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Hot air and microwave drying of pomegranate (Punica granatum L.) arils

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Abstract

In this study, arils of Hicaz type pomegranates were dried by hot air and microwave drying technique. Drying behavior, shrinkage, rehydration, bulk density and color changes of the products were investigated. Hot air drying process was carried out at three different temperatures; 50, 60 and 70 °C at 1.0 m/s air velocity. Also, three microwave power levels (210, 350, and 490 W) were studied as another drying technique. Among the several models listed in literature, the Page drying model was appropriate for both convective and microwave drying of the pomegranate arils drying. Increasing drying temperature and power intensity shortened the drying time of arils. Rate of drying was higher when microwave (5.83 × 10−3 - 2.85 × 10−2) used compared to air drying process (1.52 × 10−4 - 1.70 × 10−3). It was observed that shrinkage of air dried samples was higher than microwave dried sample. Rate of rehydration of microwave dried aril samples was relatively faster than air dried samples, but not significant statistically. However, bulk density of air dried samples was higher than those of microwave dried sample.

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References

  • Akyıldız A, Saray S, Benli H, Kıroğlu F, Fenercioğlu H (2004) Determination of changes in some characteristics of persimmon during dehydration at different temperatures. J Food Eng 65:95–99

    Article  Google Scholar 

  • Altan A, Maskan M (2005) Microwave assisted drying of short-cut (ditalini) macaroni: drying characteristics and effect of drying processes on starch properties. Food Res Int 38:787–796

    Article  CAS  Google Scholar 

  • Calín-Sánchez Á, Figiel A, Hernández F, Melgarejo P, Lech K, Carbonell-Barrachina ÁA (2012) Chemical composition, antioxidant capacity, and sensory quality of pomegranate (Punica granatum L.)arils and rind as affected by drying method. Food Bioprosess Technol. doi:10.1007/s11947-012-0790-0

    Google Scholar 

  • Contreras C, Martin-Esparza ME, Chiralt A, Martinez-Navarrete N (2001) Influence of microwave application on convective drying: effects on drying kinetics, and optical and mechanical properties of apple and strawberry. J Food Eng 88:55–64

    Article  Google Scholar 

  • Doymaz İ (2012) Drying of pomegranate seeds using infrared radiation. Food Sci Biotechnol 21:1269–1275

    Article  Google Scholar 

  • Doymaz İ, Altıner P (2012) Effect of pretreatment solution on drying and color characteristics of seedless grapes. Food Sci Biotechnol 21(1):43–49

    Article  Google Scholar 

  • Fadavi A, Bargezar M, Azizi MH (2006) Determination of fatty acids and total lipid content in oilseed of 25 pomegranates varieties grown in İran. J Food Comp Anal 9:676–680

    Article  Google Scholar 

  • Funebo T, Ahrné L, Kidman S, Langton M, Skjöldebrand C (2000) Microwave heat treatment of apple before air dehydration effects on physical properties and microstructure. J Food Eng 46:173–182

    Article  Google Scholar 

  • Funebo T, Ahrné L, Prothon F, Kidman S, Longton M, Skjöldebrand C (2002) Microwave and convective dehydration of ethanol treated and frozen apple-physical properties and drying kinetics. Int J Food SciTechnol 37:603–614

    Article  CAS  Google Scholar 

  • Horuz E, Altan A, Maskan M (2012) Spray drying and process optimization of unclarified pomegranate (Punica granatum) juice. Drying Technol 30:787–798

    Article  CAS  Google Scholar 

  • Kingsly ARP, Singh DB (2007) Drying kinetics of pomegranate arils. J Food Eng 79:741–744

    Article  Google Scholar 

  • Krokida MK, Marinos-Kouris D (2003) Rehydration kinetics of dehydrated products. J Food Eng 57:1–7

    Article  Google Scholar 

  • Longtin R (2003) The pomegranate: nature’s power fruit? J Natl Cancer Ins 95:346–348

    Article  Google Scholar 

  • Maskan M (2000) Production of pomegranate (Punica granatum L.) juice concentrate by various heating methods: color degradation and kinetics. J Food Eng 44:71–78

    Article  Google Scholar 

  • Maskan M (2001) Drying, shrinkage and rehydration characteristics of kiwifruits during hot air and microwave drying. J Food Eng 48:177–182

    Article  Google Scholar 

  • Maskan M (2006) Production of pomegranate (Punica granatum L.) juice concentrate by various heating methods: color degradation and kinetics. J Food Eng 72:218–224

    Article  Google Scholar 

  • Maskan A, Kaya S, Maskan M (2002) Effect of concentration and drying processes on color change of grape juice and leather (pestil). J Food Eng 54:75–80

    Article  Google Scholar 

  • Meerts IATM, Verspeek-Rip CM, Buskens CAF, Keizer HG, Bassaganya-Riera J, Jouni ZE, van Huygevoort AHBM, van Otterdijk FM, van de Waart EJ (2009) Toxicological evaluation of pomegranate seed oil. Food Chem Toxicol 47:1085–1092

    Article  CAS  Google Scholar 

  • Minaei S, Motevali A, Ahmadi E, Azizi MH (2012) Mathematical models of drying pomegranate arils in vacuum and microwave dryers. J Agr Sci Tech 14:311–325

    Google Scholar 

  • Motevali A, Minaei S, Khostaghaza MH, Kazemi M, Nikbakht AM (2010) Drying of pomegranate arils: comparison of predictions from mathematical models and neural networks. Int J Food Eng 6(3), Article

  • Mundada M, Hathan BS, Maske S (2010) Convective dehydration kinetics of osmotically pretreated pomegranate arils. Biosystem Eng 107:307–316

    Article  Google Scholar 

  • Qing-guo H, Zhang M, Mujumdar AS, Wei-hua D, Jin-cai S (2006) Effects of different drying methods on the quality changes of granular edamame. Drying Technol 24:1025–1032

    Article  Google Scholar 

  • Schiffmann RF (2001) Microwave processes for the food industry. In: Data AK, Anathesven RC (eds) Handbook of microwave technology for food applications. Marcel Dekker, Inc., New York, pp 229–337

    Google Scholar 

  • Sharma G, Prasad S (2001) Drying of garlic (Allium sativum) cloves by microwave–hot air combination. J Food Eng 50:99–105

    Article  Google Scholar 

  • Van Arsdel WB (1973) Drying phenomena (pp. 22). AVI Pub. Co., Westport, CT

  • Vega-Galvez A, Lemus-Mondaca R, Bilbao-Sainz C, Fito P, Andres A (2008) Effect of drying temperature on the quality of rehydrated dried red bell pepper (var. Lamuyo). J Food Eng 85:42–50

    Article  Google Scholar 

  • Yemmireddy VK, Chinnan MS, Kerr WL, Hung Y (2013) Effect of drying method on drying time and physico-chemical properties of dried rabbiteye blueberries. Food Sci Technol 50(2):739–745

    CAS  Google Scholar 

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Correspondence to Medeni Maskan.

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Horuz, E., Maskan, M. Hot air and microwave drying of pomegranate (Punica granatum L.) arils. J Food Sci Technol 52, 285–293 (2015). https://doi.org/10.1007/s13197-013-1032-9

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  • DOI: https://doi.org/10.1007/s13197-013-1032-9

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