• Tidak ada hasil yang ditemukan

Reference: Module 5: - Nptel

N/A
N/A
Protected

Academic year: 2024

Membagikan "Reference: Module 5: - Nptel"

Copied!
2
0
0

Teks penuh

(1)

Reference: Module 5:

[1] G. Biswas, K . Torii, D . Fujii and K. Nishino, Numerical and Experimental Determination of Flow Structure and Heat Transfer Effects of Longitudinal Vortices in a Channel Flow, Int. J.

Heat Mass Transfer, Vol. 39, pp. 3441-3451, 1996.

[2] A. Brandt, J.E. Dendy and H. Ruppel, The Multigrid Method for Semi-Implicity Hydrodynamics Codes, J. Comput. Phys, Vol. 34, pp. 348-370, 1980.

[3] M. Baraza, P. Chassaing and H. Ha Minh, Numerical Study and Physical Analysis of the Pressure and Velocity Fields in the Near-Wake of a Circular Cylinder, J. Fluid Mech., Vol. 165, pp. 79-130, 1986.

[4] A. j. Chorin, Numerical Methods for Solving Incompressible Viscous Problems, J. Comput.

Phys., Vol. 2, pp. 12-26-1967.

[5] R. W. Davis and E. F. Moore, A Numerical Study of Vortex Shedding from Rectangles, J.

Fluid Mech., 116: 475-506, 1982.

[6] F. H. Harlow and J. E. Welch, Numerical Calculation of Three-dependent Viscous

Incompressible Flow of Fluid with Free Surfaces, Phys. of Fluids Vol. 8, pp. 2182-2188, 1965.

[7] C. W. Hirt and J. L. Cook, Calculating Three-Dimensional Flows Around Structures and Over Rough Terrain, J. Comput. Phys. Vol. 10 pp. 324-340, 1972.

[8] C. W. Hirt, B. D. Nicholas and N. C. Romera, Numerical Solution Algorithm For Transient Fluid Flows LA-5852, Los Alamos Scientific Laboratory Report , 1975.

[9] J. Kim and P. Moin, Application of Fractional Step Method to Incompressible Navier-Strokes Equation, J comput. Phys ., Vol. 59, pp. 308-323, 1985.

[10] S. W. Kim and T. J. Benson, Comparison of the SMAC, PISO and Iterative Time Advancing Schemes for Unsteady Flows, Computers & Fluids , Vol. 21, pp. 435-454, 1992.

[11] B. P. Leonard, A Stable and accurate Convective Modeling Procedure Based on Quadratic Upstream Interpolation, Comp. Methods Appl. Mech. Engr ., Vol. 19 pp. 59-98, 1979.

[12] A. Mukhopadhyay, G. Biswas and T. Sundararajan, Numerical Investigation of Confined Wakes behind a Square cylinder in a Channel, Int. J. Muner, Mathods Fluids , Vol. 14, pp. 1473- 1484, 1992.

[13] A. Okajima, Strouhal Numbers of Rectangular Cylinders, J. Fluid Mech., Vol. 123, pp 397- 398, 1982.

(2)

[14] S. V. Patankar, A Calculation Procedure for Two-Dimensional Elliptic Situation, J. Numer.

Heat Transfer , Vol. 4. pp. 409-425, 1981.

[15] S. V. Patankar, Numerical Heat Transfer and Fluid Flow, Hemisphere Publishing Co., 1980 [16] S. V. Patankar, and D. B. Spalding, A Calculation Procedure for the Heat, Mass and

Momentum Transfer in Three-Dimensional Parabolic Flows, Int. J. Heat and Mass Transfer, Vol. 15, pp. 1787-1805, 1972.

[17] R. Peyret and T. D. Taylor, Computational Methods for Fluid Flow, Springer Verlag, 1983.

[18] J. Robichaux, D. K. Tafti and S. P. Vanka, Large Eddy Simulation of Turbulence on the CM-2, J. Numer. Heat Transfer, Part-B , Vol.21, pp. 367-388, 1992.

[19] L. H. Thomas, Elliptic Problems in Linear Difference Equation Over A Network, Waston Sci. Compt. Lab. Report, Columbia University, New York, 1949.

[20] J. P. Van Doormal and G. D. Raithby, Enhancement of the SIMPLE Methods for Predicting Incompressible Fluid Flows, J. Numer. Heat Transfer , Vol. 7, pp. 147-163, 1984.

[21] S. P. Vanka, B. C. J. Chen and W. T. Sha, A Semi-Implicit Calculation Procedure for Flows Described in Body-Fitted Coordinate System, J. Numer. Heat Transfer , Vol. 3, pp. 1-19, 1980.

[22] J. A. Viecelli, A. Computing Method for Incompressible Flows Boundary By Moving Walls, J. Comput. Phys., Vol. 8, pp. 119-143, 1971.

Referensi

Dokumen terkait

Judul Penelitian : NUMERICAL APPROACH TO WOOD PYROLYSIS IN CONSIDERATION HEAT AND MASS TRANSFER AND CHEMICAL REACTION.. Nama Mahasiswa : MUHAMMAD IDRIS Nomor Pokok :

Harmsworth, Forced and mixed convective heat transfer from accelerated flow past an elliptic cylinder, International Journal of Heat and Mass Transfer, Vol. Chhabra, Steady flow

This study presents a numerical solution for the buoyancy- driven MHD mixed convection stagnation-point flow, heat and mass transfer of a nanofluid over a

Pop, Natural convection flow and heat transfer in an eccentric annulus filled by Copper nanofluid, International Journal of Heat and Mass Transfer, Vol.. Jiang, X, Zhang, Unsteady

35 Figure 4.6 Variation heat transfer coefficient for laminar flow Re =1278.0 in circular micro channel for water and its nanofluid 37 Figure 4.7 Variation heat transfer

Consolidated method to predicting pressure drop and heat transfer coefficient for both subcooled and saturated flow boiling in micro-channel heat sinks, International Journal of Heat

COURSE DETAIL S No Topic 1 Introduction:Importance of CVD processes; historical perspective 2 Basics of CVD: multi-component mass transfer; heat transfer; chemical reactions;

This model predicts transient behavior of temperature, pressure, mass flow rate, mass of liquid and vapor of refrigerant, quality, heat transfer in household refrigerators.. This paper