Performance Study of Cascade Refrigeration System Using Alternative Refrigerants

Cascade refrigeration systems employ series of single stage vapor compression units which are thermally coupled with evaporator/condenser cascades. Different refrigerants are used in each of the circuit depending on the optimum characteristics shown by the refrigerant for a particular application. In the present research study, a steady state thermodynamic model is developed which simulates the working of an actual cascade system. The model provides COP and all other system parameters e.g. total compressor work, temperature, pressure, enthalpy and entropy at different state points. The working fluid in low temperature circuit (LTC) is CO2 (R744) while Ammonia (R717), Propane (R290), Propylene (R1270), R404A and R12 are the refrigerants in high temperature circuit (HTC). The performance curves of Ammonia, Propane, Propylene, and R404A are compared with R12 to find its nearest substitute. Results show that Ammonia is the best substitute of R12.





References:
[1] S. M. Zubair, "Performance Evaluation of Vapour Compression System”, International Journal of Refrigeration, vol. 22, pp. 235-243, 1999.
[2] R. Cabello, J. Navarro, E. Torrella ,” Simplified Steady-State Modelling of a Single Stage Vapour Compression Plant. Model Development and Validation”, Applied Thermal Engineering, vol. 25, pp. 1740–1752, 2005
[3] A. Kilicarslan, "An Experimental Investigation of a Different Type Vapor Compression Cascade Refrigeration System”, Applied Thermal Engineering, vol. 24, pp. 2611–2626, 2004.
[4] S. Bhattacharyya, S. Bose, J. Sarkar, "Exergy Maximization of Cascade Refrigeration Cycles and Its Numerical Verification for a Transcritical CO2-C3H8 System”, International Journal of Refrigeration, vol. 30, pp. 624-632, 2007.
[5] H.M. Getu, P.K. Bansal, "Thermodynamic Analysis of an R744–R717 Cascade Refrigeration System”, International Journal of Refrigeration, vol. 31, pp. 45-54, 2008.
[6] T.S. Lee, C.H. Liu, T.W. Chen, "Thermodynamic Analysis of Optimal Condensing Temperature of Cascade-Condenser in CO2/NH3 cascade Refrigeration Systems”, International Journal of Refrigeration, vol. 29, pp. 1100-1108, 2006.
[7] S. Bhattacharyya, S. Mukhopadhyay, J. Sarkar, "CO2–C3H8 Cascade Refrigeration–Heat Pump System: Heat Exchanger Inventory Optimization and Its Numerical Verification”, International Journal of Refrigeration, vol. 31, pp. 1207-1213, 2008.
[8] J. M. Calm, "The Next Generation of Refrigerants – Historical Review, Considerations, and Outlook”, International Journal of Refrigeration, vol. 31, pp. 1123-1133, 2008.
[9] P. K. Bansal, S. Jain, "Cascade Systems: Past, Present, and Future”, ASHRAE Trans, Vol. 113, no. 1, pp 245-252(DA-07-027), 2007.
[10] S. Maj, "Design and Development of Two Stage Cascade Refrigeration system”, M. Tech project, Mechanical Engineering Department, IIT Delhi, 2006.