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      Buongiorno의 비균질 모델을 사용한 나노유체의 층류 자연대류 해석 = COMPUTATION OF LAMINAR NATURAL CONVECTION OF NANOFLUID USING BUONGIORNO'S NONHOMOGENEOUS MODEL

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      https://www.riss.kr/link?id=A99862425

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      다국어 초록 (Multilingual Abstract)

      A numerical study of a laminar natural convection of the CuO-water nanofluid in a square cavity using the Buongiorno"s nonhomogeneous model is presented. All the governing equations including the volume fraction equation are discretized on a cell-centered, non-uniform grid employing the finite-volume method with a primitive variable formulation. Calculations are performed over a range of Rayleigh numbers and volume fractions of the nanopartile. From the computed results, it is shown that both the homogeneous and nonhomogeneous models predict the deterioration of the natural convection heat transfer well with an increase of the volume fraction of nanoparticle at the same Rayleigh number, which was observed in the previous experimental studies. It is also shown that the differences in the computed results of the average Nusselt number at the wall between the homogeneous and nonhomogeneous models are very small, and this indicates that the slip mechanism of the Brown diffusion and thermophoresis effects are negligible in the laminar natural convection of the nanofluid. The degradation of the heat transfer with an increase of the volume fraction of the nanoparticle in the natural convection of nanofluid is due to the increase of the viscosity and the decrease of the thermal expansion coefficient and the specific heat. It is clarified in the present study that the previous controversies between the numerical and experimental studies are owing to the different definitions of the Nusselt number.
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      A numerical study of a laminar natural convection of the CuO-water nanofluid in a square cavity using the Buongiorno"s nonhomogeneous model is presented. All the governing equations including the volume fraction equation are discretized on a cell-cent...

      A numerical study of a laminar natural convection of the CuO-water nanofluid in a square cavity using the Buongiorno"s nonhomogeneous model is presented. All the governing equations including the volume fraction equation are discretized on a cell-centered, non-uniform grid employing the finite-volume method with a primitive variable formulation. Calculations are performed over a range of Rayleigh numbers and volume fractions of the nanopartile. From the computed results, it is shown that both the homogeneous and nonhomogeneous models predict the deterioration of the natural convection heat transfer well with an increase of the volume fraction of nanoparticle at the same Rayleigh number, which was observed in the previous experimental studies. It is also shown that the differences in the computed results of the average Nusselt number at the wall between the homogeneous and nonhomogeneous models are very small, and this indicates that the slip mechanism of the Brown diffusion and thermophoresis effects are negligible in the laminar natural convection of the nanofluid. The degradation of the heat transfer with an increase of the volume fraction of the nanoparticle in the natural convection of nanofluid is due to the increase of the viscosity and the decrease of the thermal expansion coefficient and the specific heat. It is clarified in the present study that the previous controversies between the numerical and experimental studies are owing to the different definitions of the Nusselt number.

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      목차 (Table of Contents)

      • 1. 서론
      • 2. 수치해석
      • 3. 결과 및 고찰
      • 4. 결론
      • References
      • 1. 서론
      • 2. 수치해석
      • 3. 결과 및 고찰
      • 4. 결론
      • References
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      참고문헌 (Reference)

      1 Brinkman, H.C., "The Viscosity of Concentrated Suspensions and Solutions" 20 : 571-581, 1952

      2 Nguyen, C.T., "Temperature and Particle-Size Dependent Viscosity Data for Water-Based Nanofluids-Hysteresis Phenomenon" 28 : 1492-1506, 2007

      3 Rhie, C.M., "Numerical Study of the Turbulent Flow Past an Airfoil with Trailing Edge Separation" 21 : 1525-1532, 1983

      4 Jou, R.Y., "Numerical Research of Nature Convective Heat Transfer Enhancement Filled with Nanofluids in Rectangular Enclosures" 33 : 727-736, 2006

      5 Patankar, S.V., "Numerical Heat Transfer and Fluid Flow" Mcgraw-Hill Book Company 1980

      6 Ogut, E.B., "Natural Convection of Water-Based Nanofluids in an Inclined Enclosure with a Heat Source" 48 : 2063-2073, 2009

      7 Putra, N., "Natural Convection of Nano-Fluids" 39 : 775-784, 2003

      8 de Vahl Davis, "Natural Convection of Air in a Square Cavity: A Benchmark Numerical Solution" 3 : 249-264, 1983

      9 Haddad, Z., "Natural Convection in Nanofluids; Are the Thermophoresis and Brownian Motion Effects Significant in Nanofluid Heat Transfer Enhancement" 57 : 152-162, 2012

      10 Noghrehabadi, A., "Natural Convection Heat Transfer of Nanofluids Due to Thermophoresis and Brownian Diffusion in a Square Enclosure" 1 : 88-93, 2012

      1 Brinkman, H.C., "The Viscosity of Concentrated Suspensions and Solutions" 20 : 571-581, 1952

      2 Nguyen, C.T., "Temperature and Particle-Size Dependent Viscosity Data for Water-Based Nanofluids-Hysteresis Phenomenon" 28 : 1492-1506, 2007

