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Design and Implementation of an Automatic Control for Two Axis Tracking System for Applications of Concentrated Solar Thermal Power

机译:用于浓缩太阳能热功率应用的两个轴跟踪系统自动控制的设计与实现

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摘要

The present work presents design and implementation of an automated two-axis solar tracking system using local materials with minimum cost, light weight and reliable structure. The tracking system consists of two parts, mechanical units (fixed and moving parts) and control units (four LDR sensors and Arduino UNO microcontroller to control two DC servomotors). The tracking system was fitted and assembled together with a parabolic trough solar concentrator (PTSC) system to move it according to information come from the sensors so as to keep the PTSC always perpendicular to sun rays. The experimental tests have been done on the PTSC system to investigate its thermal performance in two cases, with tracking system (case 1) and without tracking system (case 2). The experimental results showed that the average solar radiation falling on the PTSC prototype in the two cases during the same time was 854 and 701 watt/m2, respectively, which means an increase in the solar radiation about 21.8 % when using tracking system. It was found that the average useful heat gain output of solar collector was equal to (376.2, 252.6 watt) for the two cases, respectively, so there was an increase of about 48.9 % when using the tracking system. Also, the average thermal efficiency of the PTSC was found to be (20.7, 26.5 %) for the two cases, respectively, which means an increase in the average efficiency by 28% with use of tracking system compared to the fixed case.
机译:本工作介绍了使用最小成本,重量轻,可靠结构的本地材料的自动双轴太阳能跟踪系统的设计和实现。跟踪系统由两部分,机械单元(固定和移动部件)和控制单元(四个LDR传感器和Arduino Uno MicroController进行控制,以控制两个直流伺服电机)。跟踪系统与抛物线槽太阳能聚光器(PTSC)系统一起装配并组装,以根据信息来自传感器,以使PTSC保持始终垂直于太阳光线。已经在PTSC系统上进行了实验测试,以研究其两种情况下的热性能,其中跟踪系统(壳体1)和没有跟踪系统(壳体2)。实验结果表明,在同一时间的两种情况下,落在PTSC原型的平均太阳辐射分别为854和701瓦特/ M2,这意味着在使用跟踪系统时的太阳辐射增加约21.8%。结果发现,两种情况下,太阳能收集器的平均有用热增益输出分别等于(376.2,252.6瓦),因此使用跟踪系统时增加约48.9%。此外,发现PTSC的平均热效率分别是两种情况的(20.7,26.5%),这意味着与固定壳体相比,使用跟踪系统的平均效率的增加28%。

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