Buoyancy-Driven Heat Transfer Performance of Pure and Hybrid Nanofluids in Minienclosure

被引:7
|
作者
Nimmagadda, Rajesh [1 ]
机构
[1] Indian Inst Technol Hyderabad, Mech & Aerosp Engn, Hyderabad 502285, Telangana, India
关键词
NATURAL-CONVECTION; THERMAL-CONDUCTIVITY; 2-PHASE; FLOW; MODELS; SINGLE; CAVITY; FLUIDS; GRIDS;
D O I
10.2514/1.T5324
中图分类号
O414.1 [热力学];
学科分类号
摘要
The buoyancy-driven heat transfer performance of nanofluids in a square minienclosure has been investigated in the present numerical study. A two-dimensional two-phase mixture model has been developed, validated, and then used for the investigation. Pure water, aluminum oxide, copper, aluminum, and single-walled carbon nanotube nanofluids with base-fluid hybridization (water plus methanol) were used in analyzing the heat transfer performance. The flow as well as the heat transfer characteristics of nanofluids with different particle volume concentrations, particle diameters, and base-fluid hybridizations at different Grashof numbers Gr were reported. A significant enhancement in the average Nusselt number was observed at high Grashof numbers, high particle volume concentrations, low particle diameters, and low methanol percentage in the base fluid. Two equivalent nanofluid pairs of 1vol. % aluminum oxide (d(p)=30nm) and 1vol. % copper (d(p)=100nm) as well as 1vol. % single-walled carbon nanotube and 3vol. % copper (d(p)=100nm) with similar heat transfer characteristics were observed in the present study. This provided a better switching option in choosing an efficient working fluid with minimum cost based on the cooling requirement. It was also observed that, by dispersing single-walled carbon nanotube nanoparticles, one could enhance the heat transfer characteristics of the base fluid containing methanol as antifreeze.
引用
收藏
页码:570 / 579
页数:10
相关论文
共 50 条
  • [21] EKMAN LAYER SCRUBBING AND SHROUD HEAT TRANSFER IN CENTRIFUGAL BUOYANCY-DRIVEN CONVECTION
    Gao, Feng
    Chew, John W.
    PROCEEDINGS OF THE ASME TURBO EXPO: TURBOMACHINERY TECHNICAL CONFERENCE AND EXPOSITION, VOL 7C, 2020,
  • [22] Simulation of buoyancy-driven flow and heat transfer in a horizontal annulus with vertical eccentricity
    Shahraki, F
    Bragg, R
    CHT'01: ADVANCES IN COMPUTATIONAL HEAT TRANSFER II, VOLS 1 AND 2, PROCEEDINGS, 2001, : 897 - 904
  • [23] Inhomogeneous airflow and heat transfer characteristics of buoyancy-driven airflow in aircraft cockpits
    Duan, Xiaosai
    Yu, Suihuai
    Chu, Jianjie
    Zhang, Youyi
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2023, 45 (01) : 1643 - 1653
  • [24] Effects of extended surfaces on heat transfer in buoyancy-driven flow in a square cavity
    Momoniat, E.
    Harley, C.
    Herbst, R. S.
    RESULTS IN ENGINEERING, 2023, 18
  • [25] Buoyancy-Driven Mixed Convection and Radiation Heat Transfer in a Tilted Vented Cavity
    Prakash, Om
    Singh, S. N.
    JOURNAL OF THERMAL SCIENCE AND ENGINEERING APPLICATIONS, 2022, 14 (11)
  • [26] Buoyancy Driven Heat Transfer Behavior of Zinc Oxide (ZnO)-Water Nanofluids
    Paul, Titan C.
    Morshed, A. K. M. M.
    McCants, Dale A.
    Khan, Jamil A.
    PROCEEDINGS OF THE ASME SUMMER HEAT TRANSFER CONFERENCE - 2013, VOL 1, 2014,
  • [27] Thermal Enhancement Effects of Buoyancy-Driven Heat Transfer of Hybrid Nanofluid Confined in a Tilted U-Shaped Cavity
    Asmadi, M. S.
    Kasmani, R. Md
    Siri, Z.
    Saleh, H.
    JOURNAL OF APPLIED FLUID MECHANICS, 2022, 15 (02) : 337 - 348
  • [28] Buoyancy-driven melting and solidification heat transfer analysis in encapsulated phase change materials
    Mallya, Nithin
    Haussener, Sophia
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2021, 164
  • [29] Analysis of the Excergy Transfer and Efficiency of Buoyancy-Driven Ventilation
    Wang, Li
    Li, Nianping
    6TH INTERNATIONAL SYMPOSIUM ON HEATING, VENTILATING AND AIR CONDITIONING, VOLS I-III, PROCEEDINGS, 2009, : 1257 - 1264
  • [30] Buoyancy-driven flows by a heat source at different levels
    Lin, Y. J. P.
    Xu, Z. Y.
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2013, 58 (1-2) : 312 - 321