Drying Kinetics and Antioxidant Phytochemicals Retention of Salak Fruit under Different Drying and Pretreatment Conditions

被引:58
作者
Ong, Sze Pheng [1 ]
Law, Chung Lim [1 ]
机构
[1] Univ Nottingham, Dept Chem & Environm Engn, Semenyih 43500, Selangor Darul, Malaysia
关键词
Antioxidant; Freeze drying; Heat pump drying; Hot air drying; Pretreatment; Salak; HEAT-PUMP DEHUMIDIFIER; ASCORBIC-ACID; EDULIS-REINW; QUALITY; TEMPERATURE; VEGETABLES; OPTIMIZATION; LEAVES; IMPACT; FREEZE;
D O I
10.1080/07373937.2010.503332
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Kinetics of hot air drying and heat pump drying were studied by performing various drying trials on salak slices. Isothermal drying trials were conducted in hot air drying and heat pump drying at a temperature range of 40-90 degrees C and 26-37 degrees C, respectively. Intermittent drying trials were carried out in heat pump drying with two different modes: periodic heat air flow supply and step-up air temperature. It was observed that the effects of relative humidity and air velocity on drying rate were significant when moisture content in salak slices was high, whereas the effects of temperature prevailed when the moisture content was low. As such, it was proposed that drying conditions should be manipulated according to the moisture transport mechanisms at different stages of drying in order to optimize the intermittent drying and improve the product quality. Generally, loss of ascorbic acid during drying was attributed to thermal degradation and enzymatic oxidation, whereas the loss of phenolic compounds was mainly due to thermal degradation. Experimental results showed that heat pump drying with low-temperature dehumidified air not only enhanced the drying kinetics but produced a stable final product. Heat pump-dried samples retained a high concentration of ascorbic acid and total phenolic compounds when an appropriate drying mode was selected.
引用
收藏
页码:429 / 441
页数:13
相关论文
共 57 条
[11]  
Glenn GM, 2005, PRODUCE DEGRADATION: PATHWAYS AND PREVENTION, P19
[12]   Biochemical and colour changes of watercress (Nasturtium officinale R. Br.) during freezing and frozen storage [J].
Goncalves, E. M. ;
Cruz, R. M. S. ;
Abreu, M. ;
Brandao, T. R. S. ;
Silva, C. L. M. .
JOURNAL OF FOOD ENGINEERING, 2009, 93 (01) :32-39
[13]  
Goodwin SM, 2005, BIOL SCI SER, P14, DOI 10.1002/9780470988503.ch2
[14]   Retention of ascorbic acid during drying of tomato halves and tomato pulp [J].
Goula, AM ;
Adamopoulos, KG .
DRYING TECHNOLOGY, 2006, 24 (01) :57-64
[15]   THERMAL-DECOMPOSITION OF SOME PHENOLIC ANTIOXIDANTS [J].
HAMAMA, AA ;
NAWAR, WW .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 1991, 39 (06) :1063-1069
[16]   Drying of guava and papaya: Impact of different drying methods [J].
Hawlader, MNA ;
Perera, C ;
Tian, M ;
Yeo, KL .
DRYING TECHNOLOGY, 2006, 24 (01) :77-87
[17]  
Iglesias H.A., 1982, HDB FOOD ISOTHERMS W
[18]   Studies on dehydration of sapota (Achras zapota) [J].
Jangam, Sachin V. ;
Joshi, Varsha S. ;
Mujumdar, Arun S. ;
Thorat, Bhaskar N. .
DRYING TECHNOLOGY, 2008, 26 (03) :369-377
[19]   Polyphenol composition and total antioxidant capacity of selected apple genotypes for processing [J].
Khanizadeh, Shahrokh ;
Tsao, Rong ;
Rekika, Djamila ;
Yang, Raymond ;
Charles, Marie Therese ;
Rupasinghe, H. P. Vasantha .
JOURNAL OF FOOD COMPOSITION AND ANALYSIS, 2008, 21 (05) :396-401
[20]   Rehydration of dehydrated foods [J].
Krokida, MK ;
Philippopoulos, C .
DRYING TECHNOLOGY, 2005, 23 (04) :799-830