Design and Optical Performance Evaluation of the Three-Dimensional Solar Concentrators with Multiple Compound Parabolic Profiles and Elliptical and Rectangular Receiver Shapes
Abstract
:1. Introduction
- Develop a design method for the proposed concentrators with customizable receiver shapes.
- Assume elliptical receivers for the MultiPro-ECPCs and rectangular receivers for the MultiPro-RCPCs.
- Define the simulation conditions and evaluation indices.
- Evaluate the optical efficiency based on the axial angles and solar angles.
- Assess the irradiance distribution on the receiver and the axial angle coverage limits of the newly designed MultiPro-CPCs.
- Evaluate the optical concentration ratio based on the solar angles and a spatiotemporal interpretation.
2. Design of the Proposed Solar Concentrator
2.1. Design of the Profile
2.2. Design of the Receiver
2.3. Steps in the Geometry Generation of Novel CPCs and Conventional CPCs
- First, the receiver shape was chosen. In Figure 3, the receiver is rectangular. Then, the receiver length of the East–West direction d0°, the half-acceptance angle of the East–West direction α0°, and the half-acceptance angle of the North–South direction α90° were fixed.
- Secondly, the value of H and the East–West profile of the solar concentrator were determined from the fixed α0° and d0°, respectively.
- Thirdly, with H and α90°, the length of the receiver minor axis d90° was calculated and used to determine the North–South direction profile.
- Fourthly, the same method was repeated to design the CPC profile at each γ profile with and as the inputs and as the output. The receiver diameter is expressed in Equation (5) for the elliptical receiver and in Equation (7) for the rectangular receiver. Here, tγ, represented in Equation (6), is the angular parameter of the elliptical receiver at γ, and γdiag, represented in Equation (8), is the value of γ at the diagonal plane of the rectangular receiver. All equations are derived from the trigonometric relationships in an ellipse and a rectangle with the parameters shown in Figure 2.
- Finally, all the profiles were joined to form the concentrator, where γ varies from 0 to 90° every 15°.
2.4. Designed Solar Concentrators
2.4.1. Variation of the Half-Acceptance Angle According to γ
2.4.2. Geometric Concentration Ratio
3. Optical Simulation of the Designed Solar Concentrators
3.1. Simulation Conditions
3.2. Evaluation Indices
4. Results and Discussion
4.1. Optical Performance Based on the Axial Incidence Angle Coverage
4.2. Irradiance Distribution on the Receiver and Absorbed Ray Path Inside the Concentrator
4.3. Optical Performance Based on the Solar Incidence Angle Coverage
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Abbreviations | |
CPC | Compound parabolic concentrator |
MultiPro-CPC | Concentrator with multiple CPC profiles |
MultiPro-ECPC | Concentrator with multiple CPC profiles and an elliptical receiver |
MultiPro-RCPC | Concentrator with multiple CPC profiles and a rectangular receiver |
2DCPC | Two-dimensional CPC |
3DCPC | Three-dimensional CPC |
Notations | |
AAbs (mm2) | Receiver area |
AAp (mm2) | Aperture area |
Cgeo (-) | Geometric concentration ratio |
Copt (-) | Optical concentration ratio |
Coptmax (-) | Maximal optical concentration ratio |
Dγ (mm) | Diameter of the aperture of the CPC at a profile |
dγ (mm) | Diameter of the receiver of the CPC at a profile |
dγEll (mm) | Axial length of the elliptical receiver at a profile |
dγRec (mm) | Axial length of the rectangular receiver at a profile |
fγ (mm) | Focus length of the CPC at a profile |
H (mm) | Height of the CPC |
Mγ | Point of the receiver at γ |
tγ (°) | Angular parameter of the elliptical receiver at γ |
x (mm) | x-axis coordinate |
y (mm) | y-axis coordinate |
αL (°) | Longitudinal half-acceptance angle of the CPC |
αT (°) | Transversal half-acceptance angle of the CPC |
αγ (°) | Half-acceptance angle of the CPC at a profile |
γ (°) | Angle between a profile plane and the East–West direction |
γdiag | Value of γ at the diagonal plane of the rectangular receiver |
η (-) | Optical efficiency |
φ | Solar azimuth angle |
θElevation | Solar elevation angle |
θL (°) | Longitudinal angle of the solar incident rays |
θT (°) | Transversal angle of the solar incident rays |
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α0° | 15° | 30° | 45° |
---|---|---|---|
H/d0° | 9.1 | 2.6 | 1.2 |
α90°= 10° | |||
α90°= 20° | |||
α90°= 30° |
α0° | 15° | 30° | 45° |
---|---|---|---|
H/d0° | 9.1 | 2.6 | 1.2 |
α90°= 10° | |||
α90°= 20° | |||
α90°= 30° |
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Mboup, A.; Akisawa, A.; Pujol-Nadal, R.; Martínez-Moll, V. Design and Optical Performance Evaluation of the Three-Dimensional Solar Concentrators with Multiple Compound Parabolic Profiles and Elliptical and Rectangular Receiver Shapes. Energies 2024, 17, 721. https://doi.org/10.3390/en17030721
Mboup A, Akisawa A, Pujol-Nadal R, Martínez-Moll V. Design and Optical Performance Evaluation of the Three-Dimensional Solar Concentrators with Multiple Compound Parabolic Profiles and Elliptical and Rectangular Receiver Shapes. Energies. 2024; 17(3):721. https://doi.org/10.3390/en17030721
Chicago/Turabian StyleMboup, Aïssatou, Atsushi Akisawa, Ramón Pujol-Nadal, and Víctor Martínez-Moll. 2024. "Design and Optical Performance Evaluation of the Three-Dimensional Solar Concentrators with Multiple Compound Parabolic Profiles and Elliptical and Rectangular Receiver Shapes" Energies 17, no. 3: 721. https://doi.org/10.3390/en17030721
APA StyleMboup, A., Akisawa, A., Pujol-Nadal, R., & Martínez-Moll, V. (2024). Design and Optical Performance Evaluation of the Three-Dimensional Solar Concentrators with Multiple Compound Parabolic Profiles and Elliptical and Rectangular Receiver Shapes. Energies, 17(3), 721. https://doi.org/10.3390/en17030721