Performance Simulation of Solar Trough Concentrators: Optical and Thermal Comparisons

The solar trough concentrator is used to increase the solar radiation intensity on absorbers for water heating, desalination, or power generation purposes. In this study, optical performances of four solar trough concentrators, viz. the parabolic trough concentrator (PTC), the compound parabolic con...

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Main Authors: Fei Cao, Jiarui Pang, Xianzhe Gu, Miaomiao Wang, Yanqin Shangguan
Format: Article
Language:English
Published: MDPI AG 2023-02-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/16/4/1673
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author Fei Cao
Jiarui Pang
Xianzhe Gu
Miaomiao Wang
Yanqin Shangguan
author_facet Fei Cao
Jiarui Pang
Xianzhe Gu
Miaomiao Wang
Yanqin Shangguan
author_sort Fei Cao
collection DOAJ
description The solar trough concentrator is used to increase the solar radiation intensity on absorbers for water heating, desalination, or power generation purposes. In this study, optical performances of four solar trough concentrators, viz. the parabolic trough concentrator (PTC), the compound parabolic concentrator (CPC), the surface uniform concentrator (SUC), and the trapezoid trough concentrator (TTC), are simulated using the Monte Carlo Ray Tracing method. Mathematical models for the solar trough concentrators are first established. The solar radiation distributions on their receivers are then simulated. The solar water heating performances using the solar trough concentrators are finally compared. The results show that, as a high-concentration ratio concentrator, the PTC can achieve the highest heat flux, but suffers from the worst uniformity on the absorber, which is only 0.32%. The CPC can generate the highest heat flux among the rest three low-concentration ratio solar trough concentrators. Compared with the PTC and the CPC, the TTC has better uniformity, but its light-receiving ratio is only 70%. The SUC is beneficial for its highest uniformity of 87.38%. Thermal analysis results show that the water temperatures inside the solar trough concentrators are directly proportional to their wall temperature, with the highest temperature rise in the PTC and the smallest temperature rise in the TTC. The solar trough concentrators’ thermal deformations are positively correlated to their wall temperatures. The radial deformation of the SUC is much larger than those of other solar trough concentrators. The smallest equivalent stress is found in the SUC, which is beneficial to the long-term operation of the solar water heating system.
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spelling doaj.art-34196b20990f42b4be3bc3b78a5ef10f2023-11-16T20:16:12ZengMDPI AGEnergies1996-10732023-02-01164167310.3390/en16041673Performance Simulation of Solar Trough Concentrators: Optical and Thermal ComparisonsFei Cao0Jiarui Pang1Xianzhe Gu2Miaomiao Wang3Yanqin Shangguan4College of Mechanical and Electrical Engineering, Hohai University, Changzhou 213022, ChinaCollege of Mechanical and Electrical Engineering, Hohai University, Changzhou 213022, ChinaCollege of Mechanical and Electrical Engineering, Hohai University, Changzhou 213022, ChinaCollege of Mechanical and Electrical Engineering, Hohai University, Changzhou 213022, ChinaCollege of Mechanical and Electrical Engineering, Hohai University, Changzhou 213022, ChinaThe solar trough concentrator is used to increase the solar radiation intensity on absorbers for water heating, desalination, or power generation purposes. In this study, optical performances of four solar trough concentrators, viz. the parabolic trough concentrator (PTC), the compound parabolic concentrator (CPC), the surface uniform concentrator (SUC), and the trapezoid trough concentrator (TTC), are simulated using the Monte Carlo Ray Tracing method. Mathematical models for the solar trough concentrators are first established. The solar radiation distributions on their receivers are then simulated. The solar water heating performances using the solar trough concentrators are finally compared. The results show that, as a high-concentration ratio concentrator, the PTC can achieve the highest heat flux, but suffers from the worst uniformity on the absorber, which is only 0.32%. The CPC can generate the highest heat flux among the rest three low-concentration ratio solar trough concentrators. Compared with the PTC and the CPC, the TTC has better uniformity, but its light-receiving ratio is only 70%. The SUC is beneficial for its highest uniformity of 87.38%. Thermal analysis results show that the water temperatures inside the solar trough concentrators are directly proportional to their wall temperature, with the highest temperature rise in the PTC and the smallest temperature rise in the TTC. The solar trough concentrators’ thermal deformations are positively correlated to their wall temperatures. The radial deformation of the SUC is much larger than those of other solar trough concentrators. The smallest equivalent stress is found in the SUC, which is beneficial to the long-term operation of the solar water heating system.https://www.mdpi.com/1996-1073/16/4/1673solar collectorparabolic trough concentratorcompound parabolic concentratorsurface uniform concentratortrapezoid trough concentratoroptical performance
spellingShingle Fei Cao
Jiarui Pang
Xianzhe Gu
Miaomiao Wang
Yanqin Shangguan
Performance Simulation of Solar Trough Concentrators: Optical and Thermal Comparisons
Energies
solar collector
parabolic trough concentrator
compound parabolic concentrator
surface uniform concentrator
trapezoid trough concentrator
optical performance
title Performance Simulation of Solar Trough Concentrators: Optical and Thermal Comparisons
title_full Performance Simulation of Solar Trough Concentrators: Optical and Thermal Comparisons
title_fullStr Performance Simulation of Solar Trough Concentrators: Optical and Thermal Comparisons
title_full_unstemmed Performance Simulation of Solar Trough Concentrators: Optical and Thermal Comparisons
title_short Performance Simulation of Solar Trough Concentrators: Optical and Thermal Comparisons
title_sort performance simulation of solar trough concentrators optical and thermal comparisons
topic solar collector
parabolic trough concentrator
compound parabolic concentrator
surface uniform concentrator
trapezoid trough concentrator
optical performance
url https://www.mdpi.com/1996-1073/16/4/1673
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AT xianzhegu performancesimulationofsolartroughconcentratorsopticalandthermalcomparisons
AT miaomiaowang performancesimulationofsolartroughconcentratorsopticalandthermalcomparisons
AT yanqinshangguan performancesimulationofsolartroughconcentratorsopticalandthermalcomparisons