Experimental and numerical study of thermo-hydraulic performance of circumferentially ribbed tube with Al2O3 nanofluid

被引:17
作者
Khdher, AbdolBaqi Mohammed [1 ]
Sidik, Nor Azwadi Che [2 ]
Mamat, Rizalman [1 ]
Hamzah, Wan Azmi Wan [1 ]
机构
[1] Univ Malaysia Pahang, Fac Mech Engn, Pekan 26600, Pahang, Malaysia
[2] Univ Teknol Malaysia, Fac Mech Engn, Skudai 81310, Johor Bahru, Malaysia
关键词
Al2O3; nanofluid; Ribbed tube; Turbulent flow; Single-phase; HEAT-TRANSFER ENHANCEMENT; THERMAL-CONDUCTIVITY; FLUID-FLOW; TRANSFER AUGMENTATION; AQUEOUS SUSPENSIONS; CHANNEL; VISCOSITY; FRICTION; BEHAVIOR; RIBS;
D O I
10.1016/j.icheatmasstransfer.2015.10.003
中图分类号
O414.1 [热力学];
学科分类号
摘要
The mechanisms of heat transfer enhancement are used in many industrial applications. Several techniques have been promoted to enhance heat transfer rate and to decrease the size and cost of equipment especially the heat exchangers. In this paper, heat transfer coefficient and pressure drop for Al2O3/water nanofluid flow inside circumferential ribbed tubes with different rib dimensions have been experimentally and numerically studies. The nanoparticie size was set equal to 13 nm and the volume fractions from 0% to 3% were considered. The ribbed copper tubes tested in this investigation with inner diameter of 14.9 mm have the ranges: circumferential depth from 0.5 mm to 1.0 mm and axial pitch distance from 5 mm to 15 mm. The inlet temperature of turbulent nanofluid was 25 degrees C and the constant wall heat flux was 5,000 W/m(2). Comparison of numerical data of ribbed tubes with plain tube shown that the heat transfer coefficient from 92% to 621% and friction factor from 25% to 241% compared to those obtained in smooth tube depending on the circumferential geometric parameters, mass velocity and thermal conductivity of the working fluid. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:34 / 40
页数:7
相关论文
共 46 条
  • [1] Heat transfer augmentation in the straight channel by using nanofluids
    Abdolbaqi, M. Kh.
    Azwadi, C. S. N.
    Mamat, R.
    [J]. CASE STUDIES IN THERMAL ENGINEERING, 2014, 3 (03) : 59 - 67
  • [2] Pressure drop and heat transfer comparison for both microfin tube and twisted-tape inserts in laminar flow
    Al-Fahed, S
    Chamra, LM
    Chakroun, W
    [J]. EXPERIMENTAL THERMAL AND FLUID SCIENCE, 1998, 18 (04) : 323 - 333
  • [3] [Anonymous], 2011, ANSYS FLUENT THEOR G
  • [4] Experimental determination of turbulent forced convection heat transfer and friction factor with SiO2 nanofluid
    Azmi, W. H.
    Sharma, K. V.
    Sarma, P. K.
    Mamat, Rizalman
    Anuar, Shahrani
    Rao, V. Dharma
    [J]. EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2013, 51 : 103 - 111
  • [5] Using Neural Network for Determination of Viscosity in Water-TiO2 Nanofluid
    Bahiraei, Mehdi
    Hosseinalipour, Seyed Mostafa
    Zabihi, Kaveh
    Taheran, Ehsan
    [J]. ADVANCES IN MECHANICAL ENGINEERING, 2012,
  • [6] The implications and challenges of enhanced heat transfer for the chemical process industries
    Bergles, AE
    [J]. CHEMICAL ENGINEERING RESEARCH & DESIGN, 2001, 79 (A4) : 437 - 444
  • [7] Viscosity of water based SWCNH and TiO2 nanofluids
    Bobbo, Sergio
    Fedele, Laura
    Benetti, Anna
    Colla, Laura
    Fabrizio, Monica
    Pagura, Cesare
    Barison, Simona
    [J]. EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2012, 36 : 65 - 71
  • [8] Modeling the natural convective flow of micropolar nanofluids
    Bourantas, G. C.
    Loukopoulos, V. C.
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2014, 68 : 35 - 41
  • [9] Bozorgan N., 2012, INT J ADV DES MANUF, V5
  • [10] Analysis of heat transfer augmentation and flow characteristics due to rib roughness over absorber plate of a solar air heater
    Chaube, A
    Sahoo, PK
    Solanki, SC
    [J]. RENEWABLE ENERGY, 2006, 31 (03) : 317 - 331