Scale effects on evaporative heat transfer in carbon nanotube wick in heat pipes

被引:21
作者
Chen, Qiang [1 ]
Huang, Yonghua [1 ]
机构
[1] Shanghai Jiao Tong Univ, Inst Refrigerat & Cryogen, Shanghai 200240, Peoples R China
基金
中国国家自然科学基金;
关键词
Scale effect; Carbon nanotube; Heat pipe; Wick; Numerical method; LATTICE BOLTZMANN METHOD; MICROPILLAR ARRAYS; THIN-FILM; WATER; FLOW; OPTIMIZATION; NANOPIPES; TRANSPORT; NANOPORES; PRESSURE;
D O I
10.1016/j.ijheatmasstransfer.2017.04.027
中图分类号
O414.1 [热力学];
学科分类号
摘要
The heat transfer capability of conventional materials like copper or devices like heat pipes are challenged by the growing trend of miniaturization of integrated circuit and exponentially increasing density of heat generation. Vertically aligned carbon nanotube (CNT) array has been recognized as a promising wicking structure of new generation heat pipes for higher heat transfer capability and more compact size. In contrast to conventional grooved or powder-sintered wicks, the CNT wick behaves differently due to the scale effects, which has been investigated through physical models extracted from its working conditions. The influence by the velocity slip of the liquid at the CNT wall is evaluated, which shows that the slip leads to considerable enhancement of the flow near the CNT wall. Calculation of the overall flow resistance indicates higher permeability due to the slip. The gaps between CNTs create exceptionally high capillary pressure due to the nanoscale pores. It proves to be apparently superior to conventional structures in micrometer scale. The effective thermal conductance of the CNT wick benefits from the extremely high thermal conductivity of CNTs thanks to the non-Fourier conduction. The effects emerged in the non-evaporating and thin-film regions are analyzed, which clearly shows that the evaporation at the liquid-vapor interface is dramatically affected by these nanoscale effects. The present study on scale effects identifies the advantages of the CNT wick in capillary ability, effective conductivity, and evaporative flux, etc. Meanwhile, it also reveals the disadvantage of relatively lower dry-out limit of the CNT wick. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:852 / 859
页数:8
相关论文
共 33 条
[1]  
[Anonymous], 1953, A Theoretical Study of Interphase Mass Transfer
[2]   Theory and simulations of water flow through carbon nanotubes: prospects and pitfalls [J].
Bonthuis, Douwe Jan ;
Rinne, Klaus F. ;
Falk, Kerstin ;
Kaplan, C. Nadir ;
Horinek, Dominik ;
Berker, A. Nihat ;
Bocquet, Lyderic ;
Netz, Roland R. .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2011, 23 (18)
[3]  
Brakke K.A., 1992, Exp. Maths, V1, P141, DOI [10.1080/10586458.1992.10504253, DOI 10.1080/10586458.1992.10504253]
[4]   Design and Test of Carbon Nanotube Biwick Structure for High-Heat-Flux Phase Change Heat Transfer [J].
Cai, Qingjun ;
Chen, Chung-Lung .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2010, 132 (05) :1-8
[5]   Nanoscale fluid-structure interaction: Flow resistance and energy transfer between water and carbon nanotubes [J].
Chen, Chao ;
Ma, Ming ;
Jin, Kai ;
Liu, Jefferson Zhe ;
Shen, Luming ;
Zheng, Quanshui ;
Xu, Zhiping .
PHYSICAL REVIEW E, 2011, 84 (04)
[6]   A practical dimensionless equation for the thermal conductivity of carbon nanotubes and CNT arrays [J].
Chen, Qiang ;
Huang, Yonghua .
AIP ADVANCES, 2014, 4 (05)
[7]   Ballistic phonon thermal transport in multiwalled carbon nanotubes -: art. no. 226101 [J].
Chiu, HY ;
Deshpande, VV ;
Postma, HWC ;
Lau, CN ;
Mikó, C ;
Forró, L ;
Bockrath, M .
PHYSICAL REVIEW LETTERS, 2005, 95 (22)
[8]   THE KELVIN EQUATION AND THE CAPILLARY CONDENSATION OF WATER [J].
FISHER, LR ;
GAMBLE, RA ;
MIDDLEHURST, J .
NATURE, 1981, 290 (5807) :575-576
[9]   Thermal conductivities of single-walled carbon nanotubes calculated from the complete phonon dispersion relations [J].
Gu, Yunfeng ;
Chen, Yunfei .
PHYSICAL REVIEW B, 2007, 76 (13)
[10]   An extrapolation method for boundary conditions in lattice Boltzmann method [J].
Guo, ZL ;
Zheng, CG ;
Shi, BC .
PHYSICS OF FLUIDS, 2002, 14 (06) :2007-2010