Development of a Model for Performance Analysis of a Honeycomb Thermal Energy Storage for Solar Power Microturbine Applications

Solar power microturbines are required to produce steady power despite the fluctuating solar radiation, with concerns on the dispatchability of such plants where thermal energy storage may offer a solution to address the issue. This paper presents a mathematical model for performance prediction of a...

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Main Authors: Davide Iaria, Xin Zhou, Jafar Al Zaili, Qiang Zhang, Gang Xiao, Abdulnaser Sayma
Format: Article
Language:English
Published: MDPI AG 2019-10-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/12/20/3968
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spelling doaj-77126be5acff47df809563e248c273da2020-11-25T01:56:43ZengMDPI AGEnergies1996-10732019-10-011220396810.3390/en12203968en12203968Development of a Model for Performance Analysis of a Honeycomb Thermal Energy Storage for Solar Power Microturbine ApplicationsDavide Iaria0Xin Zhou1Jafar Al Zaili2Qiang Zhang3Gang Xiao4Abdulnaser Sayma5Department of Mechanical Engineering & Aeronautics, School of Mathematics, Computer Science & Engineering, University of London, London EC1V 0HB, UKInstitute for Thermal Power Engineering, College of Energy Engineering, Zhejiang University, 38 Zheda Road, Hangzhou 310027, ChinaDepartment of Mechanical Engineering & Aeronautics, School of Mathematics, Computer Science & Engineering, University of London, London EC1V 0HB, UKDepartment of Mechanical Engineering & Aeronautics, School of Mathematics, Computer Science & Engineering, University of London, London EC1V 0HB, UKInstitute for Thermal Power Engineering, College of Energy Engineering, Zhejiang University, 38 Zheda Road, Hangzhou 310027, ChinaDepartment of Mechanical Engineering & Aeronautics, School of Mathematics, Computer Science & Engineering, University of London, London EC1V 0HB, UKSolar power microturbines are required to produce steady power despite the fluctuating solar radiation, with concerns on the dispatchability of such plants where thermal energy storage may offer a solution to address the issue. This paper presents a mathematical model for performance prediction of a honeycomb sensible-heat thermal energy storage designed for application of concentrated solar power microturbine. The focus in the model is to consider the laminar developing boundary layers at the entry of the flow channels, which could have a profound effect on the heat-transfer coefficient due to large velocity and temperature gradients, an effect which has not been considered in the modelling of such storage systems. Analysing the thermal and hydrodynamic boundary layer development, the Nusselt number and the friction factor were evaluated using a validated conjugate heat-transfer method. The simulations results were used to develop accurate regression functions for Nusselt number and friction factor. These formulations have been adopted within a one-dimensional model to evaluate the performance of the storage under different operating conditions. The model was in good agreement with conjugate heat transfer results with maximum relative error below 2%. Two case studies are presented to demonstrate the applicability of the proposed methodology.https://www.mdpi.com/1996-1073/12/20/3968thermal storagesolar power micro gas turbinehoneycomb thermal storageconjugate heat transferconcentrated solar powersensible-heat thermal storage
collection DOAJ
language English
format Article
sources DOAJ
author Davide Iaria
Xin Zhou
Jafar Al Zaili
Qiang Zhang
Gang Xiao
Abdulnaser Sayma
spellingShingle Davide Iaria
Xin Zhou
Jafar Al Zaili
Qiang Zhang
Gang Xiao
Abdulnaser Sayma
Development of a Model for Performance Analysis of a Honeycomb Thermal Energy Storage for Solar Power Microturbine Applications
Energies
thermal storage
solar power micro gas turbine
honeycomb thermal storage
conjugate heat transfer
concentrated solar power
sensible-heat thermal storage
author_facet Davide Iaria
Xin Zhou
Jafar Al Zaili
Qiang Zhang
Gang Xiao
Abdulnaser Sayma
author_sort Davide Iaria
title Development of a Model for Performance Analysis of a Honeycomb Thermal Energy Storage for Solar Power Microturbine Applications
title_short Development of a Model for Performance Analysis of a Honeycomb Thermal Energy Storage for Solar Power Microturbine Applications
title_full Development of a Model for Performance Analysis of a Honeycomb Thermal Energy Storage for Solar Power Microturbine Applications
title_fullStr Development of a Model for Performance Analysis of a Honeycomb Thermal Energy Storage for Solar Power Microturbine Applications
title_full_unstemmed Development of a Model for Performance Analysis of a Honeycomb Thermal Energy Storage for Solar Power Microturbine Applications
title_sort development of a model for performance analysis of a honeycomb thermal energy storage for solar power microturbine applications
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2019-10-01
description Solar power microturbines are required to produce steady power despite the fluctuating solar radiation, with concerns on the dispatchability of such plants where thermal energy storage may offer a solution to address the issue. This paper presents a mathematical model for performance prediction of a honeycomb sensible-heat thermal energy storage designed for application of concentrated solar power microturbine. The focus in the model is to consider the laminar developing boundary layers at the entry of the flow channels, which could have a profound effect on the heat-transfer coefficient due to large velocity and temperature gradients, an effect which has not been considered in the modelling of such storage systems. Analysing the thermal and hydrodynamic boundary layer development, the Nusselt number and the friction factor were evaluated using a validated conjugate heat-transfer method. The simulations results were used to develop accurate regression functions for Nusselt number and friction factor. These formulations have been adopted within a one-dimensional model to evaluate the performance of the storage under different operating conditions. The model was in good agreement with conjugate heat transfer results with maximum relative error below 2%. Two case studies are presented to demonstrate the applicability of the proposed methodology.
topic thermal storage
solar power micro gas turbine
honeycomb thermal storage
conjugate heat transfer
concentrated solar power
sensible-heat thermal storage
url https://www.mdpi.com/1996-1073/12/20/3968
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