Experimental investigation of a heat pipe heat exchanger for heat recovery

An air-to-air heat pipe heat exchanger has been designed, constructed and tested. Gravity-assisted wickless heat pipes (thermosiphons) were used to transfer heat from one air stream to another air stream, with a low temperature difference. A thermosiphon heat exchanger has its evaporation zone below...

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Main Authors: Bryszewska-Mazurek Anna, Mazurek Wojciech
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:E3S Web of Conferences
Online Access:https://doi.org/10.1051/e3sconf/20184500012
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spelling doaj-0faaaf521e614d268e5dceba9e5bea0c2021-04-02T10:53:32ZengEDP SciencesE3S Web of Conferences2267-12422018-01-01450001210.1051/e3sconf/20184500012e3sconf_infraeko2018_00012Experimental investigation of a heat pipe heat exchanger for heat recoveryBryszewska-Mazurek AnnaMazurek WojciechAn air-to-air heat pipe heat exchanger has been designed, constructed and tested. Gravity-assisted wickless heat pipes (thermosiphons) were used to transfer heat from one air stream to another air stream, with a low temperature difference. A thermosiphon heat exchanger has its evaporation zone below the condensation zone. Heat pipes allow keeping a more uniform temperature in the heat transfer area. The heat exchanger consists of 20 copper tubes with circular copper fins on their outer surface. The tubes were arranged in a row and the air passed across the pipes. R245fa was used as a working fluid in the thermosiphons. Each heat pipe had a 40 cm evaporation section, a 20 cm adiabatic section and a 40 cm condensation section. The thermosiphon heat exchanger has been tested in different conditions of air stream parameters (flows, temperatures and humidity). The air face velocity ranged from 1,0 m/s to 4,0 m/s. The maximum thermal efficiency of the thermosiphon heat exchanger was between 26÷40%, depending on the air velocity. The freezing of moisture from indoor air was observed when the cold air temperature was below - 13°C.https://doi.org/10.1051/e3sconf/20184500012
collection DOAJ
language English
format Article
sources DOAJ
author Bryszewska-Mazurek Anna
Mazurek Wojciech
spellingShingle Bryszewska-Mazurek Anna
Mazurek Wojciech
Experimental investigation of a heat pipe heat exchanger for heat recovery
E3S Web of Conferences
author_facet Bryszewska-Mazurek Anna
Mazurek Wojciech
author_sort Bryszewska-Mazurek Anna
title Experimental investigation of a heat pipe heat exchanger for heat recovery
title_short Experimental investigation of a heat pipe heat exchanger for heat recovery
title_full Experimental investigation of a heat pipe heat exchanger for heat recovery
title_fullStr Experimental investigation of a heat pipe heat exchanger for heat recovery
title_full_unstemmed Experimental investigation of a heat pipe heat exchanger for heat recovery
title_sort experimental investigation of a heat pipe heat exchanger for heat recovery
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2018-01-01
description An air-to-air heat pipe heat exchanger has been designed, constructed and tested. Gravity-assisted wickless heat pipes (thermosiphons) were used to transfer heat from one air stream to another air stream, with a low temperature difference. A thermosiphon heat exchanger has its evaporation zone below the condensation zone. Heat pipes allow keeping a more uniform temperature in the heat transfer area. The heat exchanger consists of 20 copper tubes with circular copper fins on their outer surface. The tubes were arranged in a row and the air passed across the pipes. R245fa was used as a working fluid in the thermosiphons. Each heat pipe had a 40 cm evaporation section, a 20 cm adiabatic section and a 40 cm condensation section. The thermosiphon heat exchanger has been tested in different conditions of air stream parameters (flows, temperatures and humidity). The air face velocity ranged from 1,0 m/s to 4,0 m/s. The maximum thermal efficiency of the thermosiphon heat exchanger was between 26÷40%, depending on the air velocity. The freezing of moisture from indoor air was observed when the cold air temperature was below - 13°C.
url https://doi.org/10.1051/e3sconf/20184500012
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