A study on the (vapor + liquid + liquid) equilibrium (VLLE) for the (R134 + R600a) system was carried out using an apparatus based on the recirculation of vapor into liquid at temperatures ranging from (235.311 to 241.720) K. The uncertainties of the composition, temperature, and pressure were less than ± 0.005, ± 5 mK and ± 0.5 kPa, respectively. Thirty-eight experimental p-T-x data covering both branches of the binodal boundary and nineteen experimental p-T-y data were presented. Three numerical methods were used to obtain the second liquid phase compositions coexisting in equilibrium, and all the three methods lead to consistent results. Moreover, all of the experimental data were correlated by the Peng–Robinson equation of state (PR EoS) with the Huron–Vidal (HV) mixing rule involving the non-random two-liquid (NRTL) activity coefficient model. Then the vapor phase compositions were calculated. The results show good agreement with the experimental data, and the maximum deviation is less than 0.006. The Journal of Chemical Thermodynamics, 2014 Schematic diagram of the experimental system: 1. temperature and pressure indicator; 2. digital controller; 3. refrigerating machine; 4. evaporator; 5. stirrer; 6. electric heater; 7. equilibrium cell; 8. view windows; 9. vacuum pump; 10. isothermal liquid bath; 11. vacuum vessel; 12. motor; 13. gas chromatograph; 14. feed system; 15. magnetic pump. The critical opalescence phenomenon for {R134 (1) + R600a (2)} system.
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