Design, manufacturing and indoor/outdoor testing of a hybrid thermoelectric-concentrator photovoltaic mono-module at unprecedented ultra-high concentration levels

被引:11
作者
Valera, Alvaro [1 ]
Rodrigo, Pedro M. [2 ]
Ceballos, Maria A. [1 ]
Almonacid, Florencia [1 ]
Fernandez, Eduardo F. [1 ]
机构
[1] Univ Jaen UJA, Ctr Adv Studies Earth Sci Energy & Environm CEACT, Adv Photovolta Technol Res Grp AdvPVTech UJA, Las Lagunillas Campus, Jaen 23071, Spain
[2] Univ Panamer, Fac Ingn, Josemaria Escr Balaguer 101, Aguascalientes 20296, Aguascalientes, Mexico
关键词
Concentrator photovoltaics; Hybrid system; Thermoelectric generator; Ultra-high concentration; Performance evaluation; GENERATOR; PERFORMANCE; SYSTEM; ENERGY; FEASIBILITY; TEMPERATURE; BEHAVIOR; IMPACT;
D O I
10.1016/j.solmat.2023.112269
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Hybrid concentrator photovoltaic-thermoelectric systems aim to increase the conversion efficiency of sunlight to electricity by recovering part of the waste heat generated in the photovoltaic cells by means of thermoelectricity. They are in a research stage, with many theoretical predictions of their potential benefits, especially when increasing the light concentration ratio, but few experimental demonstrations. They have been never tested under ultra-high concentration levels (>2000x). In this paper, the results of an experimental assessment of the state-of-the-art technology to develop such hybrid systems under extreme concentrations are presented. A hybrid mono-module was designed, manufactured and tested under ultra-high concentration both indoors and outdoors. Indoor experiments used a steady light sun simulator for effective low concentrations from 1.3 to 17.2 suns and a multi-flash simulator for geometric concentrations from 476x to 3600x. Outdoor experiments covered concen-trations between 476x and 2066x. A conventional concentrator photovoltaic-only mono-module was also tested outdoors for comparison purposes. The experimental characterization of the prototype showed that some opti-mistic values used in the theoretical predictions (such as the temperature coefficients of the solar cell, the thermoelectric efficiency or the optical efficiency of conventional concentrators) cannot be fulfilled with the current commercially available components. Results of the outdoor measurements exhibit a similar energetic behaviour of the hybrid system compared to the conventional system at 476x. For higher concentrations, the performance of the hybrid system is poorer than that of the conventional system due to a faster degradation of the optical, thermal and electrical behaviour. The solar cell was damaged when it reached 194 degrees C at 2066x outdoors. The study sheds light on the limits of the current technology and identifies improvement research areas: optical systems for ultra-high concentration, solar cells with a wider operating temperature range and lower temperature and series resistance losses, thermoelectric generators with higher figure-of-merit and inno-vative cooling systems. These areas need to be explored to reach experimentally the potential benefits of this technology.
引用
收藏
页数:17
相关论文
共 55 条
[41]   Cooling of photovoltaic cells under concentrated illumination: a critical review [J].
Royne, A ;
Dey, CJ ;
Mills, DR .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2005, 86 (04) :451-483
[42]   Experimental and simulation investigations of CPV/TEG hybrid system [J].
Sabry, Mohamed ;
Lashin, Abdelrahman ;
Al Turkestani, Mohammed .
JOURNAL OF KING SAUD UNIVERSITY SCIENCE, 2021, 33 (02)
[43]   Experimental characterisation of irradiance and spectral non-uniformity and its impact on multi-junction solar cells: Refractive vs. reflective optics [J].
Saura, Jose M. ;
Rodrigo, Pedro M. ;
Almonacid, Florencia M. ;
Chemisana, Daniel ;
Fernandez, Eduardo F. .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2021, 225
[44]   A > 3000 suns high concentrator photovoltaic design based on multiple Fresnel lens primaries focusing to one central solar cell [J].
Shanks, Katie ;
Ferrer-Rodriguez, Juan P. ;
Fernandez, Eduardo F. ;
Almonacid, Florencia ;
Perez-Higueras, Pedro ;
Senthilarasu, S. ;
Mallick, Tapas .
SOLAR ENERGY, 2018, 169 :457-467
[45]   Comprehensive study and optimization of concentrated photovoltaic-thermoelectric considering all contact resistances [J].
Shittu, Samson ;
Li, Guiqiang ;
Zhao, Xudong ;
Ma, Xiaoli ;
Akhlaghi, Yousef Golizadeh ;
Fan, Yi .
ENERGY CONVERSION AND MANAGEMENT, 2020, 205
[46]   Comparative study of a concentrated photovoltaic-thermoelectric system with and without flat plate heat pipe [J].
Shittu, Samson ;
Li, Guiqiang ;
Zhao, Xudong ;
Akhlaghi, Yousef Golizadeh ;
Ma, Xiaoli ;
Yu, Min .
ENERGY CONVERSION AND MANAGEMENT, 2019, 193 :1-14
[47]   Analysis of temperature coefficients for III-V multi-junction concentrator cells [J].
Siefer, Gerald ;
Bett, Andreas W. .
PROGRESS IN PHOTOVOLTAICS, 2014, 22 (05) :515-524
[48]   Hybrid Photovoltaic and Thermoelectric Module for High Concentration Solar System [J].
Tamaki, Ryo ;
Toyoda, Takeshi ;
Tamura, Yoichi ;
Matoba, Akinari ;
Minamikawa, Toshiharu ;
Tokuda, Masayuki ;
Masui, Megumi ;
Okada, Yoshitaka .
13TH INTERNATIONAL CONFERENCE ON CONCENTRATOR PHOTOVOLTAIC SYSTEMS (CPV-13), 2017, 1881
[49]   Modeling and experimental research of hybrid PV-thermoelectric system for high concentrated solar energy conversion [J].
Teffah, Khaled ;
Zhang, Youtong .
SOLAR ENERGY, 2017, 157 :10-19
[50]   Multiphysics modelling and experimental validation of high concentration photovoltaic modules [J].
Theristis, Marios ;
Fernandez, Eduardo F. ;
Sumner, Mike ;
O'Donovan, Tadhg S. .
ENERGY CONVERSION AND MANAGEMENT, 2017, 139 :122-134