Effect of an Adiabatic Obstacle on the Symmetry of the Temperature, Flow, and Electric Charge Fields during Electrohydrodynamic Natural Convection
Abstract
:1. Introduction
2. Materials and Methods
3. Results and Discussion
3.1. Charge Density Distribution
3.2. Flow Structure
3.3. Temperature Distribution
- The vertical stratification disappears for the configurations Cf.1 and Cf.4.
- For T < 400, the convective regime disappears to a conductive regime for Cf.4.
- The thermal gradient inversion disappears for Cf.1, Cf.3, and Cf.4.
4. Conclusions
- Electrical force can either promote or disturb the symmetry of the flow and temperature fields, depending on its strength relative to the thermal forces.
- Low T values boost the thermal-driven symmetry, disrupting the natural convective symmetry, due to the electrical force dominance.
- The position of the adiabatic obstacle has an important effect on the symmetry of the flow, temperature, and electric charge distributions.
- Symmetrical flow structures are generally observed for balanced electrical and buoyancy forces, while asymmetries appear when one force dominates.
- For a low T value, the flow is always described by a single-cell regime. By adding high electrical forces (T > 400), the system evolves towards a multi-cell regime characterised by two counter-rotating cells.
- The applied electric field intensifies the heat transfer rate; depending on the used configuration, a local and average improvement of about 165% and 100% can be achieved, respectively.
- Compared to the reference case without an obstacle, the choice of the dimension and position of the obstacle can either improve the convective transfer by 27% or reduce it by about 21%.
- Five multiparameter mathematical correlations to determine the average Nusselt number were established using the linear regression method. These correlations, which have a very high coefficient of determination, can be useful in certain practical engineering scenarios.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
a | Thermal diffusivity (m2·s−1) |
C | Dimensionless number of the injection strength |
Ca | Capillary number |
Cp | Specific heat in constant pressure (J.kg−1.K−1) |
Electric field (V·cm−1) | |
g | Acceleration of gravity (m·s−2) |
H | Cavity height (m) |
K | Ionic mobility (m2.V−1.s−1) |
L | Cavity width (m) |
M | Dimensionless number which characterizes EHD properties of the liquid |
Nu | Nusselt number |
P | Pression (Pa) |
Pr | Prandtl number |
q | Electric charge density (C·m−3) |
R | Electric Reynolds number |
Ra | Thermal Rayleigh number |
T | Dimensionless electric Rayleigh number |
t | Time (s) |
U | Velocity (m·s−1) |
V | Electric potential (V) |
x,y | Cartesian coordinate (m) |
Greek symbols | |
β | Coefficient of thermal expansion of fluid (K−1) |
ε | Permittivity of the fluid (F·m−1) |
θ | Dimensionless temperature (K) |
λ | Thermal conductivity |
μ | Dynamic viscosity (Pa·s) |
ν | Kinematic viscosity (m2·s−1) |
ρ | Density (kg·m−3) |
ψ | Stream function (m2·s−1) |
ω | Vorticity (s−1) |
Subscript | |
C | Cold |
H | Hot |
i | Emitting electrode |
o | Receiving electrode |
‘ | Obstacle |
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Configuration | H’/H | L’/L | Obstacle Position |
---|---|---|---|
Cf1 | 0.4 | 0.3 | Centred on the bottom wall |
Cf2 | 0.3 | 0.4 | Centred on the right-side wall |
Cf3 | 0.4 | 0.3 | Centred on the top wall |
Cf4 | 0.34 | 0.34 | Centred |
Cf5 | - | - | Without obstacle |
N × N | ||||
31 × 31 | 61 × 61 | 101 × 101 | 201 × 201 | |
Nu mean (hot wall) | 2.19 | 2.96 | 3.04 | 3.06 |
Deviation (%) | (27.96) | (2.63) | (0.65) | |
Nu mean (Cold wall) | 1.45 | 1.69 | 1.72 | 1.73 |
* Deviation (%) | (15.70) | (1.74) | (0.58) | |
Ψmax | 13.35 | 15.29 | 15.61 | 15.63 |
Deviation (%) | (14.48) | ((2.05) | (0.128) |
Configuration | Mean Nu | ||
---|---|---|---|
T = 0 | T = 700 | % Increase | |
Cf.1 | 2.11 | 3.73 | 76.77 |
Cf.2 | 2.20 | 4.35 | 97.72 |
Cf.3 | 1.70 | 3.40 | 100.0 |
Cf.4 | 1.50 | 2.81 | 87.33 |
Cf.5 | 1.89 | 3.40 | 79.89 |
Configuration | Empirical Correlation | R2 |
---|---|---|
Cf.1 | 0.954 | |
Cf.2 | 0.949 | |
Cf.3 | 0.943 | |
Cf.4 | 0.952 | |
Cf.5 | 0.955 |
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Elkhazen, M.I.; Akrour, D.; Hassen, W.; Almeshaal, M.A.; Palaniappan, M.; Choubani, K.; Hnaien, N. Effect of an Adiabatic Obstacle on the Symmetry of the Temperature, Flow, and Electric Charge Fields during Electrohydrodynamic Natural Convection. Symmetry 2024, 16, 761. https://doi.org/10.3390/sym16060761
Elkhazen MI, Akrour D, Hassen W, Almeshaal MA, Palaniappan M, Choubani K, Hnaien N. Effect of an Adiabatic Obstacle on the Symmetry of the Temperature, Flow, and Electric Charge Fields during Electrohydrodynamic Natural Convection. Symmetry. 2024; 16(6):761. https://doi.org/10.3390/sym16060761
Chicago/Turabian StyleElkhazen, Mohamed Issam, Dalila Akrour, Walid Hassen, Mohammed A. Almeshaal, Murugesan Palaniappan, Karim Choubani, and Nidhal Hnaien. 2024. "Effect of an Adiabatic Obstacle on the Symmetry of the Temperature, Flow, and Electric Charge Fields during Electrohydrodynamic Natural Convection" Symmetry 16, no. 6: 761. https://doi.org/10.3390/sym16060761
APA StyleElkhazen, M. I., Akrour, D., Hassen, W., Almeshaal, M. A., Palaniappan, M., Choubani, K., & Hnaien, N. (2024). Effect of an Adiabatic Obstacle on the Symmetry of the Temperature, Flow, and Electric Charge Fields during Electrohydrodynamic Natural Convection. Symmetry, 16(6), 761. https://doi.org/10.3390/sym16060761