Thermal Characteristics of a Primary Surface Heat Exchanger with Corrugated Channels
Abstract
:1. Introduction
2. Experimental Setup and Data
2.1. PSHE
Metal Plate Material | STS 316L |
Dimensions of PSHE (W × L × H), mm | 55 × 156 × 29 |
Dimensions of hot channel (W × L × H), mm | 1.3 × 9.53 × 1.02 |
Dimensions of cold channel (W × L × H), mm | 1.3 × 9.53 × 0.51 |
Channel height, mm | 6 |
Number of plates | 8 |
Number of cells | 4 |
Number of channels | 18 |
End plate thickness, mm | 2.5 |
2.2. Experimental Equipment
2.3. Experimental Conditions and Results Analysis
2.4. Uncertainty
Parameters | Uncertainty (%) |
---|---|
Temperature, T | 0.31 |
Pressure drop, ΔP | 0.94 |
Flow rate of hot side, | 0.64 |
Flow rate of cold side, | 0.78 |
Averaged heat transfer rate, Qm | 1.19 |
Reynolds number of hot side | 3.13 |
Reynolds number of cold side | 3.29 |
Heat transfer coefficient of hot side | 7.36 |
Heat transfer coefficient of cold side | 7.31 |
Friction factor, f | 5.2 |
3. Experimental Results and Discussion
3.1. Heat Transfer Characteristics
3.2. Pressure Drop Characteristics
Parameters | Value | ||||||||
---|---|---|---|---|---|---|---|---|---|
Mass flow rate, (g/min) | 3871 | 4884 | 5762 | 6693 | 7623 | 8608 | 9516 | 10,408 | 11,375 |
Mass flux, G (kg/m2∙s) | 93 | 117 | 138 | 160 | 183 | 206 | 228 | 249 | 272 |
LMTD, (K) | 9.9 | 10.5 | 10.8 | 11.0 | 11.1 | 11.3 | 11.5 | 11.6 | 11.5 |
Pressure drop, ΔP (kPa) | 0.36 | 0.54 | 0.76 | 0.97 | 1.24 | 1.46 | 1.84 | 2.07 | 2.40 |
Heat transfer rate, Q (W) | 2953 | 3631 | 4182 | 4763 | 5349 | 5956 | 6498 | 6994 | 7409 |
OHTC, U (W/m2∙K) | 1595 | 1845 | 2073 | 2308 | 2557 | 2790 | 2998 | 3196 | 3404 |
UA (W/K) | 298 | 345 | 388 | 432 | 478 | 522 | 561 | 598 | 637 |
Reynolds number, Reh = Rec | 201 | 254 | 301 | 350 | 400 | 453 | 501 | 550 | 604 |
Prandtl number | 4.86 | 4.83 | 4.82 | 4.81 | 4.80 | 4.78 | 4.77 | 4.76 | 4.73 |
HTC, h (W/m2∙K) | 2692 | 3141 | 3503 | 3865 | 4212 | 4562 | 4871 | 5170 | 5488 |
Nusselt number | 6.78 | 7.91 | 8.81 | 9.72 | 10.59 | 11.47 | 12.24 | 12.99 | 13.78 |
Friction factor, f | 0.0861 | 0.0809 | 0.0774 | 0.0744 | 0.0719 | 0.0696 | 0.0678 | 0.0662 | 0.0646 |
Colburn j-factor, j | 0.0198 | 0.0183 | 0.0173 | 0.0164 | 0.0157 | 0.0150 | 0.0145 | 0.0141 | 0.0136 |
4. Conclusions
- (1)
- The average heat transfer rate increased as the flowrate increased because of an increase in the Reynolds number of the hot and cold sides.
- (2)
- Although the drop in pressure on the hot side increased with the cold-side Reynolds number, the amount of increase was insignificant. In addition, as the Reynolds numbers of the hot and cold sides increased simultaneously, the pressure drop increased.
- (3)
- The correlation of the heat transfer coefficients of the hot and cold sides was proposed by applying the modified Wilson plot method to the heat transfer coefficient. For this correlation, the range of the Reynolds number was between 156 and 921.
- (4)
- The friction factor f was calculated by using the pressure drop results, and the appropriate friction factor correlation, for the PSHE examined in this study, was proposed.
Acknowledgments
Author Contributions
Conflicts of Interest
Nomenclature
Ac | Minimum free flow area (mm2) |
As | Total effective heat transfer area (mm2) |
B | Bias error |
Cp | Specific heat (J/kg∙K) |
Dh | Hydraulic diameter (mm) |
f | Friction factor |
G | Core mass velocity (kg/m2∙s) |
H | Width of fluid path (mm) |
h | Heat transfer coefficient (W/m2∙K) |
j | Colburn j-factor |
Kc | Contraction loss coefficient |
Ke | Expansion loss coefficient |
L | Length from root to center (mm) |
N | Stacked number of cells |
Nu | Nusselt number |
ΔP | Pressure drop (kPa) |
P | Perimeter |
Pr | Prandtl number |
Q | Heat transfer rate (W) |
Re | Reynolds number |
ΔTLMTD | Log mean temperature difference (K) |
UA | Heat transfer performance (W/K) |
W | Width of metal sheet (mm) |
Greek Symbols | |
ρ | Fluid density (kg/m3) |
Π | Uncertainty |
µ | Dynamic viscosity (N∙s/m2) |
σ | Free flow area/frontal area |
Subscripts | |
c | Cold |
i | Inlet |
h | Hot |
m | Mean |
o | Outlet |
s | Surface |
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Seo, J.-W.; Cho, C.; Lee, S.; Choi, Y.-D. Thermal Characteristics of a Primary Surface Heat Exchanger with Corrugated Channels. Entropy 2016, 18, 15. https://doi.org/10.3390/e18010015
Seo J-W, Cho C, Lee S, Choi Y-D. Thermal Characteristics of a Primary Surface Heat Exchanger with Corrugated Channels. Entropy. 2016; 18(1):15. https://doi.org/10.3390/e18010015
Chicago/Turabian StyleSeo, Jang-Won, Chanyong Cho, Sangrae Lee, and Young-Don Choi. 2016. "Thermal Characteristics of a Primary Surface Heat Exchanger with Corrugated Channels" Entropy 18, no. 1: 15. https://doi.org/10.3390/e18010015
APA StyleSeo, J. -W., Cho, C., Lee, S., & Choi, Y. -D. (2016). Thermal Characteristics of a Primary Surface Heat Exchanger with Corrugated Channels. Entropy, 18(1), 15. https://doi.org/10.3390/e18010015