Novel Approach to Augment Thermal Conductivity of Dihybrid Nanofluids

被引:0
|
作者
Senthilkumar, G. [1 ]
机构
[1] Sathyabama Inst Sci & Technol, Dept Mech Engn, Chennai 600119, Tamil Nadu, India
关键词
Thermal Conductivity Measurement; Nanotechnology; Nanomaterials; Heat Transfer Coefficients; Heat Exchangers; Fluid Flow Properties; Thermodynamic Properties; CONVECTIVE HEAT-TRANSFER; HYBRID NANOFLUIDS; PHYSICAL PROPERTIES; PRESSURE-DROP; CUO; FLOW; ENHANCEMENT; SUSPENSIONS; VISCOSITY; SENSITIVITY;
D O I
10.2514/1.T6932
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this experimental study, the copper oxide (CuO) nano-particle (NP) was mixed with a water/ethylene glycol hybrid base fluid to form a hybrid nano-fluid (HNF). Further, this HNF was mixed with a MgO nano-particle and also separately with a TiO2 nano-particle to form two different dihybrid nano-fluids (DHNFs). For the preparation of nano-fluids, two-step procedure was used. In all three cases, the volume fraction of the NP was 0.25, 0.5, 0.75, 1.0, and 1.25%. The thermal conductivity (TC) of HNF was measured with KD2 pro and compared with the DHNFs' at temperatures 26, 28, 30, and 32 degrees C. It was inferred that the CuO/TiO2 nano-particle addition in the water/ethylene glycol hybrid base fluid resulted in an average of 0.8% rise in thermal conductivity at chosen temperatures and volume fraction. Also, the agglomeration due to the presence of CuO/MgO was a critical issue at higher volume fractions such as 0.75, 1, and 1.25%. The MgO nano-particle addition in the CuO nano-particle also resulted in a 0.6% increase in thermal conductivity at 0.25 and 0.5% volume fraction. The result was that in the CuO/MgO - water-ethylene glycol nano-fluid combination the TC was enhanced by 29.57% compared with CuO/water/ethylene glycol at a volume fraction increase of 0.5%. Also, it was noted that the nano-particles volume fraction has little effect on thermal conductivity improvement at higher proportion.
引用
收藏
页码:468 / 477
页数:10
相关论文
共 50 条
  • [41] A new thermal conductivity model for nanofluids
    Koo, J
    Kleinstreuer, C
    JOURNAL OF NANOPARTICLE RESEARCH, 2004, 6 (06) : 577 - 588
  • [42] Discussion on the thermal conductivity enhancement of nanofluids
    Xie, Huaqing
    Yu, Wei
    Li, Yang
    Chen, Lifei
    NANOSCALE RESEARCH LETTERS, 2011, 6 : 1 - 12
  • [43] A theoretical model for thermal conductivity of nanofluids
    Chebbi, Rachid
    MATERIALS EXPRESS, 2017, 7 (01) : 51 - 58
  • [44] Thermal conductivity of nanofluids - Experimental and theoretical
    Assael, M. J.
    Metaxa, I. N.
    Kakosimos, K.
    Constantinou, D.
    INTERNATIONAL JOURNAL OF THERMOPHYSICS, 2006, 27 (04) : 999 - 1017
  • [45] Aggregation structure and thermal conductivity of nanofluids
    Xuan, YM
    Li, Q
    Hu, WF
    AICHE JOURNAL, 2003, 49 (04) : 1038 - 1043
  • [46] A new model for thermal conductivity in nanofluids
    Tillman, Pei
    Hill, James M.
    2006 INTERNATIONAL CONFERENCE ON NANOSCIENCE AND NANOTECHNOLOGY, VOLS 1 AND 2, 2006, : 50 - +
  • [47] Nanodiamond Nanofluids for Enhanced Thermal Conductivity
    Branson, Blake T.
    Beauchamp, Paul S.
    Beam, Jeremiah C.
    Lukehart, Charles M.
    Davidson, Jim L.
    ACS NANO, 2013, 7 (04) : 3183 - 3189
  • [48] Recent Advances in Thermal Conductivity of Nanofluids
    Witharana, Sanjeeva
    Weliwita, Jinendrika Anushi
    Chen, Haisheng
    Wang, Liang
    RECENT PATENTS ON NANOTECHNOLOGY, 2013, 7 (03) : 198 - 207
  • [49] A new thermal conductivity model for nanofluids
    Junemoo Koo
    Clement Kleinstreuer
    Journal of Nanoparticle Research, 2004, 6 : 577 - 588
  • [50] NUMERICAL SIMULATION OF THERMAL CONDUCTIVITY OF NANOFLUIDS
    Fan, Jing
    Wang, Liqiu
    PROCEEDINGS OF THE ASME INTERNATIONAL HEAT TRANSFER CONFERENCE - 2010, VOL 6: MICROCHANNELS, NANO, NANOFLUIDS, SPRAY COOLING, POROUS MEDIA, 2010, : 599 - 605