Development and Accuracy Assessment of a High-Precision Dual-Axis Pre-Commercial Solar Tracker for Concentrating Photovoltaic Modules

被引:16
作者
Angulo-Calderon, Marthoz [1 ]
Salgado-Transito, Ivan [2 ]
Trejo-Zuniga, Ivan [3 ]
Paredes-Orta, Carlos [2 ]
Kesthkar, Sajjad [4 ,5 ]
Diaz-Ponce, Arturo [2 ]
机构
[1] Ctr Invest Opt, Unidad Aguascalientes, Prol Constituc 607, Aguascalientes 20200, Aguascalientes, Mexico
[2] CONACYT Ctr Invest Opt, Unidad Aguascalientes, Prol Constituc 607, Aguascalientes 20200, Aguascalientes, Mexico
[3] Univ Tecnol San Juan Rio, Lab Energy Innovat & Intelligent & Sustainable Ag, Av La Palma 125, Vista Hermosa 76800, Queretaro, Mexico
[4] Inst Politecn Nacl, ESIME Unidad Ticoman, Mexico City 07340, DF, Mexico
[5] Tecnol Monterry, Sch Engn & Sci, Altamira 89600, Mexico
来源
APPLIED SCIENCES-BASEL | 2022年 / 12卷 / 05期
关键词
solar tracking system; solar tracker; concentrating solar power; on-off control; concentration photovoltaics; Arduino; PARALLEL ROBOT; SUN TRACKING; DESIGN; SYSTEMS; MANIPULATOR;
D O I
10.3390/app12052625
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In recent decades, advances in the development of solar tracking systems (STSs) have led to concentrating solar technologies to increase their energy conversion efficiency. These systems, however, still have areas of opportunity or improving their performance and reducing their manufacturing costs. This paper presents the design, construction and evaluation of a high-precision dual-axis solar tracking system with a technology readiness level of 7-8. The system is controlled by a low-cost Arduino board in a closed-loop control using a micro-electromechanical solar sensor. Real-time tracking experiments were performed under a clear sky as well as during partly and mostly cloudy days. Solar tracking accuracy was evaluated in an operational environment using test procedures adapted from the International Electrotechnical Commission (IEC) 62817 standard. The total mean instantaneous solar tracking error on a clear day measured with a calibrated digital solar sensor was 0.37 degrees and 0.52 degrees with a developed pinhole projection system. Similarly, the total mean reported solar tracking accuracy achieved was 0.390 degrees on a sunny day and 0.536 degrees on a partially cloudy day. An annual power generation analysis considering a conventional photovoltaic (PV) panel system and a typical concentrator photovoltaic (CPV) module as payloads was also presented. Simulations showed an increase in the generation of up to 37.5% for a flat panel with dual-axis tracking versus a fixed panel. In the case of the CPV system, first, a ray tracing study was implemented to determine the misalignment coefficient, then the annual power generation was estimated. The developed STS allowed the CPV modules to reach at least 90% of their nominal energy conversion efficiency.
引用
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页数:21
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