Finite Element Simulation of the Machining Process of Boiling Structures in a Novel Radial Heat Sink for High-Power LEDs

A phase change heat sink has higher heat transfer efficiency compared to a traditional metal solid heat sink, and is thus more preferred for the heat dissipation of high-power light-emitting diodes (LEDs) with very high heat flux. The boiling structure at the evaporation surface is the biggest facto...

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Main Authors: Jianhua Xiang, Zeyu Liu, Chunliang Zhang, Chao Zhou, Conggui Chen
Format: Article
Language:English
Published: MDPI AG 2020-09-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/13/18/3958
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spelling doaj-ee250eb1b5a6421ea758020b920935862020-11-25T03:27:55ZengMDPI AGMaterials1996-19442020-09-01133958395810.3390/ma13183958Finite Element Simulation of the Machining Process of Boiling Structures in a Novel Radial Heat Sink for High-Power LEDsJianhua Xiang0Zeyu Liu1Chunliang Zhang2Chao Zhou3Conggui Chen4School of Mechanical and Electrical Engineering, Guangzhou University, Guangzhou 510006, ChinaSchool of Mechanical and Electrical Engineering, Guangzhou University, Guangzhou 510006, ChinaSchool of Mechanical and Electrical Engineering, Guangzhou University, Guangzhou 510006, ChinaSchool of Mechanical and Electrical Engineering, Guangzhou University, Guangzhou 510006, ChinaSchool of Mechanical and Electrical Engineering, Guangzhou University, Guangzhou 510006, ChinaA phase change heat sink has higher heat transfer efficiency compared to a traditional metal solid heat sink, and is thus more preferred for the heat dissipation of high-power light-emitting diodes (LEDs) with very high heat flux. The boiling structure at the evaporation surface is the biggest factor that affects heat sink resistance. It is necessary to investigate the plastic deformation law during the machining process of boiling structures. In this study, a novel phase change radial heat sink was developed for high-power LED heat dissipation. First, a working principle and a fabrication process for the heat sink were introduced. Subsequently, to achieve an excellent heat dissipation performance, the machining process of boiling structures was numerically simulated and investigated. To be specific, plastic deformation generated during the formation was analyzed, and key parameters related to the morphology of the boiling structures were discussed including feeding angles and machining depths. Moreover, the finite element (FE) simulation results were compared with those of experiments. Last but not least, the heat transfer performance of the fabricated heat sink was tested. Results showed that the developed heat sink was well suited for a high-power LED application.https://www.mdpi.com/1996-1944/13/18/3958FE simulationradial heat sinkfabricationmicrogrooveshigh-power LEDs
collection DOAJ
language English
format Article
sources DOAJ
author Jianhua Xiang
Zeyu Liu
Chunliang Zhang
Chao Zhou
Conggui Chen
spellingShingle Jianhua Xiang
Zeyu Liu
Chunliang Zhang
Chao Zhou
Conggui Chen
Finite Element Simulation of the Machining Process of Boiling Structures in a Novel Radial Heat Sink for High-Power LEDs
Materials
FE simulation
radial heat sink
fabrication
microgrooves
high-power LEDs
author_facet Jianhua Xiang
Zeyu Liu
Chunliang Zhang
Chao Zhou
Conggui Chen
author_sort Jianhua Xiang
title Finite Element Simulation of the Machining Process of Boiling Structures in a Novel Radial Heat Sink for High-Power LEDs
title_short Finite Element Simulation of the Machining Process of Boiling Structures in a Novel Radial Heat Sink for High-Power LEDs
title_full Finite Element Simulation of the Machining Process of Boiling Structures in a Novel Radial Heat Sink for High-Power LEDs
title_fullStr Finite Element Simulation of the Machining Process of Boiling Structures in a Novel Radial Heat Sink for High-Power LEDs
title_full_unstemmed Finite Element Simulation of the Machining Process of Boiling Structures in a Novel Radial Heat Sink for High-Power LEDs
title_sort finite element simulation of the machining process of boiling structures in a novel radial heat sink for high-power leds
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2020-09-01
description A phase change heat sink has higher heat transfer efficiency compared to a traditional metal solid heat sink, and is thus more preferred for the heat dissipation of high-power light-emitting diodes (LEDs) with very high heat flux. The boiling structure at the evaporation surface is the biggest factor that affects heat sink resistance. It is necessary to investigate the plastic deformation law during the machining process of boiling structures. In this study, a novel phase change radial heat sink was developed for high-power LED heat dissipation. First, a working principle and a fabrication process for the heat sink were introduced. Subsequently, to achieve an excellent heat dissipation performance, the machining process of boiling structures was numerically simulated and investigated. To be specific, plastic deformation generated during the formation was analyzed, and key parameters related to the morphology of the boiling structures were discussed including feeding angles and machining depths. Moreover, the finite element (FE) simulation results were compared with those of experiments. Last but not least, the heat transfer performance of the fabricated heat sink was tested. Results showed that the developed heat sink was well suited for a high-power LED application.
topic FE simulation
radial heat sink
fabrication
microgrooves
high-power LEDs
url https://www.mdpi.com/1996-1944/13/18/3958
work_keys_str_mv AT jianhuaxiang finiteelementsimulationofthemachiningprocessofboilingstructuresinanovelradialheatsinkforhighpowerleds
AT zeyuliu finiteelementsimulationofthemachiningprocessofboilingstructuresinanovelradialheatsinkforhighpowerleds
AT chunliangzhang finiteelementsimulationofthemachiningprocessofboilingstructuresinanovelradialheatsinkforhighpowerleds
AT chaozhou finiteelementsimulationofthemachiningprocessofboilingstructuresinanovelradialheatsinkforhighpowerleds
AT congguichen finiteelementsimulationofthemachiningprocessofboilingstructuresinanovelradialheatsinkforhighpowerleds
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