A New Model to Investigate Effect of Heat Conduction Between Tubes on Overall Performance of a Coil Absorber for Flat-Plate Solar Collectors
Abstract
1. Introduction
2. Collector Model and Formulation
2.1. Non-Dimensionalization
2.2. Vectorial Expression of Equations
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
C | in-tube fluid specific heat (J/Kg·K) |
collector absorber plate surface area (m2) | |
tube inner diameter (m) | |
tube outer diameter (m) | |
tube differential length (m) | |
collector heat removal factor | |
g | length of tube–plate contact strip (m) |
j | row number |
in-tube convective heat transfer coefficient (W/m2·K) | |
k | thermal conductivity of tubes and plates (W/m·K) |
thermal conductivity of the in-tube fluid (W/m·K) | |
L | length of each straight section of pipe (m) |
in-tube fluid mass flow rate (kg/s) | |
N | number of straight sections of pipe |
Q | total heat absorbed by the in-tube fluid (W) |
heat absorbed by the tube from adhered plate strip (W) | |
rate of heat transfer from absorber plate to j-th tube (W) | |
heat leaving tube j in the direction of tube (W) | |
heat leaving tube j in the direction of tube (W) | |
heat transferred along the plates (W) | |
R | ratio of heat transfer rates with and without tube-to-tube conduction along the plates |
resistance to heat transfer per unit length between the contact point of the tube–plate and the in-tube fluid (K·m/W) | |
net solar irradiation absorbed by the plate (W) | |
t | plate thickness (m) |
j-th tube fluid temperature (°C) | |
plate temperature (°C) | |
j-th tube–plate contact strip temperature (°C) | |
fluid inlet temperature (°C) | |
fluid outlet temperature (°C) | |
absorber plate overall heat transfer coefficient (W/m2·K) | |
w | distance between adjacent tubes centerline (m) |
z | axial position along the pipe measured from inlet (m) |
ambient air temperature (°C) | |
inner tube diameter-based Nusselt number | |
inner tube diameter-based Reynolds number | |
inner tube fluid Prandtl number | |
f | smooth pipe Darcy–Weisbach friction factor |
fin efficiency of pipe as extended surface | |
j-th tube dimensionless tube–plate contact strip temperature | |
tube thickness (m) | |
j-th tube dimensionless fluid temperature | |
vectorial expression of dimensionless fluid temperature | |
vectorial expression of dimensionless tube–plate contact strip temperature | |
kinematic viscosity of in-tube fluid (m2/s) |
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Symbol | Description | Value | Units |
---|---|---|---|
Absorber plate overall heat transfer coefficient | 5.0 | W/m2· K | |
Inner diameter of tubes | 0.0065 | m | |
Outer diameter of tubes | 0.0075 | m | |
L | Length of straight sections of tubes | 1.857 | m |
t | Thickness of absorber plate | 0.0005 | m |
w | Spacing between adjacent tubes | 0.075 | m |
g | Plate contact length between tubes and plate | 0.00375 | m |
N | Number of tube rows of coil | 10 | |
k | Thermal conductivity of plates and tubes | 400 | W/m·K |
Mass flow rate of water | 0.001 | kg/s | |
Kinematic viscosity of water | 0.000001 | m2/s | |
Thermal conductivity of water | 0.628 | W/m·K | |
C | Specific heat of water | 4180 | J/kg·K |
Net solar irradiation absorbed by the plate | 700 | W/m2 |
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Martínez-Morales, E.G.; Romero-Méndez, R.; Pérez-Gutiérrez, F.G.; García-Zugasti, P. A New Model to Investigate Effect of Heat Conduction Between Tubes on Overall Performance of a Coil Absorber for Flat-Plate Solar Collectors. Energies 2025, 18, 4360. https://doi.org/10.3390/en18164360
Martínez-Morales EG, Romero-Méndez R, Pérez-Gutiérrez FG, García-Zugasti P. A New Model to Investigate Effect of Heat Conduction Between Tubes on Overall Performance of a Coil Absorber for Flat-Plate Solar Collectors. Energies. 2025; 18(16):4360. https://doi.org/10.3390/en18164360
Chicago/Turabian StyleMartínez-Morales, Elena G., Ricardo Romero-Méndez, Francisco G. Pérez-Gutiérrez, and Pedro García-Zugasti. 2025. "A New Model to Investigate Effect of Heat Conduction Between Tubes on Overall Performance of a Coil Absorber for Flat-Plate Solar Collectors" Energies 18, no. 16: 4360. https://doi.org/10.3390/en18164360
APA StyleMartínez-Morales, E. G., Romero-Méndez, R., Pérez-Gutiérrez, F. G., & García-Zugasti, P. (2025). A New Model to Investigate Effect of Heat Conduction Between Tubes on Overall Performance of a Coil Absorber for Flat-Plate Solar Collectors. Energies, 18(16), 4360. https://doi.org/10.3390/en18164360