Energy and Exergy Aanalyses of Drying of Eggplant Slices in a Cyclone Type Dryer

  • Akpinar E. Kavak (Mechanical Engineering Department, Firat University)
  • Published : 2005.02.01

Abstract

In this paper, the energy and exergy analyses of the drying process of thin layer of eggplant slices are investigated. Drying experiments were conducted at inlet temperatures of drying air of 55, 65 and $75^{\circ}C$ and at drying air velocities of 1 and $1.5\;ms^{-1}$ in a cyclone type dryer. Using the first law of thermodynamics, energy analysis was carried to estimate the ratios of energy utilization. However, exergy analysis was accomplished to determine type and magnitude of exergy losses during the drying process by applying the second law of thermodynamics. It was deduced that eggplant slices are sufficiently dried in the ranges between $55-75^{\circ}C$ of drying air temperature and at 1 and $1.5\;ms^{-1}$ of drying air velocity during 12000-21600 s despite the exergy losses of $0-0.739\;kJs^{-l}.

Keywords

References

  1. Ahern, J. E., 1980, The Exergy Method of Energy Systems Analysis, John Wiley, New York
  2. Akpinar, E., Midilli, A. and Bicer, Y., 2003a, 'Single Layer Drying Behavior of Potato Slices in a Convective Cyclone Dryer and Mathematical Modelling,' Energy Conversion and Management, Vol. 44, No. 10, pp. 1689-1705 https://doi.org/10.1016/S0196-8904(02)00171-1
  3. Akpinar, E. K., Bicer Y. and Midilli, A., 2003b, 'Modelling and Experimental Study on Drying of Apple Slices in a Convective Cyclone Dryer,' Journal of Food Process Engineering, Vol. 26, No.6, pp. 515-541 https://doi.org/10.1111/j.1745-4530.2003.tb00654.x
  4. Akpinar, E. K., Bicer Y. and Yildiz, C., 2003c, 'Thin Layer Drying of Red Pepper,' Journal of Food Engineering, Vol. 59, No. 1, pp. 99-104 https://doi.org/10.1016/S0260-8774(02)00425-9
  5. Akpinar E. K., 2004, 'Energy and Exergy Analyses of Drying of Red Pepper Slices in a Convective Type Dryer,' International Communications in Heat and Mass Transfer, Vol. 31, No.8, pp. 1165-1176 https://doi.org/10.1016/j.icheatmasstransfer.2004.08.014
  6. Akpinar, E. K., Midilli, A. and Bicer, Y., 2005, 'Thermodynamic Analysis of the Apple Drying Process,' Proceedings of the I MECH E Part E Journal of Process Mechanical Engineering, Vol. 219, in press https://doi.org/10.1243/095440805X6991
  7. Bayrak, M., Midilli, A. and Nurveren, K., 2003, 'Energy and Exergy Analyses of Sugar Production Stages,' International Journal of Energy Research, Vol. 27, pp. 989-1001 https://doi.org/10.1002/er.916
  8. Bejan, A., 1988, Advanced Engineering Thermodynamics, John Wiley and Sons Inc., New York
  9. Bejan, A., Dan, N., Cacuci, D.G. and Schutz, W., 1998, 'Exergy Analysis of Energy Conversion During the Thermal Interaction Between Hot Particles and Water,' Energy, Vol. 23, No. 11, pp.913-928 https://doi.org/10.1016/S0360-5442(98)00045-0
  10. Cengel, Y. A. and Boles, M. A., 1994, Thermodynamics: An Engineering Approach, McGrawHill Inc., New York
  11. Dincer, I., 2000, 'Thermodynamic, Exergy and Environmental Impact,' Energy Sources, Vol. 22, No. 8, pp. 723-732 https://doi.org/10.1080/00908310050120272
  12. Dincer, I., 2002, 'On Energetic, Exergetic and Environmental Aspects of Drying Systems,' International Journal of Energy Research, Vol. 26, pp.717-727 https://doi.org/10.1002/er.792
  13. Dincer, I. and Sahin, A. Z., 2004, 'A New Model for Thermodynamic Analysis of a Drying Process,' International Journal of Heat and Mass Transfer, Vol. 47, No.4, pp. 645-652 https://doi.org/10.1016/j.ijheatmasstransfer.2003.08.013
  14. Kim, M. H., 1998, 'Thermal Performance of a Compact Evaporator Coil in Household Refrigerator-Freezers,' KSME International Journal, Vol. 12, No. 3, pp. 486-492 https://doi.org/10.1007/BF02946364
  15. Kim, K. H., Woo, J. S. and Lee, S. K., 2003, 'Second Law Optimization of Water-To-Water Heat Pump System,' KSME International Journal, Vol. 17, No. 1, pp. 122-128
  16. Midilli, A. and Kucuk, H., 2003, 'Energy and Exergy Analyses of Solar Drying Process of Pistachio,' Energy, Vol. 28, pp. 539-556 https://doi.org/10.1016/S0360-5442(02)00158-5
  17. Noh, D. S., Hong, S. K., Ryou, H. S. and Lee, S. H., 2001, 'An Experimental and Numerical Study on Thermal Performance of a Regenerator System with Ceramic Honeycomb,' KSME International Journal, Vol. 15, No.3, pp. 357-365
  18. Rosen, M. A. and Dincer, I., 2001, 'Exergy as the Confluence of Energy, Environment and Sustainable Development,' Exergy, An International Journal, Vol. 1, pp. 3-13 https://doi.org/10.1016/S1164-0235(01)00004-8
  19. Syahrul, S., Hamdullahpur, F. and Dincer, I., 2002a, 'Exergy Analysis of Fluidized Bed Drying of Moist Particles,' Exergy, An International Journal, Vol. 2, pp.87-98 https://doi.org/10.1016/S1164-0235(01)00044-9
  20. Syahrul, S., Hamdullahpur, F. and Dincer, I., 2002b, 'Energy Analysis of Fluidised-Bed Drying of Large West Particles,' International Journal of Energy Research, Vol. 26, pp. 507-525 https://doi.org/10.1002/er.799
  21. Szargut, J., Morris, D. R. and Steward, F. R., 1988, Exergy Analysis of Thermal, Chemical, And Metallurgical Processes, Hemisphere Publishing Corp., New York
  22. Togrul, I. T. and Pehlivan, D., 2002, 'Mathematical Modelling of Solar Drying of Apricots in Thin Layers,' Journal of Food Engineering, Vol. 55, pp.209-216 https://doi.org/10.1016/S0260-8774(02)00065-1
  23. Verkhivker, G. P. and Kosoy, B. V., 2001, 'On the Exergy Analysis of Power Plants,' Energy Conversion and Management, Vol. 42, pp. 2053-2059 https://doi.org/10.1016/S0196-8904(00)00170-9