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Numerical Heat Transfer, Part B: Fundamentals
An International Journal of Computation and Methodology
Volume 48, 2005 - Issue 3
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Original Articles

A New Multicomponent Diffusion Formulation for the Finite-Volume Method: Application to Convective Droplet Combustion

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Pages 213-233 | Received 09 Jun 2004, Accepted 03 Feb 2005, Published online: 24 Feb 2007

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Read on this site (6)

Shankhadeep Das, SanjayR. Mathur & JayathiY. Murthy. (2012) Finite-Volume Method for Creep Analysis of Thin RF MEMS Devices Using the Theory of Plates. Numerical Heat Transfer, Part B: Fundamentals 61:2, pages 71-90.
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Shankhadeep Das, SanjayR. Mathur & JayathiY. Murthy. (2012) Finite-Volume Method for Structural Analysis of RF MEMS Devices Using the Theory of Plates. Numerical Heat Transfer, Part B: Fundamentals 61:1, pages 1-21.
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Shankhadeep Das, SanjayR. Mathur & JayathiY. Murthy. (2011) An Unstructured Finite-Volume Method for Structure–Electrostatics Interactions in MEMS. Numerical Heat Transfer, Part B: Fundamentals 60:6, pages 425-451.
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Tien-Mo Shih, Martinus Arie & Derrick Ko. (2011) Literature Survey of Numerical Heat Transfer (2000–2009): Part II. Numerical Heat Transfer, Part A: Applications 60:11-12, pages 883-1096.
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F. Juretić & A. D. Gosman. (2010) Error Analysis of the Finite-Volume Method with Respect to Mesh Type. Numerical Heat Transfer, Part B: Fundamentals 57:6, pages 414-439.
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Vasudevan Raghavan, DanielN. Pope & George Gogos. (2008) Effect of Non-Luminous Flame Radiation During Methanol Droplet Combustion. Combustion Science and Technology 180:3, pages 546-564.
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Articles from other publishers (13)

Chris Schoutrop, Jan van Dijk & Jan ten Thije Boonkkamp. (2021) Multicomponent transport in plasmas; exploiting stoichiometry. Journal of Computational Physics 428, pages 109979.
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Sivaram Ambikasaran & Krithika Narayanaswamy. (2017) An accurate, fast, mathematically robust, universal, non-iterative algorithm for computing multi-component diffusion velocities. Proceedings of the Combustion Institute 36:1, pages 507-515.
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Madjid Birouk & Stephen L. Toth. (2015) Hydrocarbon Droplet Turbulent Combustion in an Elevated Pressure Environment. Flow, Turbulence and Combustion 94:4, pages 843-858.
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Vaibhav Kumar Sahu, Vasudevan Raghavan, Daniel N. Pope & George Gogos. (2011) Numerical Modeling of Steady Burning Characteristics of Spherical Ethanol Particles in a Spray Environment. Journal of Heat Transfer 133:9.
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K.S.C. Peerenboom, J. van Dijk, J.H.M. ten Thije Boonkkamp, L. Liu, W.J. Goedheer & J.J.A.M. van der Mullen. (2011) Mass conservative finite volume discretization of the continuity equations in multi-component mixtures. Journal of Computational Physics 230:9, pages 3525-3537.
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Daniel N. Pope, Vasudevan Raghavan & George Gogos. (2010) Gas-phase entropy generation during transient methanol droplet combustion. International Journal of Thermal Sciences 49:7, pages 1288-1302.
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Hongtao Zhang, Vasudevan Raghavan & George Gogos. (2008) Subcritical and supercritical droplet evaporation within a zero-gravity environment: Low Weber number relative motion. International Communications in Heat and Mass Transfer 35:4, pages 385-394.
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R. Stauch & U. Maas. (2008) The ignition of methanol droplets in a laminar convective environment. Combustion and Flame 153:1-2, pages 45-57.
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Jenn-Kun Kuo, Tzu-Hsiang Yen & Cha’o-Kuang Chen. (2008) Three-dimensional numerical analysis of PEM fuel cells with straight and wave-like gas flow fields channels. Journal of Power Sources 177:1, pages 96-103.
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Jenn-Kun Kuo & Cha’o-Kuang Chen. (2007) The effects of buoyancy on the performance of a PEM fuel cell with a wave-like gas flow channel design by numerical investigation. International Journal of Heat and Mass Transfer 50:21-22, pages 4166-4179.
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V. Raghavan, G. Gogos, V. Babu & T. Sundararajan. (2007) Entropy generation during the quasi-steady burning of spherical fuel particles. International Journal of Thermal Sciences 46:6, pages 589-604.
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Vasudevan Raghavan, Daniel N. Pope & George Gogos. (2006) The Role of Surface Tension Effects During Methanol Droplet Combustion. The Role of Surface Tension Effects During Methanol Droplet Combustion.
Vasudevan Raghavan, Daniel N. Pope & George Gogos. (2006) Effects of Forced Convection and Surface Tension During Methanol Droplet Combustion. Journal of Thermophysics and Heat Transfer 20:4, pages 787-798.
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