An Experimental Investigation of the Effects of Using Hexagonal BN–Water Nanofluids on the Thermal Performance and Pressure Drop of a Concentric Tube Heat Exchanger
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Heat Transfer Results for Parallel Flow
3.2. Heat Transfer Results for Counter Flow
3.3. Pressure Drop Results for Parallel Flow
3.4. Pressure Drop Results for Counter Flow
Uncertainty Analysis
4. Conclusions
- When hBN–water was used as the cold fluid at a flow rate of 1.5 L/min, the change in the overall heat transfer coefficient calculated for various flow rates in a parallel-flow heat exchanger reached its maximum value, with an improvement of 19.7%. The improvement for a counter-flow system was 16.7%.
- As the flow rate increases, the friction factor decreases and the head loss increases. Pressure drop increases with an increase in flow rate and concentration.
- The Nusselt number and average heat transfer coefficient at high Reynolds numbers are higher than the values at low Reynolds numbers. As expected in all flow conditions, the friction factor decreased with an increase in the Reynolds number.
- According to the experimental results, head loss and the increases in the friction factor were higher in the counter-flow heat exchanger.
- According to experimental results, it was seen that the increase in head loss and friction factor in counter flow in the heat exchanger was greater than in parallel flow.
- In the opposite flow, the nanofluid’s inlet and outlet temperature differences are smaller than those of the parallel flow, resulting in a lower heat transfer.
- When distilled water and an empty tube were combined, the lowest Nusselt number was achieved at the lowest Reynolds number (Re = 4000). The maximum Nusselt number was recorded at a volume of 1%, Re = 7534.
- In future studies, the thermophysical properties of hexagonal boron nitride can be evaluated more clearly by comparing the performance of hBN nanofluid with other nanofluids by using different nanofluids.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
Symbol | Meaning |
P | Pump power (KW) |
Cph | Specific heat of hot fluid (J/kgK) |
Cpc | Specific heat of cold fluid (J/kgK) |
Ψ | Irreversibility |
A | Heat transfer area (m2) |
Q | Average rate of heat transfer (W) |
U | Overall heat transfer coefficient (W/m2K) |
D | Diameter of test tube (mm) |
Dh | Hydraulic diameter (mm) |
V | Volume (m3) |
Tout | Outlet temperature, K |
Tin | Inlet temperature, K |
Tm | Mean temperature, K |
Φ | Nanoparticle volume fraction (or) percentage (–) or (%) |
ΔP | Pressure drop (Pa) |
Nu | Nusselt number (dimensionless number) |
Re | Reynolds number |
f | Friction factor |
hk | Head loss (m) |
Abbreviations | |
hBN | Hexagonal boron nitride |
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k (W/mK) | (J/kgK) | ν m2/s | ρ (kg/m3) | Fluid |
---|---|---|---|---|
75 | 1585 | 3.97 × | 2325 | 1% hBN–water concentration |
70 | 1597 | 3.61 × | 2300 | 0.1% hBN–water concentration |
62.6 | 1610 | 3.52 × | 2270 | 0.01% hBN–water concentration |
0.623 | 4178 | 0.72 × | 1000 | Water |
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Ziyadanogullari, N.B.; Percin, S. An Experimental Investigation of the Effects of Using Hexagonal BN–Water Nanofluids on the Thermal Performance and Pressure Drop of a Concentric Tube Heat Exchanger. Energies 2024, 17, 1269. https://doi.org/10.3390/en17061269
Ziyadanogullari NB, Percin S. An Experimental Investigation of the Effects of Using Hexagonal BN–Water Nanofluids on the Thermal Performance and Pressure Drop of a Concentric Tube Heat Exchanger. Energies. 2024; 17(6):1269. https://doi.org/10.3390/en17061269
Chicago/Turabian StyleZiyadanogullari, Nese Budak, and Suleyman Percin. 2024. "An Experimental Investigation of the Effects of Using Hexagonal BN–Water Nanofluids on the Thermal Performance and Pressure Drop of a Concentric Tube Heat Exchanger" Energies 17, no. 6: 1269. https://doi.org/10.3390/en17061269
APA StyleZiyadanogullari, N. B., & Percin, S. (2024). An Experimental Investigation of the Effects of Using Hexagonal BN–Water Nanofluids on the Thermal Performance and Pressure Drop of a Concentric Tube Heat Exchanger. Energies, 17(6), 1269. https://doi.org/10.3390/en17061269