Heat transfer characteristics of thermo-syphon: Case study of modifying inclination angle of evaporator and condenser sections

Experiments were carried out to study the heat transfer characteristics of a thermosyphon when modifying the evaporator and condenser sections to be oriented at 0, 60 and 90 degrees with respect to the 70 degree inclination of the adiabatic section (Z shaped). The thermosyphon was made of copper tub...

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Main Authors: Kittipon Khangam, Narong Srihajong
Format: Article
Language:English
Published: Mahasarakham University 2015-12-01
Series:Research & Knowledge
Subjects:
Online Access:https://stej.msu.ac.th/wp-content/uploads/2016/02/rkv2-08-indd-6.pdf
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author Kittipon Khangam
Narong Srihajong
author_facet Kittipon Khangam
Narong Srihajong
author_sort Kittipon Khangam
collection DOAJ
description Experiments were carried out to study the heat transfer characteristics of a thermosyphon when modifying the evaporator and condenser sections to be oriented at 0, 60 and 90 degrees with respect to the 70 degree inclination of the adiabatic section (Z shaped). The thermosyphon was made of copper tube with an outer diameter of 15.87 mm and 300, 450 and 600 mm total lengths. The evaporator, adiabatic and condenser sections were equal in length. R-134a, ethanol and distilled water were employed as the working fl uids with a 50% fi lling ratio by evaporator volume. The evaporator section was heated by hot water at 60, 70 and 80 o C, whereas 20 o C cool water was supplied to the condenser section. The test was conducted at various inclination angles, i.e., 0, 20, 40, 60, 70, 80, 90, 110, 130, 150, 170 and 180 degrees. The results show that the heat fl ux signifi cantly depends on the working temperature. R-134a had the best performance followed by ethanol and distilled water. The heat fl ux decreased with an increase in the total length. When increasing the orientation angles of the evaporator and condenser sections, the heat fl ux rose due to the assistance of gravity. The maximum heat fl ux was 26.85 kW/m2 with the lowest thermal resistance of 0.065 o C/W. In addition, the optimal tested orientation angle was in the range of 40-110 degrees with respect to the horizontal plane.
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spelling doaj.art-48c11b4031f149578861b48aa3288d962022-12-22T03:48:20ZengMahasarakham UniversityResearch & Knowledge2408-204X2630-04002015-12-0112576510.14456/randk.2015.9Heat transfer characteristics of thermo-syphon: Case study of modifying inclination angle of evaporator and condenser sectionsKittipon Khangam0Narong Srihajong1Department of Mechanical Engineering, Faculty of Engineering, Rajamangala University of Technology Isan Khon Kaen Campus, Thailand, 40000Department of Mechanical Engineering, Faculty of Engineering, RajamangExperiments were carried out to study the heat transfer characteristics of a thermosyphon when modifying the evaporator and condenser sections to be oriented at 0, 60 and 90 degrees with respect to the 70 degree inclination of the adiabatic section (Z shaped). The thermosyphon was made of copper tube with an outer diameter of 15.87 mm and 300, 450 and 600 mm total lengths. The evaporator, adiabatic and condenser sections were equal in length. R-134a, ethanol and distilled water were employed as the working fl uids with a 50% fi lling ratio by evaporator volume. The evaporator section was heated by hot water at 60, 70 and 80 o C, whereas 20 o C cool water was supplied to the condenser section. The test was conducted at various inclination angles, i.e., 0, 20, 40, 60, 70, 80, 90, 110, 130, 150, 170 and 180 degrees. The results show that the heat fl ux signifi cantly depends on the working temperature. R-134a had the best performance followed by ethanol and distilled water. The heat fl ux decreased with an increase in the total length. When increasing the orientation angles of the evaporator and condenser sections, the heat fl ux rose due to the assistance of gravity. The maximum heat fl ux was 26.85 kW/m2 with the lowest thermal resistance of 0.065 o C/W. In addition, the optimal tested orientation angle was in the range of 40-110 degrees with respect to the horizontal plane.https://stej.msu.ac.th/wp-content/uploads/2016/02/rkv2-08-indd-6.pdfthermosyphonheat transfer characteristicmodifyinclination angle
spellingShingle Kittipon Khangam
Narong Srihajong
Heat transfer characteristics of thermo-syphon: Case study of modifying inclination angle of evaporator and condenser sections
Research & Knowledge
thermosyphon
heat transfer characteristic
modify
inclination angle
title Heat transfer characteristics of thermo-syphon: Case study of modifying inclination angle of evaporator and condenser sections
title_full Heat transfer characteristics of thermo-syphon: Case study of modifying inclination angle of evaporator and condenser sections
title_fullStr Heat transfer characteristics of thermo-syphon: Case study of modifying inclination angle of evaporator and condenser sections
title_full_unstemmed Heat transfer characteristics of thermo-syphon: Case study of modifying inclination angle of evaporator and condenser sections
title_short Heat transfer characteristics of thermo-syphon: Case study of modifying inclination angle of evaporator and condenser sections
title_sort heat transfer characteristics of thermo syphon case study of modifying inclination angle of evaporator and condenser sections
topic thermosyphon
heat transfer characteristic
modify
inclination angle
url https://stej.msu.ac.th/wp-content/uploads/2016/02/rkv2-08-indd-6.pdf
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AT narongsrihajong heattransfercharacteristicsofthermosyphoncasestudyofmodifyinginclinationangleofevaporatorandcondensersections