Smoothed Particle Hydrodynamics Modeling of Natural Convection Around a Heated Horizontal Cylinder: A Comparison With Experiments

Author:

Aragón F.1,Guzmán J. E. V.1,Alvarado-Rodríguez C. E.2,Sigalotti L. Di G.3,Carvajal-Mariscal I.4,Klapp J.5,Uribe-Ramírez A. R.6

Affiliation:

1. Instituto de Ingeniería UNAM Circuito Escolar S/N, Ciudad Universitaria, Coyoacán, Ciudad de México 04510, Mexico

2. Dirección de Cátedras CONACYT, Av. Insurgentes Sur 1582, Crédito Constructor, Benito Juárez, Ciudad de México 03940, Mexico

3. Departamento de Ciencias Básicas, Universidad Autónoma Metropolitana (UAM-A), Av. San Pablo 180, Ciudad de México 02200, Mexico

4. Laboratorio de Ingeniería Térmica e Hidráulica Aplicada, Instituto Politécnico Nacional (IPN) ESIME UPALM, Av. IPN s/n, Ciudad de México 07738, Mexico

5. Departamento de Física, Instituto Nacional de Investigaciones Nucleares, (ININ), Carretera México-Toluca km. 36.5 La Marquesa, Ocoyoacac Estado de México 52750, Mexico

6. Departamento de Ingeniería Química DCNyE, Universidad de Guanajuato, Noria Alta S/N, Guanajuato Guanajuato 36000, Mexico

Abstract

AbstractAn experimental and numerical smoothed particle hydrodynamics (SPH) analysis was performed for the convective flow arising from a horizontal, thin cylindrical heat source enclosed in a glycerin-filled, slender enclosure at low Rayleigh numbers (1.18≤Ra≤242). Both the experiments and the SPH calculations were performed for positive (0.1≤ΔT≤10 K) and negative (−10≤ΔT≤−0.1 K) temperature differences between the source and the surrounding fluid. In all cases, a pair of steady, counter-rotating vortices is formed, accompanied by a plume of vertically ascending flow just above the source for ΔT>0 and a vertically descending flow just below the source for ΔT<0. The maximum flow velocities always occur within the ascending/descending plumes. The SPH predictions are found to match the experimental observations acceptably well with root-mean-square errors (RMSE) in the velocity profiles of the order of ∼10−5 m s−1. The fact that the SPH method is able to reveal the detailed features of the flow phenomenon demonstrates the correctness of the approach.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

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