Experimental Investigations on Pressure Drop for Subcooled Water in a Circular Channel with a Twisted Tape Insert under One-Side Heating Conditions
Abstract
:1. Introduction
2. Experimental Descriptions
2.1. Test Loop
2.2. Experimental Section
2.3. Data Reduction
2.4. Heat Balance Experiment
2.5. Uncertainty Analysis
3. Effect of System Parameters
3.1. Typical Working Conditions
3.2. Effect of Pressure
3.3. Effect of Mass Flux
3.4. Effect of Heat Flux
4. Evaluation of Pressure Drop Correlations
5. Conclusions
- (1)
- According to the analysis of pressure drop in the test section under typical working conditions, the pressure drop curve can be divided into two parts: SP flow region and SB (including PB and FDB) flow region. In the SP region, Δp decreases slightly with the increasing Tb,in. In the SB flow region, the pressure drop curve began to rise, and the slope increased with the increasing bulk temperature. The Δp increased significantly at a high Tb,in.
- (2)
- The factors affecting Δp are analyzed in detail. The results show that inlet pressure and bulk temperature have little effect on Δp in SP region. The mass flux is the main factor that determines Δp. A higher G leads to a larger Δp. The higher the qe, the smaller the Δp. In the SB flow region, the Δp mainly depends on the intensity of nuclear boiling. The lower p, the higher qe and Tb,in lead to a stronger nuclear boiling, then cause more bubbles produced, and a larger Δp.
- (3)
- A series of SP flow pressure drop correlations have been evaluated with experimental data and error analysis was carried out: most of them could not predict the pressure drop well under the experimental conditions. Based on the test data, the SP pressure drop correlation suitable for high mass flux and non-uniform high heat flux conditions was fitted. The new correlation has a good agreement with the experimental results, the AE and RMSE are 0.26% and 3.17%, respectively.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
A | area (m2) |
Af | flow area (m2) |
Dh | hydraulic diameter (m) |
f | friction factor (-) |
G | mass flux (kg·m−2·s−1) |
h | heat transfer coefficient (kw·m−2·K−1) |
H | enthalpy (kJ·kg−1) |
I | current (A) |
k | thermal efficiency (%) |
L | length (m) |
Lh | heated length of tube (m) |
M | mass flow (kg·m−2·s−1) |
p | pressure (MPa) |
Δp | pressure drop (MPa) |
Pw | wetting perimeter (m) |
q | heat flux (kW·m−2) |
Q | power (kW) |
T | temperature (°C) |
ΔT | heat transfer temperature difference (°C) |
U | voltage drop (V) |
W | width (m) |
density (kg·m−3) | |
η | viscosity (Pa·s) |
Subscripts | |
ad | adiabatic |
b | bulk |
c | circumferential |
cal | calculated |
e | equivalent |
eff | effective |
exp | experimental |
FDB | fully developed boiling |
g | gravity |
in | inlet of the test section |
out | outlet of the test section |
sp | single phase |
TT | twist tape |
w | wall |
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Measurement Parameters | Range | Measuring Instrument | Accuracy |
---|---|---|---|
Mass flow rate | 0–2.5 t·h−1 | Mass flowmeter | 0.5% |
Pressure | 0–6 MPa | Rosemount 3051 pressure transmitter | 0.3% |
Fluid temperature | 20–300 °C | Φ1.5 mm T-sheathed thermocouple | 0.5% |
Outer wall temperature | 20–1100 °C | Φ1.5 mm Type-K thermocouple | 0.4% |
Parameters | Units | Uncertainties (%) |
---|---|---|
Electric heating power | kW | ±2.2 |
System pressure | MPa | ±0.3 |
Mass flux | kg·m−2·s−1 | ±0.8 |
Equivalent one-side heat flux | MW·m−2 | ±3.3 |
Fluid temperature | °C | ±0.5 |
Outer wall temperature | °C | ±0.4 |
Pressure drop | kPa | ±7.9 |
Authors | Correlations | p/MPa | G/(kg∙m−2∙s−1) | q/(MW∙m−2) |
---|---|---|---|---|
Celata [21] | f/fad = (ηw/ηb)0.25 | 1~2.5 | 5000~10,000 | <14 |
Hoffman [16] | f/fad = (ηw/ηb)0.3 | 0.2~2.8 | 2500~10,000 | <9.7 |
Sieder [22] | f/fad = (ηw/ηb)0.14 | 25~387 | <0.013 | |
Tong [23] | f/fad = (ηw/ηb)0.163 | 0.4~1.6 | 25,000~45,000 | <80 |
Tarasova [11] | f/fad = (ηw/ηb)0.22 | 22.6~26.5 | 2000, 5000 | 0.58~1.32 |
Owens [12] | f/fad = (ηw/ηb)0.4 | 0.34~2.76 | 1143~5322 | 0.675–4 |
Dormer [14] | f/fad = (ηw/ηb)0.35 | 0.2~0.55 | 1500~15,000 | <17.35 |
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Zhu, G.; Mei, G.; Bi, Q.; Tian, S. Experimental Investigations on Pressure Drop for Subcooled Water in a Circular Channel with a Twisted Tape Insert under One-Side Heating Conditions. Energies 2024, 17, 193. https://doi.org/10.3390/en17010193
Zhu G, Mei G, Bi Q, Tian S. Experimental Investigations on Pressure Drop for Subcooled Water in a Circular Channel with a Twisted Tape Insert under One-Side Heating Conditions. Energies. 2024; 17(1):193. https://doi.org/10.3390/en17010193
Chicago/Turabian StyleZhu, Ge, Ge Mei, Qincheng Bi, and Shujian Tian. 2024. "Experimental Investigations on Pressure Drop for Subcooled Water in a Circular Channel with a Twisted Tape Insert under One-Side Heating Conditions" Energies 17, no. 1: 193. https://doi.org/10.3390/en17010193
APA StyleZhu, G., Mei, G., Bi, Q., & Tian, S. (2024). Experimental Investigations on Pressure Drop for Subcooled Water in a Circular Channel with a Twisted Tape Insert under One-Side Heating Conditions. Energies, 17(1), 193. https://doi.org/10.3390/en17010193