Numerical Study of Natural Convection Flow in Rectangular Cavity with Viscous Dissipation and Internal Heat Generation for Different Aspect Ratios
Abstract
:1. Introduction
2. Problem Formulation
3. Method of Solution
4. Results and Discussion
4.1. The Effect of Cavity Width
4.2. Effect of Prandtl Number ()
4.3. Effect of Rayleigh Number (When )
4.4. Effect of Rayleigh Number in the Presence of VD (When )
4.5. Effect of Volumetric Internal Heat Generation Parameter ()
4.6. Effect of Eckert Number ()
5. Conclusions
- As the width of the cavity increases from 1 to 4, the intensity of fluid circulation increases. However, the average and local heat transfer decreases along the heated vertical wall as the aspect ratio increases.
- The flow strength and thermal boundary layer decrease as the value of Pr increases. The average and local heat transfer show an increase as Pr rises from 0.7 to 15.
- The thermal performance and flow field strengths within the enclosure amplify as the Rayleigh number increases. Also, the average heat transfer enhances significantly with the increase in Ra.
- The steady flow structure persists until , beyond which the flow transitions into an oscillatory state at in the presence of viscous dissipation. In this scenario, the motion is driven by the combined effects of buoyancy forces, viscous dissipation, and constant volumetric heat generation.
- The average Nusselt number decreases with the increase in the volumetric internal heat generation parameter () and viscous dissipation.
- The strength of the vortex cell increases with the rise of the Eckert number from = 0 to . The stability range observed at , and, is . However, for , the flow exhibits an oscillatory pattern.
- A heat transfer comparison is also made for various values of VD parameter (, , ) as a function of Rayleigh number, and it is observed that heat transfer rates decreases with the rise in viscous dissipation parameter.
- Our research extensively investigated the simultaneous impact of viscous dissipation, cavity width, and internal heat generation on fluid flow and temperature distribution. While numerous researchers have focused on studying natural convection in cavities either without or with only viscous dissipation [20,36,37].
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
Nomenclature | , | dimensional velocity components (ms) | |
A | aspect ratio | u, v | non-dimensional velocity components |
specific heat at constant pressure (JKg−1K−1) | , | dimensional coordinates of physical domain (m) | |
modified Eckert number | x, y | non-dimensional coordinates of physical domain | |
g | acceleration due to gravity (m/s) | Greek letters | |
h | mesh spacing | thermal diffusivity (m2s−1) | |
(i, j) | nodal locations on grid | coefficient of volume expansion (K) | |
k | thermal conductivity of the media (Wm−1K−1) | non-dimensional temperature | |
L | cavity length (m) | effective dynamic viscosity (kgm−1s−1) | |
average Nusselt number along heated wall | fluid density (kgm) | ||
local Nusselt number along heated wall | effective kinematic viscosity (m2s−1) | ||
average Nusselt number along cold wall | viscous dissipation function | ||
local Nusselt number along cold wall | Relaxation parameter for SOR | ||
fluid pressure (Pa) | dimensional stream function (m2s−1) | ||
Prandtl number | dimensionless stream function | ||
constant heat source | dimensional vorticity function (s) | ||
modified Rayleigh number | dimensionless vorticity function | ||
volumetric heat generation rate (Wm) | Abbreviations | ||
temperature (K) | IFDM | implicit finite difference method | |
, | boundary temperatures (K) | IHG | internal heat generation |
dimensional time (s) | VD | viscous dissipation | |
t | dimensionless time | ||
reference velocity (ms) |
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Meshes | Error% | Error% | CPU Time | ||
---|---|---|---|---|---|
2.23302 | 5.27402 | 6.83177 | 5.8888 | 0:01:06:30 | |
2.11525 | 2.62711 | 6.42946 | 3.55628 | 0:02:38:50 | |
2.05968 | 1.50994 | 6.20081 | 2.13246 | 0:03:23:59 | |
2.02858 | 0.99182 | 6.06858 | 1.33078 | 0:05:05:60 | |
2.00846 | 0.6681 | 5.98782 | 0.87293 | 0:10:36:40 | |
1.99504 | 5.93555 | 1:05:36:40 |
Present | 0.8918 | −0.8918 | 0.0451 | 0 |
Churbanov et al. [9] | 0.878 | −0.878 | 0.0477 | 0 |
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Begum, Z.; Saleem, M.; Islam, S.U.; Saha, S.C. Numerical Study of Natural Convection Flow in Rectangular Cavity with Viscous Dissipation and Internal Heat Generation for Different Aspect Ratios. Energies 2023, 16, 5267. https://doi.org/10.3390/en16145267
Begum Z, Saleem M, Islam SU, Saha SC. Numerical Study of Natural Convection Flow in Rectangular Cavity with Viscous Dissipation and Internal Heat Generation for Different Aspect Ratios. Energies. 2023; 16(14):5267. https://doi.org/10.3390/en16145267
Chicago/Turabian StyleBegum, Zobia, Muhammad Saleem, Shams Ul Islam, and Suvash C. Saha. 2023. "Numerical Study of Natural Convection Flow in Rectangular Cavity with Viscous Dissipation and Internal Heat Generation for Different Aspect Ratios" Energies 16, no. 14: 5267. https://doi.org/10.3390/en16145267
APA StyleBegum, Z., Saleem, M., Islam, S. U., & Saha, S. C. (2023). Numerical Study of Natural Convection Flow in Rectangular Cavity with Viscous Dissipation and Internal Heat Generation for Different Aspect Ratios. Energies, 16(14), 5267. https://doi.org/10.3390/en16145267