Effect of tube bending on heat transfer characteristics of miniature heat pipe with sintered porous media

Miniature heat pipe is a compact heat transfer device with very high heat transfer capability. The miniature heat pipes have been widely accepted for thermal management in laptop computer. Generating heat from chip-set is rapidly transferred to a heat sink via the miniature heat pipe which occupies...

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Main Authors: P. Sakulchangsatjatai, N. Thuchayapong, P. Terdtoon, N. Sangsirakoup
Format: Journal
Published: 2018
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spelling th-cmuir.6653943832-501022018-09-04T04:30:37Z Effect of tube bending on heat transfer characteristics of miniature heat pipe with sintered porous media P. Sakulchangsatjatai N. Thuchayapong P. Terdtoon N. Sangsirakoup Materials Science Physics and Astronomy Miniature heat pipe is a compact heat transfer device with very high heat transfer capability. The miniature heat pipes have been widely accepted for thermal management in laptop computer. Generating heat from chip-set is rapidly transferred to a heat sink via the miniature heat pipe which occupies small space, resulting in smaller and more attractive size of the laptop. Heat pipe bending is unavoidable in such small space. However, tube bending decreases thermal performance of heat pipe and it stops working in some cases. In this study, a computer program to simulate heat transfer characteristics of a bending water-copper-sintered-wick heat pipe has been established. Domains of heat pipe consist of three parts; vapor of working fluid in vapor core which transfer heat and mass from evaporator section to condenser section, liquid of working fluid in wick which transfer heat and mass from condenser section to evaporator section in porous media by capillary force, and container wall. In simulation, fluid flow and heat transfer were assumed to be steady, laminar and incompressible. The porous media is saturated with liquid and working fluid is assumed to be Newtonian fluid. The governing equations, i.e. continuity, Navier-Stokes, and energy equations, and boundary conditions were solved by using the Finite Element Method (FEM). Several bending angles (0° and 90°; angle measured from straight pipe) with 6 mm outer diameter and 200 mm length were simulated and tested. It was found that the predicted and experimental thermal resistances of heat pipe, when bending angle increases from 0° to 90°, increased from 0.47°C/W to 0.65°C/W and 0.67°C/W to 0.88°C/W respectively, due to rising of the vapor pressure drop in vapor channel. The simulation results are in agreement with experimental data with 26-29% error. © (2011) Trans Tech Publications. 2018-09-04T04:24:03Z 2018-09-04T04:24:03Z 2011-01-01 Journal 10120386 2-s2.0-79955804387 10.4028/www.scientific.net/DDF.312-315.1015 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=79955804387&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/50102
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Materials Science
Physics and Astronomy
spellingShingle Materials Science
Physics and Astronomy
P. Sakulchangsatjatai
N. Thuchayapong
P. Terdtoon
N. Sangsirakoup
Effect of tube bending on heat transfer characteristics of miniature heat pipe with sintered porous media
description Miniature heat pipe is a compact heat transfer device with very high heat transfer capability. The miniature heat pipes have been widely accepted for thermal management in laptop computer. Generating heat from chip-set is rapidly transferred to a heat sink via the miniature heat pipe which occupies small space, resulting in smaller and more attractive size of the laptop. Heat pipe bending is unavoidable in such small space. However, tube bending decreases thermal performance of heat pipe and it stops working in some cases. In this study, a computer program to simulate heat transfer characteristics of a bending water-copper-sintered-wick heat pipe has been established. Domains of heat pipe consist of three parts; vapor of working fluid in vapor core which transfer heat and mass from evaporator section to condenser section, liquid of working fluid in wick which transfer heat and mass from condenser section to evaporator section in porous media by capillary force, and container wall. In simulation, fluid flow and heat transfer were assumed to be steady, laminar and incompressible. The porous media is saturated with liquid and working fluid is assumed to be Newtonian fluid. The governing equations, i.e. continuity, Navier-Stokes, and energy equations, and boundary conditions were solved by using the Finite Element Method (FEM). Several bending angles (0° and 90°; angle measured from straight pipe) with 6 mm outer diameter and 200 mm length were simulated and tested. It was found that the predicted and experimental thermal resistances of heat pipe, when bending angle increases from 0° to 90°, increased from 0.47°C/W to 0.65°C/W and 0.67°C/W to 0.88°C/W respectively, due to rising of the vapor pressure drop in vapor channel. The simulation results are in agreement with experimental data with 26-29% error. © (2011) Trans Tech Publications.
format Journal
author P. Sakulchangsatjatai
N. Thuchayapong
P. Terdtoon
N. Sangsirakoup
author_facet P. Sakulchangsatjatai
N. Thuchayapong
P. Terdtoon
N. Sangsirakoup
author_sort P. Sakulchangsatjatai
title Effect of tube bending on heat transfer characteristics of miniature heat pipe with sintered porous media
title_short Effect of tube bending on heat transfer characteristics of miniature heat pipe with sintered porous media
title_full Effect of tube bending on heat transfer characteristics of miniature heat pipe with sintered porous media
title_fullStr Effect of tube bending on heat transfer characteristics of miniature heat pipe with sintered porous media
title_full_unstemmed Effect of tube bending on heat transfer characteristics of miniature heat pipe with sintered porous media
title_sort effect of tube bending on heat transfer characteristics of miniature heat pipe with sintered porous media
publishDate 2018
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=79955804387&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/50102
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