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Original Articles

US-Assisted Convective Drying of Biological Materials

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REFERENCES

  • Galego-Juarez, J.A.; Rodriguez-Corral, G.; Galvez-Moraleda, J.C.; Young, T.S. A new high-intensity ultrasonic technology for food dehydration. Drying Technology 1999, 17(3), 597–608.
  • Galego-Juarez, J.A. Some applications of air-born power ultrasound to food processing. In Ultrasound in Food Processing; Powey, M.J.W. Mason, T.J. Eds.; Blackie Academic & Professional: Cornwall, UK, 1998; Chap. 7, 127–143.
  • Mulet, A.; Carcel, J.; Benedito, J.; Rossello, C.; Simal, S. Ultrasonic mass transfer enhamcement in food processing. In Transport Phenomena in Food Processing; Welti-Chanes, J. Velez-Tuiz, J.F. Barbarosa-Canovas, G.V. eds.; CRC Press: Boca Raton, FL, 2003; Chap. 18, 265–278.
  • Mason, T.J.; Riera, E.; Vercet, A.; Lopez-Buesa, P. Application of ultrasound. In Emerging Technologies for Food Processing; Sun, D.-W. Ed.; Academic Press: Amsterdam, 2005; 323–351.
  • Garcia-Perez, J.V.; Carcel, J.A.; de la Fuente-Blanco, S.; Riera-Franco de Sarabia, E. Ultrasonic drying of foostuff in a fluidized bed: Parametric study. Ultrasonics 2006, 44, 539–543.
  • Garcia-Perez, J.V.; Rossello, C.; Carcel, J.A.; De la Fluente, S.; Mulet, A. Effect of air temperature on convective drying assisted by high power ultrasound. Defect and Diffusion Forum 2006, 258–260, 563–574.
  • de la Fuente-Blanco, S.; Sarabia, E.R.F.; Acosta-Aparicio, V.M.; Blanco, A., Gallego- Juárez, J.A. Food drying process by power ultrasound. Ultrasonics Sonochemistry 2006, 44, 523–527.
  • Gallego-Juárez, J.A.; Riera, E.; de la Fuente-Blanco, S.; Rodriguez-Corral, G.; Acosta-Aparicio, V.M.; Blanco, A. Application of high-power ultrasound for dehydration of vegetables: Processes and devices. Drying Technology 2007, 25, 1983–1901.
  • Frias, J.; Peñas, E.; Ullate, M.; Vidal-Valverde, C. Influence of drying by convective air dryer or power ultrasound on the vitamin C and β-carotene content of carrots. Journal of Agricultural and Food Chemistry 2010, 58, 10539–10544.
  • Sabarez, H.T.; Gallego-Juarez, J.A.; Riera, E. Ultrasonic-assisted convective drying of apple slices. Drying Technology 2012, 30(9), 989–997.
  • Bonazzi, C.; Dumoulin, E. Quality changes in food materials as influenced by drying processes. In Modern Drying Technology, Volume 3: Product Quality and Formulation; Tsotsas, E.; Mujumdar, A.S. Eds.; Wiley-VCH Verlag: Weinheim, Germany, 2011; 1–20.
  • Legay, M.; Gondrexon, N.; Le Person, S.; Boldo, P.; Bontemps, A. Enhancement of heat transfer by ultrasound: Review and recent advances. International Journal of Chemical Engineering 2011, Article ID 670108.
  • Pan, Y.K.; Zhao, L.J.; Dong, Z.X.; Mujumdar, A.S.; Kudra, T. Intermittent drying of carrot in a vibrated fluid bed: effect on product quality. Drying Technology 1999, 17, 2323–2340.
  • Jayaraman, K.S.; Das Gupta, D.K. Drying of fruits and vegetables. In Handbook of Industrial Drying; Mujumdar, A.S. Ed.; CRC Press: Boca Raton, FL, 2006; 606–631.
  • Ong, S.P.; Law, C.L. Hygrothermal properties of various foods, vegetables and fruits. In Drying of Foods, Vegetables and Fruits, Vol. 1; Jangam, S.V. Law, C.L. Mujumdar, A.S. Eds.; Singapore, 2010; 31–58.
  • Kowalski, S.J.; Szadzińska, J.; Łechtańska, J. Non-stationary drying of carrot: Effect on product quality. Journal of Food Engineering 2013, 118(4), 393–399.
  • Fernandes, F.A.N.; Gallão, M.I.; Rodrigues, S. Effect of osmosis and ultrasound on pineapple cell tissue structure during dehydration. Journal of Food Engineering 2009, 90, 186–190.
  • Kentish, S.; Ashokkumar, M. The physical and chemical effects of ultrasound. In Ultrasound Technologies for Food and Bioprocessing; Feng, H., et al., eds.; Springer Science +Business Media: New York, 2011; Chap. 1, 1–12.
  • Ashokkumar, M. The characterization of acoustic cavitation bubbles—An overview. Ultrasonic Sonochemistry 2011, 18, 864–872.
  • Ortuno, C.; Garcia-Perez, J.V.; Carcel, J.A.; Femenia, A.; Mulet, A. Modelling of ultrasonically assisted convective drying of eggplant. Presented at the 17th International Drying Symposium (IDS2010), Magdeburg, Germany, October 3–6, 2010.
  • Rodrigues, S.; Fonteles, T.V.; Leite, K.F.; Fernandes, F.A.N. Improvement on functionality of dried cashew apples subjected to ultrasonic treatment. Presented at Eurodrying'2013, Paris, October 2–4, 2013.
  • Carcel, J.A.; Garcia-Perez, J.V.; Riera, E.; Simal, S.; Mulet, A. Convective drying intensification: Use of airborne ultrasound. Presented at Eurodrying'2011, Palma Balearic Island, Spain, October 26–28, 2011.
  • Garcia-Perez, J.V.; Carcel, J.A.; Simal, S.; Garcia-Alvarado, M.A.; Mulet, A. Ultrasonic intensification of grape stalk convective drying: Kinetic and energy efficiency. Drying Technology 2013, 31, 942–950.
  • Yao, Y. Using power ultrasound for regeneration of dehumidizers in desiccant air-conditioning systems: A review of prospective studies and explored issues. Renewable and Sustainable Energy Reviews 2010, 14, 1860–1873.
  • Śliwiński, A. Ultrasounds and Their Application; WNT: Warsaw, Poland, 2001 (in Polish).
  • Ozuna, C.; Alvarez-Arenas, T.G.; Riera, E.; Carcel, J.A.; Garcia-Perez, J.V. Influence of material structure on air-borne application in drying. Ultrasonics Sonochemistry 2014, 21, 1235–1243.
  • Kowalski, S.J. Ultrasonic waves in diluted and densified suspensions. Ultrasonics 2004, 43, 101–111.
  • Kowalski, S.J. Thermomechanics of Drying Processes; Springer Verlag: Berlin, 2003.
  • Kowalski, S.J.; Pawłowski, A. Modeling of kinetics in stationary and intermittent drying. Drying Technology 2010, 28(8), 1023–1031.
  • Kowalski, S.J.; Mierzwa, D. Influence of osmotic pretreatment on kinetics of convective drying and quality of apples. Drying Technology 2013, 31, 1849–1855.
  • Berry, R.S.; Kazakov, V.A.; Sieniutycz, S.; Szwast, Z.; Tsirlin, A.M. Thermodynamic Optimization of Finite–Time Processes;John Wiley & Sons: New York, 2000.
  • Coussy, O.; Eymard, R.; Lassabatere, T. Constitutive modeling of unsaturated drying deformable materials. Journal of Engineering Mechanics 1998, 124(6), 658–667.
  • Gumiński, K. Thermodynamics of Irreversible Processes; PWN–Polish Scientific Publishers: Warsaw, Poland, 1962 (in Polish).
  • Szarawara, J. Chemical Thermodynamics; WNT-Scientific Technological Publishers: Warsaw, Poland, 1985 (in Polish).
  • Kowalski, S.J.; Musielak, G.; Banaszak, J. Heat and mass transfer during microwave-convective drying. AIChE 2010, 56(1), 24–35.
  • Strumiłło, Cz. Fundamentals of the Theory and Technology of Drying, 2nd ed.; WNT–Scientific Technological Publishers: Warsaw, Poland, 1983 (in Polish).
  • Wiśniewski, S.; Wiśniewski, T.S. Heat Exchange, 4th ed.; WNT–Scientific Technological Publishers: Warsaw, Poland, 1997 (in Polish).
  • Elwell, D.; Pointon A.J. Classical Thermodynamics; WNT–Scientific Technological Publishers: Warsaw, Poland, 1976 (in Polish).
  • Kowalski, S.J.; Pawłowski, A. Intermittent drying: Energy expenditure and product quality. Chemical Engineering Technology 2011, 34(7), 1123–1129.

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