Numerical Modeling and Experimental Validation of Heat Transfer Characteristics in Small PTCs with Nonevacuated Receivers

The development of small-sized parabolic trough collectors (PTCs) for processing heat production at medium temperatures (100–250 °C) represents an interesting approach to increase the utilization of solar thermal technologies in industrial applications. Thus, the development of simplified models to...

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Main Authors: Amedeo Ebolese, Domenico Marano, Carlo Copeta, Agatino Bruno, Vincenzo Sabatelli
Format: Article
Language:English
Published: MDPI AG 2023-10-01
Series:Solar
Subjects:
Online Access:https://www.mdpi.com/2673-9941/3/4/30
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author Amedeo Ebolese
Domenico Marano
Carlo Copeta
Agatino Bruno
Vincenzo Sabatelli
author_facet Amedeo Ebolese
Domenico Marano
Carlo Copeta
Agatino Bruno
Vincenzo Sabatelli
author_sort Amedeo Ebolese
collection DOAJ
description The development of small-sized parabolic trough collectors (PTCs) for processing heat production at medium temperatures (100–250 °C) represents an interesting approach to increase the utilization of solar thermal technologies in industrial applications. Thus, the development of simplified models to analyze and predict their performance under different operative and climatic conditions is crucial for evaluating the application potential of this low-cost technology. In this paper, we present a numerical method that by combining three-dimensional finite element simulations (implemented with COMSOL Multiphysics software version 6.1) with a one-dimensional analysis (based on a MATLAB script) allows for the theoretical determination of the power output of a small-PTC with a nonevacuated tubular receiver operating at a medium temperature. The finite element model considers both the nonuniformity of the concentrated solar flux on the receiver tube (evaluated using Monte Carlo ray-tracing analysis) and the establishment of natural convection in the air gap between the glass envelope and absorber tube. The model calculates, for several values of direct normal irradiance (DNI) and inlet temperatures, the thermal power transferred to the heat transfer fluid (HTF) per unit length. The data are fitted using the multiple linear regression method, obtaining a function that is then used in a one-dimensional multi-nodal model to estimate the temperatures and the heat gains along the receiver tube. The outputs of the model are the outlet temperature and the total thermal power transferred to the HTF. In order to validate the developed methodology for the assessment of the heat transfer characteristics in the small-PTC with a nonevacuated receiver, an experiment at the ENEA Trisaia—Solar Thermal Collector Testing Laboratory was carried out. This work compares the theoretical data with those acquired through experimentation, obtaining a good agreement, with maximum differences of 0.2% and 3.6% for the outlet temperatures and the power outputs, respectively.
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spelling doaj.art-6f016bdb3ff348eeb97f47e4ac6961702023-12-22T14:43:06ZengMDPI AGSolar2673-99412023-10-013454456510.3390/solar3040030Numerical Modeling and Experimental Validation of Heat Transfer Characteristics in Small PTCs with Nonevacuated ReceiversAmedeo Ebolese0Domenico Marano1Carlo Copeta2Agatino Bruno3Vincenzo Sabatelli4Solar Thermal Testing Laboratory, ENEA Research Centre Trisaia, I-75026 Rotondella, MT, ItalySolar Thermal Testing Laboratory, ENEA Research Centre Trisaia, I-75026 Rotondella, MT, ItalySolar Thermal Testing Laboratory, ENEA Research Centre Trisaia, I-75026 Rotondella, MT, ItalySolar Thermal Testing Laboratory, ENEA Research Centre Trisaia, I-75026 Rotondella, MT, ItalySolar Thermal Testing Laboratory, ENEA Research Centre Trisaia, I-75026 Rotondella, MT, ItalyThe development of small-sized parabolic trough collectors (PTCs) for processing heat production at medium temperatures (100–250 °C) represents an interesting approach to increase the utilization of solar thermal technologies in industrial applications. Thus, the development of simplified models to analyze and predict their performance under different operative and climatic conditions is crucial for evaluating the application potential of this low-cost technology. In this paper, we present a numerical method that by combining three-dimensional finite element simulations (implemented with COMSOL Multiphysics software version 6.1) with a one-dimensional analysis (based on a MATLAB script) allows for the theoretical determination of the power output of a small-PTC with a nonevacuated tubular receiver operating at a medium temperature. The finite element model considers both the nonuniformity of the concentrated solar flux on the receiver tube (evaluated using Monte Carlo ray-tracing analysis) and the establishment of natural convection in the air gap between the glass envelope and absorber tube. The model calculates, for several values of direct normal irradiance (DNI) and inlet temperatures, the thermal power transferred to the heat transfer fluid (HTF) per unit length. The data are fitted using the multiple linear regression method, obtaining a function that is then used in a one-dimensional multi-nodal model to estimate the temperatures and the heat gains along the receiver tube. The outputs of the model are the outlet temperature and the total thermal power transferred to the HTF. In order to validate the developed methodology for the assessment of the heat transfer characteristics in the small-PTC with a nonevacuated receiver, an experiment at the ENEA Trisaia—Solar Thermal Collector Testing Laboratory was carried out. This work compares the theoretical data with those acquired through experimentation, obtaining a good agreement, with maximum differences of 0.2% and 3.6% for the outlet temperatures and the power outputs, respectively.https://www.mdpi.com/2673-9941/3/4/30parabolic trough concentratornonevacuated receiverMonte Carlo ray-tracing simulationFEM-CFD analysisexperimental validation
spellingShingle Amedeo Ebolese
Domenico Marano
Carlo Copeta
Agatino Bruno
Vincenzo Sabatelli
Numerical Modeling and Experimental Validation of Heat Transfer Characteristics in Small PTCs with Nonevacuated Receivers
Solar
parabolic trough concentrator
nonevacuated receiver
Monte Carlo ray-tracing simulation
FEM-CFD analysis
experimental validation
title Numerical Modeling and Experimental Validation of Heat Transfer Characteristics in Small PTCs with Nonevacuated Receivers
title_full Numerical Modeling and Experimental Validation of Heat Transfer Characteristics in Small PTCs with Nonevacuated Receivers
title_fullStr Numerical Modeling and Experimental Validation of Heat Transfer Characteristics in Small PTCs with Nonevacuated Receivers
title_full_unstemmed Numerical Modeling and Experimental Validation of Heat Transfer Characteristics in Small PTCs with Nonevacuated Receivers
title_short Numerical Modeling and Experimental Validation of Heat Transfer Characteristics in Small PTCs with Nonevacuated Receivers
title_sort numerical modeling and experimental validation of heat transfer characteristics in small ptcs with nonevacuated receivers
topic parabolic trough concentrator
nonevacuated receiver
Monte Carlo ray-tracing simulation
FEM-CFD analysis
experimental validation
url https://www.mdpi.com/2673-9941/3/4/30
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