Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators J. Electron. Packag. 2014;136(4): doi: / (a) Section of the hybrid system and (b) schematic of the TEG panel Figure Legend:
Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators J. Electron. Packag. 2014;136(4): doi: / Layout of the proposed TEG Figure Legend:
Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators J. Electron. Packag. 2014;136(4): doi: / Surfaces with boundary condition for electric part Figure Legend:
Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators J. Electron. Packag. 2014;136(4): doi: / PV cells' temperature distribution along flow direction for different mesh refinement at a fixed inlet velocity Figure Legend:
Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators J. Electron. Packag. 2014;136(4): doi: / Model validations with maximum power output at the reference condition (T in_cold = 293 K, G in_Hot = 0.4 m 3 /h, and G in_Cold = 0.3 m 3 /h) Figure Legend:
Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators J. Electron. Packag. 2014;136(4): doi: / Single TE module's open voltage and maximal power generated upon the temperature difference Figure Legend:
Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators J. Electron. Packag. 2014;136(4): doi: / Effect of flow rate on electrical efficiencies Figure Legend:
Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators J. Electron. Packag. 2014;136(4): doi: / Effect of flow rate on thermal efficiencies Figure Legend:
Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators J. Electron. Packag. 2014;136(4): doi: / PV cell temperature at solar heat flux G = 20 kW/m 2 and inlet velocity u = 0.01 m/s Figure Legend:
Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators J. Electron. Packag. 2014;136(4): doi: / Effect of figure of merit on the electrical efficiency of PV-TE/T system (thickness of TE layer: 1.2 mm) Figure Legend:
Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators J. Electron. Packag. 2014;136(4): doi: / Electrical efficiency of hybrid system as a function of the TE layer's thickness (fixed water inlet velocity of 0.02 m/s) Figure Legend:
Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: Performance Analysis of a Combination System of Concentrating Photovoltaic/Thermal Collector and Thermoelectric Generators J. Electron. Packag. 2014;136(4): doi: / Effect of TE layer's thickness on temperature difference between the TE layer's hot and cool surfaces (fixed water inlet velocity of 0.02 m/s) Figure Legend: