A study of the energy efficiency of convective drying systems assisted by ultrasound in the production of clipfish

被引:51
作者
Bantle, Michael [1 ]
Eikevik, Trygve M. [2 ]
机构
[1] SINTEF Energy Res, Dept Energy Efficiency, NO-7465 Trondheim, Norway
[2] Norwegian Univ Sci & Technol NTNU, Dept Energy & Proc Engn, Trondheim, Norway
关键词
Heat pump drying; Ultrasonic drying; Dynamic process simulation; DEHYDRATION; VEGETABLES;
D O I
10.1016/j.jclepro.2013.07.016
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
High intensity, airborne ultrasound is a promising hybrid technology for reducing the drying time for convective drying processes. The drying kinetics of the convective drying of clipfish with and without the assistance of ultrasound are compared in a laboratory scale pilot plant. Tests carried out showed that the drying time at a temperature of 20 degrees C can be reduced by 43% at an ultrasonic intensity of 25 W kg(-1). The drying rate is especially increased during the initial period of the drying process, while the effect is minor toward the end of process. The data obtained was used for a dynamic simulation of a batch tunnel drier with a capacity of 40 tons, assisted by ultrasound. Process simulations for heat pump drying (HPD) and heated ambient air drying (HAAD) were performed and compared with ultrasonic assisted drying. Heat pump drying without ultrasound is the most energy efficient dehydration process for clipfish (206 kWh ton(-1)), followed by heat ambient air drying without ultrasound (915 kWh ton(-1)). The energy consumptions for ultrasonic drying increase multiple times despite its faster dehydration. In order to be energy efficient, ultrasonic intensities in the convective drying of clipfish should not exceed 2 W kg(-1), while resulting in a drying time reduction of at least 50%. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:217 / 223
页数:7
相关论文
共 20 条
[1]  
[Anonymous], 1989, REV 2005 CODEX STAN, P167
[2]   An Experimental Analysis of Acoustic Drying of Carrots: Evaluation of Heat Transfer Coefficients in Different Drying Conditions [J].
Aversa, Maria ;
Van der Voort, Aart-Jan ;
de Heij, Wouter ;
Tournois, Bert ;
Curcio, Stefano .
DRYING TECHNOLOGY, 2011, 29 (02) :239-244
[3]  
Bantle M., 2012, 18 INT DRVING S AS M
[4]  
Bantle M., 2011, NORGES TEKNISK NATUR, V11
[5]  
Carcel J., 2010, INT DRYING S 2010 MA
[6]   A review of heat-pump drying (HPD): Part 2-Applications and performance assessments [J].
Colak, Neslihan ;
Hepbasli, Arif .
ENERGY CONVERSION AND MANAGEMENT, 2009, 50 (09) :2187-2199
[7]   A review of heat pump drying: Part 1-Systems, models and studies [J].
Colak, Neslihan ;
Hepbasli, Arif .
ENERGY CONVERSION AND MANAGEMENT, 2009, 50 (09) :2180-2186
[8]   Effects of Microwave-Assisted Hot Air Drying and Conventional Hot Air Drying on the Drying Kinetics, Color, Rehydration, and Volatiles of Moringa oleifera [J].
Dev, S. R. S. ;
Geetha, P. ;
Orsat, V. ;
Gariepy, Y. ;
Raghavan, G. S. V. .
DRYING TECHNOLOGY, 2011, 29 (12) :1452-1458
[9]   Application of high-power ultrasound for dehydration of vegetables:: Processes and devices [J].
Gallego-Juarez, J. A. ;
Riera, E. ;
Blanco, S. de la Fuente ;
Rodriguez-Corral, G. ;
Acosta-Aparicio, V. M. ;
Blanco, A. .
DRYING TECHNOLOGY, 2007, 25 (11) :1893-1901
[10]   A new high-intensity ultrasonic technology for food dehydration [J].
Gallego-Juárez, JA ;
Rodriguez-Corral, G ;
Moraleda, JCG ;
Yang, TS .
DRYING TECHNOLOGY, 1999, 17 (03) :597-608