Thermal performance analysis of a flat heat pipe working with carbon nanotube-water nanofluid for cooling of a high heat flux heater

被引:105
作者
Arya, A. [1 ]
Sarafraz, M. M. [2 ]
Shahmiri, S. [3 ]
Madani, S. A. H. [4 ]
Nikkhah, V. [2 ]
Nakhjavani, S. M. [5 ]
机构
[1] Purdue Univ, IUPUI, Sch Engn & Technol, Indianapolis, IN 46202 USA
[2] Semnan Univ, Fac Chem Petr & Gas Engn, Semnan, Iran
[3] Lamar Univ, Dept Mech Engn, Beaumont, TX 77710 USA
[4] IUST, Sch Mech Engn, Dept Energy Convers, Tehran 1684613114, Iran
[5] Shahid Beheshti Sch Pharm, Dept Toxico Pharmacol, Tehran, Iran
关键词
Flat heat pipe; Screen mesh; Heat transfer; Carbon nanotube; Thermal performance; TRANSFER COEFFICIENT; FOULING MITIGATION; EXCHANGER WORKING; HUMAN LUNG; FLOW; NANOPARTICLES; THERMOSIPHON; ENHANCEMENT; COPPER; CYTOTOXICITY;
D O I
10.1007/s00231-017-2201-6
中图分类号
O414.1 [热力学];
学科分类号
摘要
Experimental investigation on the thermal performance of a flat heat pipe working with carbon nanotube nanofluid is conducted. It is used for cooling a heater working at high heat flux conditions up to 190 kW/m(2). The heat pipe is fabricated from aluminium and is equipped with rectangular fin for efficient cooling of condenser section. Inside the heat pipe, a screen mesh was inserted as a wick structure to facilitate the capillary action of working fluid. Influence of different operating parameters such as heat flux, mass concentration of carbon nanotubes and filling ratio of working fluid on thermal performance of heat pipe and its thermal resistance are investigated. Results showed that with an increase in heat flux, the heat transfer coefficient in evaporator section of the heat pipe increases. For filling ratio, however, there is an optimum value, which was 0.8 for the test heat pipe. In addition, CNT/water enhanced the heat transfer coefficient up to 40% over the deionized water. Carbon nanotubes intensified the thermal performance of wick structure by creating a fouling layer on screen mesh structure, which changes the contact angle of liquid with the surface, intensifying the capillary forces.
引用
收藏
页码:985 / 997
页数:13
相关论文
共 98 条
[1]   Performance dependence of thermosyphon on the functionalization approaches: An experimental study on thermo-physical properties of graphene nanoplatelet-based water nanofluids [J].
Amiri, Ahmad ;
Sadri, Rad ;
Shanbedi, Mehdi ;
Ahmadi, Goodarz ;
Chew, B. T. ;
Kazi, S. N. ;
Dahari, Mahidzal .
ENERGY CONVERSION AND MANAGEMENT, 2015, 92 :322-330
[2]  
Aryanpour N, 2012, IRAN J PHARM RES, V11, P689
[3]  
Ashtarinezhad A, 2014, IRAN J PHARM RES, V13, P101
[4]   Heat transfer performance of screen mesh wick heat pipes using silver-water nanofluid [J].
Asirvatham, Lazarus Godson ;
Nimmagadda, Rajesh ;
Wongwises, Somchai .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2013, 60 :201-209
[5]  
Bejan A., 2003, Heat Transfer Handbook
[6]   Nucleation site density in pool boiling of saturated pure liquids: Effect of surface microroughness and surface and liquid physical properties [J].
Benjamin, RJ ;
Balakrishnan, AR .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 1997, 15 (01) :32-42
[7]  
Bott TR, 1995, FOULING HEAT EXCHANG
[8]   Design of a novel, intensified heat exchanger for reduced fouling rates [J].
Bouris, D ;
Konstantinidis, E ;
Balabani, S ;
Castiglia, D ;
Bergeles, G .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2005, 48 (18) :3817-3832
[9]   Nanofluids in thermosyphons and heat pipes: Overview of recent experiments and modelling approaches [J].
Buschmann, Matthias H. .
INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2013, 72 :1-17
[10]  
Choi S.U.S., 1995, ASME FED, P99, DOI DOI 10.1115/1.1532008