Heat Transfer in Latent High-Temperature Thermal Energy Storage Systems—Experimental Investigation

Thermal energy storage systems with phase-change materials promise a high energy density for applications where heat is to be stored in a narrow temperature range. The advantage of higher capacities comes along with some challenges in terms of behavior prediction. The heat transfer into such a stora...

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Main Authors: Georg Scharinger-Urschitz, Heimo Walter, Markus Haider
Format: Article
Language:English
Published: MDPI AG 2019-04-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/12/7/1264
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author Georg Scharinger-Urschitz
Heimo Walter
Markus Haider
author_facet Georg Scharinger-Urschitz
Heimo Walter
Markus Haider
author_sort Georg Scharinger-Urschitz
collection DOAJ
description Thermal energy storage systems with phase-change materials promise a high energy density for applications where heat is to be stored in a narrow temperature range. The advantage of higher capacities comes along with some challenges in terms of behavior prediction. The heat transfer into such a storage is highly transient and depends on the phase state, which is either liquid or solid in the present investigation. The aim is to quantify the heat transfer into the storage and to compare two different fin geometries. The novel geometry is supposed to accelerate the melting process. For this purpose, a single tube test rig was designed, built, and equipped with aluminum fins. The phase-change material temperature as well as the heat-transfer fluid temperature at the inlet and outlet were measured for charging and discharging cycles. Sodium nitrate is used as phase-change material, and the storage is operated &#177;30 <inline-formula> <math display="inline"> <semantics> <mrow> <msup> <mrow></mrow> <mo>∘</mo> </msup> <mi mathvariant="normal">C</mi> </mrow> </semantics> </math> </inline-formula> around the melting point of sodium nitrate, which is 306 <inline-formula> <math display="inline"> <semantics> <mrow> <msup> <mrow></mrow> <mo>∘</mo> </msup> <mi mathvariant="normal">C</mi> </mrow> </semantics> </math> </inline-formula>. An enthalpy function for sodium nitrate is proposed and the methodology for determining the apparent heat-transfer rate is provided. The phase-change material temperature trends are shown and analyzed; different melting in radial and axial directions and in the individual geometry sections occurs. With the enthalpy function for sodium nitrate, the energy balance is determined over the melting range. Values for the apparent heat-transfer coefficient are derived, which allow capacity and power estimations for industrial-scale latent heat thermal energy systems.
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spelling doaj.art-6b7c113b13454e548d5baafb194047d72022-12-22T02:57:43ZengMDPI AGEnergies1996-10732019-04-01127126410.3390/en12071264en12071264Heat Transfer in Latent High-Temperature Thermal Energy Storage Systems—Experimental InvestigationGeorg Scharinger-Urschitz0Heimo Walter1Markus Haider2Institute for Energy Systems and Thermodynamics, TU Wien, Getreidemarkt 9, 1060 Wien, AustriaInstitute for Energy Systems and Thermodynamics, TU Wien, Getreidemarkt 9, 1060 Wien, AustriaInstitute for Energy Systems and Thermodynamics, TU Wien, Getreidemarkt 9, 1060 Wien, AustriaThermal energy storage systems with phase-change materials promise a high energy density for applications where heat is to be stored in a narrow temperature range. The advantage of higher capacities comes along with some challenges in terms of behavior prediction. The heat transfer into such a storage is highly transient and depends on the phase state, which is either liquid or solid in the present investigation. The aim is to quantify the heat transfer into the storage and to compare two different fin geometries. The novel geometry is supposed to accelerate the melting process. For this purpose, a single tube test rig was designed, built, and equipped with aluminum fins. The phase-change material temperature as well as the heat-transfer fluid temperature at the inlet and outlet were measured for charging and discharging cycles. Sodium nitrate is used as phase-change material, and the storage is operated &#177;30 <inline-formula> <math display="inline"> <semantics> <mrow> <msup> <mrow></mrow> <mo>∘</mo> </msup> <mi mathvariant="normal">C</mi> </mrow> </semantics> </math> </inline-formula> around the melting point of sodium nitrate, which is 306 <inline-formula> <math display="inline"> <semantics> <mrow> <msup> <mrow></mrow> <mo>∘</mo> </msup> <mi mathvariant="normal">C</mi> </mrow> </semantics> </math> </inline-formula>. An enthalpy function for sodium nitrate is proposed and the methodology for determining the apparent heat-transfer rate is provided. The phase-change material temperature trends are shown and analyzed; different melting in radial and axial directions and in the individual geometry sections occurs. With the enthalpy function for sodium nitrate, the energy balance is determined over the melting range. Values for the apparent heat-transfer coefficient are derived, which allow capacity and power estimations for industrial-scale latent heat thermal energy systems.https://www.mdpi.com/1996-1073/12/7/1264thermal energy storagephase-change materialheat-transfer enhancementfin geometrysolid-liquid phase-change modelheat exchanger
spellingShingle Georg Scharinger-Urschitz
Heimo Walter
Markus Haider
Heat Transfer in Latent High-Temperature Thermal Energy Storage Systems—Experimental Investigation
Energies
thermal energy storage
phase-change material
heat-transfer enhancement
fin geometry
solid-liquid phase-change model
heat exchanger
title Heat Transfer in Latent High-Temperature Thermal Energy Storage Systems—Experimental Investigation
title_full Heat Transfer in Latent High-Temperature Thermal Energy Storage Systems—Experimental Investigation
title_fullStr Heat Transfer in Latent High-Temperature Thermal Energy Storage Systems—Experimental Investigation
title_full_unstemmed Heat Transfer in Latent High-Temperature Thermal Energy Storage Systems—Experimental Investigation
title_short Heat Transfer in Latent High-Temperature Thermal Energy Storage Systems—Experimental Investigation
title_sort heat transfer in latent high temperature thermal energy storage systems experimental investigation
topic thermal energy storage
phase-change material
heat-transfer enhancement
fin geometry
solid-liquid phase-change model
heat exchanger
url https://www.mdpi.com/1996-1073/12/7/1264
work_keys_str_mv AT georgscharingerurschitz heattransferinlatenthightemperaturethermalenergystoragesystemsexperimentalinvestigation
AT heimowalter heattransferinlatenthightemperaturethermalenergystoragesystemsexperimentalinvestigation
AT markushaider heattransferinlatenthightemperaturethermalenergystoragesystemsexperimentalinvestigation