Mathematical Modeling on Hot Air Drying of Thin Layer Fresh Tilapia Fillets

被引:36
作者
Guan, Zhiqiang
Wang, Xiuzhi
Li, Min
Jiang, Xiaoqiang
机构
[1] College of Chemistry and Life Science, Guangdong Institute of Petrochemical Technology
[2] College of Engineering, Guangdong Ocean University
关键词
EFFECTIVE MOISTURE DIFFUSIVITY; SLICES; ACTIVATION;
D O I
10.2478/v10222-012-0065-5
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
The hot convective drying of fresh tilapia fillets was evaluated in a heat pump dryer. The influence of the drying temperature (35,45 and 55 degrees C), hot air velocity (1.50, 2.50 and 3.50 m/s) and thickness (3, 5 and 7 mm) of the tilapia fillets on the moisture ratio and drying rate has been studied. It shows that drying process took place in falling rate periods. The experimental drying data of fresh tilapia fillets under different conditions was fitted to nine different commonly used thin-layer drying models by nonlinear fitting methods and all the models were compared according to three statistical parameters, i.e. coefficient of determination, the reduced chi-square and the root mean square error. It was found that the coefficient of determination values of Page were higher than 0.99254, and the corresponding reduced chi-square and the root mean square error values were lower than 0.000632219 and 0.023854, respectively, indicating that the Page model is the best to describe drying curves of fresh tilapia fillets among them. Effective moisture diffusivity ranged from 6.55 x 10(-10) to 1.23 x 10(-9) m(2)/s calculated using the Fick's second law. With the increase of the drying temperature and the hot air velocity, the effective moisture diffusivities D-eff increased. The value of drying activation energy of tilapia fillets with thickness of 3 mm at hot air velocity 2.50 m/s was 17.66 kJ/mol, as determined from the slope of the Arrhenius plot, ln(D-eff) versus 1/T-a.
引用
收藏
页码:25 / 33
页数:9
相关论文
共 31 条
[1]   Influence of drying conditions on the effective moisture diffusivity, energy of activation and energy consumption during the thin-layer drying of berberis fruit (Berberidaceae) [J].
Aghbashlo, Mortaza ;
Kianmehr, Mohammad H. ;
Samimi-Akhijahani, Hadi .
ENERGY CONVERSION AND MANAGEMENT, 2008, 49 (10) :2865-2871
[2]   Modelling of olive cake thin-layer drying process [J].
Akgun, NA ;
Doymaz, I .
JOURNAL OF FOOD ENGINEERING, 2005, 68 (04) :455-461
[3]  
AOAC, 2005, AOAC: official methods of analysis
[4]   EXPOSED-LAYER BARLEY DRYING - 3 MODELS FITTED TO NEW DATA UP TO 150-DEGREES-C [J].
BRUCE, DM .
JOURNAL OF AGRICULTURAL ENGINEERING RESEARCH, 1985, 32 (04) :337-348
[5]   Water effective diffusion coefficient of mango slices at different maturity stages during air drying [J].
Corzo, Otoniel ;
Bracho, Nelson ;
Alvarez, Carlos .
JOURNAL OF FOOD ENGINEERING, 2008, 87 (04) :479-484
[6]  
DIAMANTE LM, 1991, INT J FOOD SCI TECH, V26, P99
[7]   Drying equations of Thai Horn Mali paddy by using hot air, carbon dioxide and nitrogen gases as drying media [J].
Doungporn, Siri ;
Poomsa-ad, Nattapol ;
Wiset, Lamul .
FOOD AND BIOPRODUCTS PROCESSING, 2012, 90 (C2) :187-198
[8]   Evaluation of some thin-layer drying models of persimmon slices (Diospyros kaki L.) [J].
Doymaz, Ibrahim .
ENERGY CONVERSION AND MANAGEMENT, 2012, 56 :199-205
[9]   Drying characteristics of sweet cherry [J].
Doymaz, Ibrahim ;
Ismail, Osman .
FOOD AND BIOPRODUCTS PROCESSING, 2011, 89 (C1) :31-38
[10]  
Figiel A., 2007, POL J FOOD NUTR SCI, V57, P131