking algorithm for photovoltaic (PV) applications in a field programmable gate array (FPGA) is described in this paper. A dual Kalman filter allows estimating the settling time of the whole system, including the PV source and the dc/dc converter controlling the operating point thereof, so that the tracking algorithm self adapts its parameters to the actual weather conditions. The real-time identification need of this application requires an FPGA platform, so that the intrinsic algorithm parallelism is exploited and the execution time is reduced. The tradeoff solutions proposed in this paper, accounting for the algorithm complexity and the limited FPGA hardware, as well as some solutions for optimizing the implementation are described. The proposed adaptive algorithm is implemented in a low-cost Xilinx Spartan-6 FPGA and it is validated through experimental tests.
机译:本文介绍了在现场可编程门阵列(FPGA)中为光伏(PV)应用实现自适应最大功率点跟踪算法的方法。双卡尔曼滤波器可以估算整个系统的建立时间,包括控制其工作点的PV源和dc / dc转换器,因此跟踪算法可以根据实际天气状况自动调整其参数。此应用程序的实时识别需求需要一个FPGA平台,以便利用固有算法并行性并减少执行时间。本文提出了权衡解决方案,考虑了算法的复杂性和有限的FPGA硬件,并介绍了一些优化实现的解决方案。所提出的自适应算法在低成本的Xilinx Spartan-6 FPGA中实现,并通过实验测试进行了验证。

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