      3 Rhie, C.M., "Numerical Study of the Turbulent Flow Past an Airfoil with Trailing Edge Separation" 21 : 1525-1532, 1983

      4 Jou, R.Y., "Numerical Research of Nature Convective Heat Transfer Enhancement Filled with Nanofluids in Rectangular Enclosures" 33 : 727-736, 2006

      5 Patankar, S.V., "Numerical Heat Transfer and Fluid Flow" Mcgraw-Hill Book Company 1980

      6 Ogut, E.B., "Natural Convection of Water-Based Nanofluids in an Inclined Enclosure with a Heat Source" 48 : 2063-2073, 2009

      7 Putra, N., "Natural Convection of Nano-Fluids" 39 : 775-784, 2003

      8 de Vahl Davis, "Natural Convection of Air in a Square Cavity: A Benchmark Numerical Solution" 3 : 249-264, 1983

      9 Haddad, Z., "Natural Convection in Nanofluids; Are the Thermophoresis and Brownian Motion Effects Significant in Nanofluid Heat Transfer Enhancement" 57 : 152-162, 2012

      10 Noghrehabadi, A., "Natural Convection Heat Transfer of Nanofluids Due to Thermophoresis and Brownian Diffusion in a Square Enclosure" 1 : 88-93, 2012

      11 Ho, C.J., "Natural Convection Heat Transfer of Alumina-Water Nanofluid in Vertical Square Enclosures: An Experimental Study" 459 : 1345-1353, 2010

      12 Ghasemi, B., "Natural Convection Heat Transfer in an Inclined Enclosure Filled with a Water-CuO Nanofluid" 55 : 807-823, 2009

      13 Stone, H.L., "Iterative Solution of Implicit Approximation of Multi-Dimensional Partial Differential Equations" 5 : 530-545, 1968

      14 Hagen, K.D., "Heat Transfer with Applications" Prentice-Hall 1999

      15 Weng, D., "Formulation of Nanofluids for Natural Convective Heat Transfer Applications" 26 : 855-864, 2005

      16 Hortmann, M., "Finite Volume Multigrid Prediction of Laminar Natural Convection: Benchmark Solutions" 11 : 189-207, 1990

      17 Li, C.H., "Experimental Studies of Natural Convection Heat Transfer of Al2O3/DI Water Nanoparticles Suspensions (Nanofluids)" 2010 : 1-10, 2010

      18 Agwu Nnanna, A.G., "Experimental Model of Temperature-Driven Nanofluid" 129 : 697-704, 2007

      19 Choi, S.U.S., "Enhancing Thermal Conductivity of Fluids with Nanoparticles" 231 : 99-105, 1995

      20 Chon, C.H., "Empirical Correlation Finding the Role of Temperature and Particle Size for Nanofluid (Al2O3) Thermal Conductivity Enhancement" 87 : 153107-, 2005

      21 Abu-Nada, E., "Effects of Variable Viscosity and Thermal Conductivity of CuO-Water Nanofluid on Heat Transfer Enhancement in Natural Convection: Mathematical Model and Simulation" 132 : 0524011-0524019, 2010

      22 Sheikhzadeh, G.A., "Effects of Nanoparticles Transport Mechanism on Al2O3-Water Nanofluid Natural Convection in a Squar Enclosure" 66 : 51-62, 2013

      23 Abu-Nada, E., "Effects of Inclination Angle on Natural Convection in Enclosures Filled with Cu-Water Nanofluid" 30 : 669-678, 2009

      24 Abu-Nada, E., "Effect of Nanofluid Variable Properties on Natural Convection in Enclosures" 49 : 479-491, 2010

      25 Buongiorno, J., "Convective Transport in Nanofluids" 128 : 240-250, 2006

      26 Rashmi, W., "CFD Studies on Natural Convection Heat Transfer of Al2O3-Water Nanofluids" 47 : 1301-1310, 2011

      27 Khanafer, K., "Buoyancy-Driven Heat Transfer Enhancement in a Two-Dimensional Enclosure Utilizing Nanofluids" 46 : 3639-3653, 2003

      28 Maxwell, J., "A Treatise on Electricity and Magnetism" Oxford University Press 435-441, 1904

      29 Haddad, Z., "A Review on Natural Convective Heat Transfer of Nanofluids" 16 : 5363-5378, 2012

      30 Zhu, J., "A Low-Diffusive and Oscillation Free Convection Scheme" 7 : 225-232, 1991

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      2027 평가예정 재인증평가 신청대상 (재인증)
      2021-01-01 평가 등재학술지 유지 (재인증) KCI등재
      2018-01-01 평가 등재학술지 유지 (등재유지) KCI등재
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      2011-01-01 평가 등재 1차 FAIL (등재유지) KCI등재
      2009-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2006-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2005-06-16 학술지명변경 외국어명 : Jpurnal of Computatuonal Fluids Engineering -> Korean Society of Computatuonal Fluids Engineering KCI등재후보
      2005-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2004-01-01 평가 등재후보 1차 FAIL (등재후보1차) KCI등재후보
      2002-07-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      2016 0.2 0.2 0.19
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