CHF enhancement of a large heated surface by a honeycomb porous plate and a gridded metal structure in a saturated pool boiling of nanofluid

被引:27
作者
Aznam, Suazlan Mt [1 ]
Mori, Shoji [2 ]
Ogoshi, Azuki [2 ]
Okuyama, Kunito [2 ]
机构
[1] Int Islamic Univ, Dept Engn Sci, Kulliyyah Engn, Kuala Lumpur 50728, Malaysia
[2] Yokohama Natl Univ, Dept Chem Engn Sci, Hodogaya Ku, 79-5 Tokiwadai, Yokohama, Kanagawa 2408501, Japan
关键词
Critical heat flux enhancement; Nanofluid; Honeycomb porous plate attachment; Gridded metal structure; Capillary action; IVR; IN-VESSEL RETENTION; NANO-FLUIDS; FLUX; NANOPARTICLES; WETTABILITY; ORIENTATION; MODEL; WATER;
D O I
10.1016/j.ijheatmasstransfer.2017.07.089
中图分类号
O414.1 [热力学];
学科分类号
摘要
The enhancement of the critical heat flux (CHF) in saturated pool boiling of water-based nanofluid (containing TiO2 nanoparticles) by the attachment of a honeycomb porous plate (HPP) and a gridded metal structure (GMS) on a horizontal heated surface have been investigated experimentally. The honeycomb porous plate attached to the heated surface enhances the liquid supply due to capillary action to the heated surface and the release of vapor through the vapor escape channel. The deposition of nanopartides on the heated surface during the boiling of the nanofluid enhances the spread of liquid along the heated surface due to the capillary action. The preceding papers by the present authors revealed that the CHF could be significantly enhanced by 2.2 times that of water boiling by the attachment of the HPP on the heated surface with the nanoparticle deposition layer. According to the hydrodynamic theory by Lienhard et al. (1973), the installation of a gridded structure on the heated surface could also enhance the CHF because the number of the escaping vapor jets each of which allows the liquid flow to the heated surface near the CHF conditions increases with the increment in the number of grid. The present paper describes the results directed toward the further enhancement of the pool boiling CHF of nanofluid by the installation of the GMS onto the HPP on a large heated surface. The tested surface has a diameter of phi 50 mm, which is 20 times the capillary length, lambda(c) (= root sigma/g(rho(l)-rho(v)). For plain surfaces being larger than 20 times the length lambda(c), the CHF can be regarded as being equivalent to that of an infinite large surface. Based on the Lienhard model, grid size of the GMS is chosen so that the CHF of water boiling is increased most effectively. As a result, for simultaneous existence of three factors (the HPP, the GMS and deposition layer of nanoparticles), the CHF has been enhanced to 3.1 MW/m(2), which is the higher than either of the HPP in water, the HPP in water-based nanofluid and the GMS in water. High-speed movie visualization of water boiling revealed that the attachment of the gridded metal structure shortens the hovering period of the coalesced bubble compared to the plain surface. Shortened period causes the more frequent liquid supply to the heated surface. These results illustrate the potential for increasing the safety margin in the IVR (In-Vessel Retention) systems as a heat removal technology. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:969 / 980
页数:12
相关论文
共 53 条
[1]   The effect of capillary wicking action of micro/nano structures on pool boiling critical heat flux [J].
Ahn, Ho Sean ;
Lee, Chan ;
Kim, Joonwon ;
Kim, Moo Hwan .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2012, 55 (1-3) :89-92
[2]   Pool boiling experiments in reduced graphene oxide colloids part II - Behavior after the CHF, and boiling hysteresis [J].
Ahn, Ho Seon ;
Kim, Ji Min ;
Kaviany, Massoud ;
Kim, Moo Hwan .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2014, 78 :224-231
[3]   Pool boiling CHF enhancement by micro/nanoscale modification of zircaloy-4 surface [J].
Ahn, Ho Seon ;
Lee, Chan ;
Kim, Hyungdae ;
Jo, HangJin ;
Kang, SoonHo ;
Kim, Joonwon ;
Shin, Jeongseob ;
Kim, Moo Hwan .
NUCLEAR ENGINEERING AND DESIGN, 2010, 240 (10) :3350-3360
[4]   Effusivity-based correlation of surface property effects in pool boiling CHF of dielectric liquids [J].
Arik, M ;
Bar-Cohen, A .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2003, 46 (20) :3755-3764
[5]   Enhancement of pool boiling critical heat flux in dielectric liquids by microporous coatings [J].
Arik, Mehmet ;
Bar-Cohen, Avram ;
You, Seung Mun .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2007, 50 (5-6) :997-1009
[6]   Effects of heater orientation on critical heat flux for nanoparticle-deposited surface with honeycomb porous plate attachment in saturated pool boiling of water [J].
Aznam, Suazlan Mt ;
Mori, Shoji ;
Sakakibara, Fumiki ;
Okuyama, Kunito .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2016, 102 :1345-1355
[7]   Boiling heat transfer performance and phenomena of Al2O3-water nano-fluids from a plain surface in a pool [J].
Bang, IC ;
Chang, SH .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2005, 48 (12) :2407-2419
[8]   A feasibility assessment of the use of nanofluids to enhance the in-vessel retention capability in light-water reactors [J].
Buongiorno, J. ;
Hu, L. W. ;
Apostolakis, G. ;
Hannink, R. ;
Lucas, T. ;
Chupin, A. .
NUCLEAR ENGINEERING AND DESIGN, 2009, 239 (05) :941-948
[9]   Hierarchically structured surfaces for boiling critical heat flux enhancement [J].
Chu, Kuang-Han ;
Joung, Young Soo ;
Enright, Ryan ;
Buie, Cullen R. ;
Wang, Evelyn N. .
APPLIED PHYSICS LETTERS, 2013, 102 (15)
[10]   Nanofluid boiling: The effect of surface wettability [J].
Coursey, Johnathan S. ;
Kim, Jungho .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2008, 29 (06) :1577-1585