Heat Transfer in an Inclined Rectangular Cavity Filled with Hybrid Nanofluid Attached to a Vertical Heated Wall Integrated with PCM: An Experimental Study
Abstract
:1. Introduction
2. Experimental Work
2.1. Test Rig
2.2. Test of the Physical Problem
3. The Effective Thermophysical Properties of Hybrid Nanofluid
4. Rayleigh and Nusselt Numbers and Validation
5. Results
6. Conclusions
- In general, temperatures were observed to be more widely distributed in the upper half of the cavity due to the effects of buoyant force and different densities on natural convection.
- When the concentration of hybrid nanofluid was increased, the thermal conductivity increased; therefore, the reduction rate of heat transfer increased due to the high thermal conductivity of the hybrid nanomaterial.
- The effect of the cavity inclination angle on heat transfer was pronounced, with θ = 30° being the optimal angle for temperature reduction, where its reduction rate reached the highest value (22.2%) compared to θ = 0°.
- The temperature differential between hot and cold walls affected the reduction rate where proportionality was established between them, with the greatest value occurring when ∆T = 20 °C, and 22% was reached.
- The value of the Nusselt number increased by increasing the temperature difference, which happened due to the increase in the buoyant force in the hybrid nanofluid cavity.
- Increase in the Nusselt number means an increase in the natural convection heat transmission rate in the nanofluid cavity, but at the same time indicates that a large amount of heat crossed through the middle wall due to the lack of paraffin wax, which was responsible for lowering the temperature.
- Adding paraffin wax along the hot wall was the optimal method for lowering the temperature of the wall by absorbing the high heat and decreasing the transient heat of the nanofluid cavity.
- The Nusselt number increased with increasing nanomaterial concentration, which was caused by greater heat exchange between the paraffin wax and the hybrid nanofluid. Heat transfer via natural convection increased as thermal conductivity rose, as we have previously shown by increasing the hybrid nanofluid concentration.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
A | Area |
Cp | Specific heat, J·kg−1·K−1 |
g | The acceleration of gravity, m·s−2 |
h | Heat transfer coefficient |
I | Current (ampere) |
K | Thermal conductivity, W·m−1·K−1 |
m. | Mass flow rate of the fluid |
Nu | Nusselt number |
P | Non-dimensional pressure |
PCM | Phase change material |
Pr | Prandtl number |
Q | Heat transfer |
Ra | Rayleigh number |
Tc | Cold temperature, K |
Th | Hot temperature, K |
V | Voltage (volts) |
Greek symbols | |
θ | Inclination angle of the cavity |
µ | Dynamic viscosity, kg·m−1·s−1 |
α | Thermal diffusivity, m2·s−1 |
β | Thermal expansion coefficient, K−1 |
Φ | Volume concentration of the nanofluid |
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Property | Pure Water | Al2O3 | CuO |
---|---|---|---|
ρ (kg/m3) | 997.1 | 3970 | 6500 |
Cp (J/kg·K) | 4179 | 765 | 540 |
k (W/m·K) | 0.613 | 40 | 18.0 |
ν [m2/s] | 0.891 × 10−6 | ---- | ---- |
β [1/T] (1/K) | 2.1 × 10−4 | 8.5 × 10−6 | 0.85 × 10−5 |
α (m2/s) | 1.47 × 10−7 | 13.17 × 10−6 | 51.28 × 10−7 |
T-Solidus | 38 °C |
T-liquidus | 43 °C |
Latent heat of melting | 174 kJ/kg |
Density | 800 kg/m3 (solid) |
760 kg/m3 (liquid) | |
Thermal expansion coefficient | 0.00081/°k |
Specific heat capacity | 2 kJ/kg·K |
Thermal conductivity | 0.2 W/m·K |
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Al-Maliki, M.; Al-Farhany, K.; Sarris, I.E. Heat Transfer in an Inclined Rectangular Cavity Filled with Hybrid Nanofluid Attached to a Vertical Heated Wall Integrated with PCM: An Experimental Study. Symmetry 2022, 14, 2181. https://doi.org/10.3390/sym14102181
Al-Maliki M, Al-Farhany K, Sarris IE. Heat Transfer in an Inclined Rectangular Cavity Filled with Hybrid Nanofluid Attached to a Vertical Heated Wall Integrated with PCM: An Experimental Study. Symmetry. 2022; 14(10):2181. https://doi.org/10.3390/sym14102181
Chicago/Turabian StyleAl-Maliki, Muqdad, Khaled Al-Farhany, and Ioannis E. Sarris. 2022. "Heat Transfer in an Inclined Rectangular Cavity Filled with Hybrid Nanofluid Attached to a Vertical Heated Wall Integrated with PCM: An Experimental Study" Symmetry 14, no. 10: 2181. https://doi.org/10.3390/sym14102181
APA StyleAl-Maliki, M., Al-Farhany, K., & Sarris, I. E. (2022). Heat Transfer in an Inclined Rectangular Cavity Filled with Hybrid Nanofluid Attached to a Vertical Heated Wall Integrated with PCM: An Experimental Study. Symmetry, 14(10), 2181. https://doi.org/10.3390/sym14102181