Changes in the Efficiency of Photovoltaic Energy Conversion in Temperature Range With Extreme Limits

被引:65
作者
Libra, Martin [1 ]
Petrik, Tomas [1 ]
Poulek, Vladislav [1 ]
Tyukhov, Igor I. [2 ]
Kourim, Pavel [1 ]
机构
[1] Czech Univ Life Sci Prague, Prague 16500, Czech Republic
[2] San Jose State Univ, Dept Mech Engn, San Jose, CA 95192 USA
来源
IEEE JOURNAL OF PHOTOVOLTAICS | 2021年 / 11卷 / 06期
关键词
Temperature measurement; Temperature dependence; Temperature distribution; Semiconductor device measurement; Current measurement; Extraterrestrial measurements; Energy conversion; Efficiency; energy conversion; photovoltaics; solar energy; MODULE TEMPERATURE; DEPENDENCE; PERFORMANCE; PARAMETERS; MODELS; POWER;
D O I
10.1109/JPHOTOV.2021.3108484
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
The efficiency of the photovoltaic energy conversion depends on the temperature significantly. We monitored the behavior of I-V characteristics of the PV cell based on monocrystalline silicon in temperature range with extreme limits from -170 degrees C to +100 degrees C. We have not yet found a similar measurement in this temperature interval. The temperature of PV modules without radiation concentration can reach values of -100 degrees C to +100 degrees C on the Earth's surface. The temperature range may be few wider in space. Changes of I-V characteristics and P-V characteristics are discussed in terms of the theory of solids. The open-circuit voltage dependence is approximately linear over a wide temperature range, but saturation occurs at temperatures around -150 degrees C, which is also explained in accordance with the theory of semiconductors. The decrease in energy conversion efficiency with increasing temperature has a value of about 0.5%/degrees C throughout the whole temperature range possible on the Earth's surface. If there are large changes in the temperature of the PV modules during operation of the PV system, the electrical voltage of the PV modules will also change considerably. In space applications, these fluctuations may be greater. This must be taken into account when designing PV systems (especially for deep space missions). For example, electronic inverters are sensitive to overvoltage or undervoltage.
引用
收藏
页码:1479 / 1484
页数:6
相关论文
共 35 条
[1]  
Arbuzov Y. D., 2008, FUNDAMENTALS PHOTOVO, P70
[2]   Performance modeling and testing of a Building Integrated Concentrating Photovoltaic (BICPV) system [J].
Baig, Hasan ;
Sellami, Nazmi ;
Mallick, Tapas K. .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2015, 134 :29-44
[3]   Influence of Roof Installation of PV Modules on the Microclimate Conditions of Cattle Breeding Objects [J].
Bilcik, Matus ;
Bozikova, Monika ;
Cimo, Jan .
APPLIED SCIENCES-BASEL, 2021, 11 (05) :1-20
[4]   Characterization of a photovoltaic-thermal module for Fresnel linear concentrator [J].
Chemisana, D. ;
Ibanez, M. ;
Rosell, J. I. .
ENERGY CONVERSION AND MANAGEMENT, 2011, 52 (10) :3234-3240
[5]   Module temperature models assessment of photovoltaic seasonal energy yield [J].
Correa-Betanzo, Carlos ;
Calleja, Hugo ;
De Leon-Aldaco, Susana .
SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2018, 27 :9-16
[6]   Sensitivity analysis of implicit correlations for photovoltaic module temperature: A review [J].
Coskun, Can ;
Toygar, Ugurtan ;
Sarpdag, Ozgur ;
Oktay, Zuhal .
JOURNAL OF CLEANER PRODUCTION, 2017, 164 :1474-1485
[7]   Estimation of irradiance and temperature using photovoltaic modules [J].
da Costa, Wagner Teixeira ;
Fardin, Jussara Farias ;
Machado Neto, Lauro de Vilhena B. ;
Lyrio Simonetti, Domingos Savio .
SOLAR ENERGY, 2014, 110 :132-138
[8]   Photovoltaic Degradation Rate Affected by Different Weather Conditions: A Case Study Based on PV Systems in the UK and Australia [J].
Dhimish, Mahmoud ;
Alrashidi, Abdullah .
ELECTRONICS, 2020, 9 (04)
[9]   Physics of the temperature coefficients of solar cells [J].
Dupre, O. ;
Vaillon, R. ;
Green, M. A. .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2015, 140 :92-100
[10]   A full thermal model for photovoltaic devices [J].
Dupre, Olivier ;
Vaillon, Rodolphe ;
Green, Martin A. .
SOLAR ENERGY, 2016, 140 :73-82