Higher Order Accurate Transient Numerical Model to Evaluate the Natural Convection Heat Transfer in Flat Plate Solar Collector

The natural convection flow in the air gap between the absorber plate and glass cover of the flat plate solar collectors is predominantly evaluated based on the lumped capacitance method, which does not consider the spatial temperature gradients. With the recent advancements in the field of computat...

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Main Authors: Nagesh Babu Balam, Tabish Alam, Akhilesh Gupta, Paolo Blecich
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Processes
Subjects:
Online Access:https://www.mdpi.com/2227-9717/9/9/1508
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spelling doaj-6060cafc7ede4a299575c0163bd13af62021-09-26T01:04:41ZengMDPI AGProcesses2227-97172021-08-0191508150810.3390/pr9091508Higher Order Accurate Transient Numerical Model to Evaluate the Natural Convection Heat Transfer in Flat Plate Solar CollectorNagesh Babu Balam0Tabish Alam1Akhilesh Gupta2Paolo Blecich3Building Energy Efficiency Group, CSIR-Central Building Research Institute, Roorkee 247667, IndiaBuilding Energy Efficiency Group, CSIR-Central Building Research Institute, Roorkee 247667, IndiaDepartment of Mechanical & Industrial Engineering, Indian Institute of Technology, Roorkee 247667, IndiaFaculty of Engineering, University of Rijeka, 51000 Rijeka, CroatiaThe natural convection flow in the air gap between the absorber plate and glass cover of the flat plate solar collectors is predominantly evaluated based on the lumped capacitance method, which does not consider the spatial temperature gradients. With the recent advancements in the field of computational fluid dynamics, it became possible to study the natural convection heat transfer in the air gap of solar collectors with spatially resolved temperature gradients in the laminar regime. However, due to the relatively large temperature gradient in this air gap, the natural convection heat transfer lies in either the transitional regime or in the turbulent regime. This requires a very high grid density and a large convergence time for existing CFD methods. Higher order numerical methods are found to be effective for resolving turbulent flow phenomenon. Here we develop a non-dimensional transient numerical model for resolving the turbulent natural convection heat transfer in the air gap of a flat plate solar collector, which is fourth order accurate in both spatial and temporal domains. The developed model is validated against benchmark results available in the literature. An error of less than 5% is observed for the top heat loss coefficient parameter of the flat plate solar collector. Transient flow characteristics and various stages of natural convection flow development have been discussed. In addition, it was observed that the occurrence of flow mode transitions have a significant effect on the overall natural convection heat transfer.https://www.mdpi.com/2227-9717/9/9/1508flat plate solar collectornatural convectionnusselt numberflow mode transitionnumerical method
collection DOAJ
language English
format Article
sources DOAJ
author Nagesh Babu Balam
Tabish Alam
Akhilesh Gupta
Paolo Blecich
spellingShingle Nagesh Babu Balam
Tabish Alam
Akhilesh Gupta
Paolo Blecich
Higher Order Accurate Transient Numerical Model to Evaluate the Natural Convection Heat Transfer in Flat Plate Solar Collector
Processes
flat plate solar collector
natural convection
nusselt number
flow mode transition
numerical method
author_facet Nagesh Babu Balam
Tabish Alam
Akhilesh Gupta
Paolo Blecich
author_sort Nagesh Babu Balam
title Higher Order Accurate Transient Numerical Model to Evaluate the Natural Convection Heat Transfer in Flat Plate Solar Collector
title_short Higher Order Accurate Transient Numerical Model to Evaluate the Natural Convection Heat Transfer in Flat Plate Solar Collector
title_full Higher Order Accurate Transient Numerical Model to Evaluate the Natural Convection Heat Transfer in Flat Plate Solar Collector
title_fullStr Higher Order Accurate Transient Numerical Model to Evaluate the Natural Convection Heat Transfer in Flat Plate Solar Collector
title_full_unstemmed Higher Order Accurate Transient Numerical Model to Evaluate the Natural Convection Heat Transfer in Flat Plate Solar Collector
title_sort higher order accurate transient numerical model to evaluate the natural convection heat transfer in flat plate solar collector
publisher MDPI AG
series Processes
issn 2227-9717
publishDate 2021-08-01
description The natural convection flow in the air gap between the absorber plate and glass cover of the flat plate solar collectors is predominantly evaluated based on the lumped capacitance method, which does not consider the spatial temperature gradients. With the recent advancements in the field of computational fluid dynamics, it became possible to study the natural convection heat transfer in the air gap of solar collectors with spatially resolved temperature gradients in the laminar regime. However, due to the relatively large temperature gradient in this air gap, the natural convection heat transfer lies in either the transitional regime or in the turbulent regime. This requires a very high grid density and a large convergence time for existing CFD methods. Higher order numerical methods are found to be effective for resolving turbulent flow phenomenon. Here we develop a non-dimensional transient numerical model for resolving the turbulent natural convection heat transfer in the air gap of a flat plate solar collector, which is fourth order accurate in both spatial and temporal domains. The developed model is validated against benchmark results available in the literature. An error of less than 5% is observed for the top heat loss coefficient parameter of the flat plate solar collector. Transient flow characteristics and various stages of natural convection flow development have been discussed. In addition, it was observed that the occurrence of flow mode transitions have a significant effect on the overall natural convection heat transfer.
topic flat plate solar collector
natural convection
nusselt number
flow mode transition
numerical method
url https://www.mdpi.com/2227-9717/9/9/1508
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