Analysis of drying of melon in a solar-heat recovery assisted infrared dryer

被引:63
作者
Aktas, Mustafa [1 ]
Sevik, Seyfi [2 ]
Amini, Ali [3 ]
Khanlari, Ataollah [4 ]
机构
[1] Gazi Univ, Fac Technol, Energy Syst Engn, TR-06500 Ankara, Turkey
[2] Hitit Univ, Vocat Sch Tech Sci Elect & Energy, TR-19169 Corum, Turkey
[3] Ataturk Univ, Nat & Appl Sci Inst, TR-25240 Erzurum, Turkey
[4] Gazi Univ, Nat & Appl Sci Inst, TR-06500 Ankara, Turkey
关键词
Solar energy; Infrared dryer; Heat and mass transfer; Melon drying; FRESH-CUT; KINETICS; SLICES; CANTALOUPE; SIMULATION; COLLECTOR; BEHAVIOR; SYSTEM; LEAVES; FRUITS;
D O I
10.1016/j.solener.2016.08.036
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Infrared drying systems are popular in terms of high heat and mass transfer. By using an infrared dryer, it is possible to catch fast heating and short drying time in comparison to the other drying methods. But it consumes a high amount of energy. Therefore, a new type solar air collector (SAC) and air to air heat recovery unit were added to the infrared dryer to reduce specific energy consumption. The general aim of this study is to analyze heat and mass transfer characteristics of the dryer and threedimensional (3-D) computational fluid dynamic (CFD) simulation and to investigate drying kinetics of melon slices. Experiments were performed at 50 degrees C and 60 degrees C melon's surface temperature and 0.5 m/s air velocity. Melon slices were dried from 9 g water/g dry matter to 0.044 g water/g dry matter moisture content. The effective moisture diffusivity (De) values varied from 8.25 x 10(-10) to 1.24 x 10(-9) m(2)/s. The average mass transfer coefficient (h(m)) values increase from 8.53 x 10(-8) m/s at 50 degrees C to 1.47 x 10(-7) m/s at 60 degrees C. Heat recovery unit has a key role in this system and it provides 23-28% of total input energy. Average solar air collector efficiency was calculated as 50.6%. Obtained theoretical and experimental results are in line with each other. This study shows the successful and efficient combination of solar energy, infrared energy and heat recovery in food processing. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:500 / 515
页数:16
相关论文
共 45 条
[1]  
Aboltins A, 2013, ENG RUR DEVELOP, P153
[2]   Energy and exergy analyses of the spray drying process of fish oil microencapsulation [J].
Aghbashlo, Mortaza ;
Mobli, Hossien ;
Rafiee, Shahin ;
Madadlou, Ashkan .
BIOSYSTEMS ENGINEERING, 2012, 111 (02) :229-241
[3]   Drying of mint leaves in a solar dryer and under open sun: Modelling, performance analyses [J].
Akpinar, E. Kayak .
ENERGY CONVERSION AND MANAGEMENT, 2010, 51 (12) :2407-2418
[4]  
Aktas M, 2013, J FAC ENG ARCHIT GAZ, V28, P767
[5]   Drying of Tomato in a Photovoltaic and Thermal Solar-Powered Continuous Dryer [J].
Aktas, Mustafa ;
Sevik, Seyfi ;
Dogan, Hikmet ;
Ozturk, Mujdat .
JOURNAL OF AGRICULTURAL SCIENCES-TARIM BILIMLERI DERGISI, 2012, 18 (04) :287-298
[6]  
Amiri M., 2014, EUR J EXP BIOL, V4, P44
[7]  
[Anonymous], 1990, OFFICIAL METHODS ANA
[8]  
[Anonymous], 2010, FAO Statistical Yearbook 2010
[9]   The shelf-life of minimally processed fresh cut melons [J].
Ayhan, Z ;
Chism, GW ;
Richter, ER .
JOURNAL OF FOOD QUALITY, 1998, 21 (01) :29-40
[10]   Nutritional composition, microbiological and sensory properties of dried melon: A traditional Turkmen product [J].
Berdiyev, Mirat ;
Arslan, Derya ;
Ozcan, M. Musa .
INTERNATIONAL JOURNAL OF FOOD SCIENCES AND NUTRITION, 2009, 60 (01) :60-68