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首页> 外文期刊>Progress in Artificial Intelligence >Development of a High-Performance, FPGA-Based Virtual Anemometer for Model-Based MPPT of Wind Generators
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Development of a High-Performance, FPGA-Based Virtual Anemometer for Model-Based MPPT of Wind Generators

机译:基于模型的风力发电机MPPT的基于高性能的基于FPGA的虚拟风速计的开发

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Model-based maximum power point tracking (MPPT) of wind generators (WGs) eliminates dead times and increases energy yield with respect to iterative MPPT techniques. However, it requires the measurement of wind speed. Under this premise, this paper describes the implementation of a high-performance virtual anemometer on a field programmable gate array (FPGA) platform. Said anemometer is based on a growing neural gas artificial neural network that learns and inverts the mechanical characteristics of the wind turbine, estimating wind speed. The use of this device in place of a conventional anemometer to perform model-based MPPT of WGs leads to higher reliability, reduced volume/weight, and lower cost. The device was conceived as a coprocessor with a slave serial peripheral interface (SPI) to communicate with the main microprocessor/digital signal processor (DSP), on which the control system of the WG was implemented. The best compromise between resource occupation and speed was achieved through suitable hardware optimizations. The resulting design is able to exchange data up to a 100 kHz rate; thus, it is suitable for high-performance control of WGs. The device was implemented on a low-cost FPGA, and its validation was performed using input profiles that were experimentally acquired during the operation of two different WGs.
机译:风力发电机(WGS)的基于模型的最大功率点跟踪(MPPT)消除了死亡时间并增加了迭代MPPT技术的能量产量。但是,它需要测量风速。在此之前,本文介绍了在现场可编程门阵列(FPGA)平台上的高性能虚拟风速计的实现。所述风速计基于一个不断增长的神经气体气体人工神经网络,用于学习和反转风力涡轮机的机械特性,估计风速。使用该装置代替传统的风速计以执行WG的基于模型的MPPT,导致更高的可靠性,减小体积/重量和更低的成本。将该设备构思为具有从属串行外围接口(SPI)的协处理器,以与主微处理器/数字信号处理器(DSP)通信,其中实现WG的控制系统。通过合适的硬件优化实现了资源职业和速度之间的最佳折衷。由此产生的设计能够将数据交换到100 kHz的速率;因此,它适用于WG的高性能控制。该装置在低成本的FPGA上实现,并且它使用在两个不同WG的操作期间实验地获取的输入配置文件来执行其验证。

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