Experimental Investigation and Prediction on Pressure Drop during Flow Boiling in Horizontal Microchannels
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Methods
2.2. Data Processing
3. Results
3.1. Pressure Drop Results
3.2. Comparison with Different Pressure Drop Correlations
4. New Correlation
4.1. Influence of Local Vapor Quality on the Chisholm Parameter
4.2. Improved Correlation
5. Conclusions
- Among six separated flow models, most correlations overpredicted the frictional pressure drop compared with the experimental data of flow boiling in horizontal microchannels in this paper, while the correlation of Choi et al. underpredicted slightly. Correlations proposed by Mishima and Hibiki, based on the hydraulic diameter, and Zhang, related to the Laplace parameter La, share similar form and work comparatively well in predicting pressure drop of two-phase within an acceptable mean absolute error. Zhang’s correlation, although doesn’t predict best, covers more experimental conditions, so it has a wider applicability. However, Zhang’s correlation only took the effect of surface tension into consideration, regardless of the operating conditions. To consider the effect of operating conditions, a new correlation is proposed based on Zhang’s correlation in this paper.
- The vapor quality is found to have a significant influence on the Chisholm parameter in the separated flow model, and this may be due to its influence on the flow pattern. When x < 0.1, the flow pattern is mainly bubbly flow and slug flow, the Chisholm parameter increases with the increasing vapor quality. When x > 0.1, the bubbles merge to form churn flow and not-fully-developed annular flow, and the Chisholm parameter remains nearly unchanged.
- The superficial gas flux is introduced to consider the comprehensive influence of mass velocity and vapor quality on two-phase flow pressure drop, and a new equation for the Chisholm parameter in the separated flow model is proposed as a function of the superficial gas flux . The mean absolute error MAE of the new flow correlation is 16.82%, which is significantly lower than the other correlations. Moreover, the applicability of the new expression has been verified by the experimental data in other literatures.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
friction factor [-] | the Laplace number [-] | ||
enthalpy [J/kg] | |||
latent heat of vaporization [J/kg] | |||
superficial gas flux [m/s] | mean absolute error | ||
mass flow rate [kg/s] | number of experimental data points | ||
pressure [Pa] | heating power of the preheating section [W] | ||
flow velocity [m/s] | |||
thermodynamic equilibrium vapor quality [-] | heating power of the test-section [W] | ||
the Reynolds number [-] | |||
coordinate along microchannel [mm] | channel width [mm] | ||
the Chisholm parameter [-] | the Weber number [-] | ||
contraction coefficient [-] | |||
hydraulic diameter [mm] | |||
mass velocity [kg/(m2·s)] | the Martinelli parameter [-] | ||
channel depth [mm] | |||
channel length [mm] | |||
Greek Symbols | |||
void fraction [-] | expansion area ratio [-] | ||
channel aspect ratio [-] | difference [-] | ||
density [kg/m3] | two-phase pressure drop | ||
mixture density [kg/m3] | multiplier [-] | ||
contraction area ratio [-] | |||
Subscripts | |||
accelerational | liquid only | ||
average | microchannel outlet | ||
contraction | predicted | ||
expansion | total | ||
experimental | two-phase | ||
frictional | turbulent liquid-turbulent vapor | ||
saturated vapor | turbulent liquid-laminar vapor | ||
microchannel inlet | laminar liquid-turbulent vapor | ||
saturated liquid | laminar liquid-laminar vapor |
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Number of Channels | Channel Width, Wch/mm | Channel Length, L/mm | Channel Depth, Hch/mm |
---|---|---|---|
3 | 0.55 | 78 | 0.55 |
Parameter | Maximum Uncertainty |
---|---|
Pressure | 0.5% |
Differential pressure | 0.6% |
Fluid temperature | 0.3 °C |
Wall temperature | 0.5 °C |
Heat flux | 0.5% |
Mass velocity | 5.7% |
Vapor quality | 7.2% |
Author(s) | Equation | Remarks | MAE |
---|---|---|---|
Lockhart and Martinelli [16] | Dh = 1.49–25.83 mm adiabatic fluid; water, oils, hydrocarbons; round tubes | 418.44% | |
Mishima and Hibiki [18] | Using the Lockhart and Martinelli correlation | Dh = 1.05–4.08 mm adiabatic fluid: air/water; round tube | 45.15% |
Qu and Mudawar [22] | Using the Lockhart and Martinelli correlation | Dh = 0.087 mm flow boiling multi-channels fluids; water; rectangular tubes | 282.5% |
Zhang [25] | Using the Lockhart and Martinelli correlation | Dh = 0.007–6.25 mm adiabatic/diabatic fluids; water, water/air, R-22, R-134a, etc.; round/rectangular tubes | 64.97% |
Lim et al. [26] | Using the Lockhart and Martinelli correlation | Dh = 0.5 mm flow boiling fluid; water; rectangular tube | 1343.54% |
Choi et al. [27] | Using the Lockhart and Martinelli correlation | 0.45 mm × 0.2 mm flow boiling multi-channels fluids; FC-72; rectangular tubes | 35.08% |
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Huang, Y.; Shu, B.; Zhou, S.; Shi, Q. Experimental Investigation and Prediction on Pressure Drop during Flow Boiling in Horizontal Microchannels. Micromachines 2021, 12, 510. https://doi.org/10.3390/mi12050510
Huang Y, Shu B, Zhou S, Shi Q. Experimental Investigation and Prediction on Pressure Drop during Flow Boiling in Horizontal Microchannels. Micromachines. 2021; 12(5):510. https://doi.org/10.3390/mi12050510
Chicago/Turabian StyleHuang, Yan, Bifen Shu, Shengnan Zhou, and Qi Shi. 2021. "Experimental Investigation and Prediction on Pressure Drop during Flow Boiling in Horizontal Microchannels" Micromachines 12, no. 5: 510. https://doi.org/10.3390/mi12050510
APA StyleHuang, Y., Shu, B., Zhou, S., & Shi, Q. (2021). Experimental Investigation and Prediction on Pressure Drop during Flow Boiling in Horizontal Microchannels. Micromachines, 12(5), 510. https://doi.org/10.3390/mi12050510