Numerical Prediction of Refrigerant Oil Two-Phase Flow from Scroll Compressor Discharge to the Suction Side via Back Pressure Chamber
Abstract
:1. Introduction
2. Modelling Approach
2.1. Geometry
2.2. Critical Flow
2.3. Subcritical Two-Phase Flow through Nozzles
2.4. Refrigerant R744 (CO2) Equation of State
2.5. Solubility of CO2 and PAG Oil
3. Results
4. Conclusions
- The refrigerant oil two-phase flow from the oil separator to the back pressure chamber is critical. The refrigerant oil two-phase flow from the back pressure chamber to the compressor suction side is generally critical, but it becomes subcritical for lower discharge pressures and greater oil mass fractions. In all cases with the discharge pressure equal to 6 MPa, the flow through the nozzle between the back pressure chamber and the suction side is subcritical, while the increase in the oil mass fraction in the oil separator to 80% leads also to a subcritical flow in cases with an 8 MPa pressure in the oil separator.
- The increase in the oil mass fraction in the oil separator was found to lead to an increase in the mass flow rate from the oil separator to the compressor suction side, but to a decrease in the pressure value in the back pressure chamber. The oil mass fraction increase from 10% to 80% increases the mass flow rate by more than two times.
- The refrigerant dissolvement in oil contributes to a slight increase in the refrigerant oil two-phase mass flow rate and to a decrease in the back pressure. This mass flow rate change by refrigerant dissolvement in oil is more pronounced for greater oil mass fractions and lower compressor discharge pressures. For instance, the greatest increase in the mass flow rate by 15% is obtained for 80% oil mass fraction and 6 MPa in the oil separator. The back pressure change by refrigerant dissolvement in oil is more pronounced for greater oil mass fractions and higher discharge pressures. For instance, the greatest back pressure decrease—8%—was obtained for an 80% oil mass fraction and 12 MPa in the oil separator. In case of low oil mass fraction, the refrigerant dissolvement in oil has a negligible influence on flow parameters.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
A | area of flow cross-section, [m2] |
C | concentration coefficient, [-] |
constant in Equation (23), [-] | |
c | sonic velocity, [m/s] |
cp | specific isobaric heat capacity, [J/(kgK)] |
Dh | hydraulic diameter, [m] |
F | constant in in Equations (21), (24) and (25), [-] |
g | mass fraction in the mixture with refrigerant, [-] |
h | specific enthalpy, [J/kg] |
M | molar mass, [kg/mol] |
mass flow rate, [kg/s] | |
P | perimeter, [m] |
p | pressure, [Pa] |
r | ratio of nozzle downstream and upstream pressure, [-] |
R | universal gas constant, [J/(molK)] |
Rg | gas constant, [J/(kgK)] |
S | velocity slip, [-] |
T | temperature, [K] |
u | velocity, [m/s] |
Vm | molar volume, [m3/mol] |
Y | the reciprocal of the Lockhart–Martinelli parameter, [-] |
Z | constant in in Equations (23) and (24), [-] |
Greek letters | |
α | gas-phase volume fraction in two-phase mixture, [-] |
ζ | local flow resistance coefficient, [-] |
k | isentropic coefficient, [-] |
n | kinematic viscosity, [m2/s] |
ρ | density, [kg/m3] |
the two-phase multiplier, [-] | |
χ | flow quality, [-] |
ψ | acentric factor, [-] |
ω | refrigerant mass fraction in the mixture with oil, [-] |
Indices | |
1 | liquid phase |
2 | gas phase |
BP | in the back pressure chamber |
c | the location of critical flow |
cr | critical state |
h | isenthalpic process |
in | in front of the high-pressure nozzle |
o | at the nozzle, |
Oil | |
p | isobaric process |
R | refrigerant |
s | isentropic process |
u | the upstream location |
Abbreviations | |
PAG | polyalkylene glycol oil |
Appendix A
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Stevanovic, V.D.; Petrovic, M.M.; Cucuz, S.; Milivojevic, S.; Ilic, M. Numerical Prediction of Refrigerant Oil Two-Phase Flow from Scroll Compressor Discharge to the Suction Side via Back Pressure Chamber. Processes 2024, 12, 6. https://doi.org/10.3390/pr12010006
Stevanovic VD, Petrovic MM, Cucuz S, Milivojevic S, Ilic M. Numerical Prediction of Refrigerant Oil Two-Phase Flow from Scroll Compressor Discharge to the Suction Side via Back Pressure Chamber. Processes. 2024; 12(1):6. https://doi.org/10.3390/pr12010006
Chicago/Turabian StyleStevanovic, Vladimir D., Milan M. Petrovic, Stojan Cucuz, Sanja Milivojevic, and Milica Ilic. 2024. "Numerical Prediction of Refrigerant Oil Two-Phase Flow from Scroll Compressor Discharge to the Suction Side via Back Pressure Chamber" Processes 12, no. 1: 6. https://doi.org/10.3390/pr12010006
APA StyleStevanovic, V. D., Petrovic, M. M., Cucuz, S., Milivojevic, S., & Ilic, M. (2024). Numerical Prediction of Refrigerant Oil Two-Phase Flow from Scroll Compressor Discharge to the Suction Side via Back Pressure Chamber. Processes, 12(1), 6. https://doi.org/10.3390/pr12010006