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Knowledge-Based Sensors for Controlling A High-Concentration Photovoltaic Tracker

机译:基于知识的传感器用于控制高浓度光伏跟踪器

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摘要

To reduce the cost of generated electrical energy, high-concentration photovoltaic systems have been proposed to reduce the amount of semiconductor material needed by concentrating sunlight using lenses and mirrors. Due to the concentration of energy, the use of tracker or pointing systems is necessary in order to obtain the desired amount of electrical energy. However, a high degree of inaccuracy and imprecision is observed in the real installation of concentration photovoltaic systems. The main objective of this work is to design a knowledge-based controller for a high-concentration photovoltaic system (HCPV) tracker. The methodology proposed consists of using fuzzy rule-based systems (FRBS) and to implement the controller in a real system by means of Internet of Things (IoT) technologies. FRBS have demonstrated correct adaptation to problems having a high degree of inaccuracy and uncertainty, and IoT technology allows use of constrained resource devices, cloud computer architecture, and a platform to store and monitor the data obtained. As a result, two knowledge-based controllers are presented in this paper: the first based on a pointing device and the second based on the measure of the electrical current generated, which showed the best performance in the experiments carried out. New factors that increase imprecision and uncertainty in HCPV solar tracker installations are presented in the experiments carried out in the real installation.
机译:为了降低产生的电能的成本,已经提出了高浓度的光伏系统,以通过使用透镜和镜子聚集日光来减少所需的半导体材料的量。由于能量的集中,有必要使用跟踪器或指示系统以获得所需的电能。然而,在实际安装的聚光光伏系统中观察到高度的不准确性和不精确性。这项工作的主要目的是为高浓度光伏系统(HCPV)跟踪器设计基于知识的控制器。提出的方法包括使用基于模糊规则的系统(FRBS)并通过物联网(IoT)技术在实际系统中实现控制器。 FRBS已经证明了对具有高度不准确性和不确定性的问题的正确适应,并且IoT技术允许使用受约束的资源设备,云计算机体系结构以及用于存储和监视所获得数据的平台。因此,本文提出了两个基于知识的控制器:第一个基于指针设备,第二个基于生成的电流量,在实验中显示出最佳性能。在实际安装中进行的实验中介绍了增加HCPV太阳能跟踪器安装的不精确性和不确定性的新因素。

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