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Review the Design of the Solar Dryer for the Dryer of Fruit and Vegetable Dryers

Received: 26 August 2022    Accepted: 25 September 2022    Published: 17 January 2023
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Abstract

Fruits and vegetables are very seasonal and are particularly abundant year-on-year. Preserving these fruits and vegetables can prevent high accusations and can be achieved during the exit period at the cost of pay. Drying out fruits and vegetables is essential for the preservation of food. The technique is done using artificially fossil fuels or placing the fruit and vegetables under the sun. The first method has an expensive and environmentally negative impact, and the second method is entirely dependent on the weather. By contrast, the use of solar dryers is relatively cheap and efficient. Some solar dryers run without electricity or fossil fuels. This paper looks at a variety of solar panels that are widely used today. Active and useless design solar dryers are an environmental influence on solar power (Harness). This plays a crucial role in the solar dryer. They are often easy and relatively cheap to make, often showing efficient and active designs based on low-quality products or the use of compulsory convection. The indirect and direct, design dryers that have shown potential in drying food products in tropical and subtropical countries are reviewed. Such low-cost food drying technologies can be easily introduced in rural areas of developing and developed countries. This technology aims to reduce the quality of production, improve product quality and promote overall sanitation. Therefore, this review should be used to adequately guide individuals by selecting appropriate drying designs for the conditions given to them and later assessing the execution of the system for developing countries such as Ethiopia.

Published in International Journal of Food Engineering and Technology (Volume 7, Issue 1)
DOI 10.11648/j.ijfet.20230701.11
Page(s) 1-11
Creative Commons

This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2024. Published by Science Publishing Group

Keywords

Design of Solar Dryer, Fruit, Vegetable, Drying

References
[1] N., A. and S. Gebre Maria. The research role for Friday's development in Ethiopia. In I International Symposium on Tropical Economics 270. 1989 in developing countries.
[2] FAO, A., coming to match words. Rome, Italy CFS, 2012.
[3] Prakash, S., S. Jha, and N. Datta, Performance Assessment blanched carrots dry with three different drives. Journal of Food Engineering, 2004 62 (3) pages 305-313.
[4] Mujumdar, A. S., a general vision of innovation in industrial drying requires current conditions and R& D. By Porsche Media Transportation, 2007. 66 (1-2): Pages 3-18.
[5] Dissa, A., et al, Convective drying properties Amelie Mango (Mangifera Indica. cv. Amelie.) with a correction for shrinkage. Journal of Food Engineering, 2008 88 (4) Pages 429-437.
[6] Sharma, A., C. Chen, and N. V. Lan, solar-powered drying systems one review. Renewable and Sustainable Energy Reviews, 2009. 13 (6-7): Pages 1185-1210.
[7] Tröger, K., O. Hensel, and A. Bürkert. In Niger, the protection of onions and tomatoes is a post-harvest loss and drying technique. Agriculture research at Conflence on International. 2007 B. C. E.
[8] Kothari, S., N. Panwar, and S. Chaudhri, a mixed model of the integrated air redistribution system to dry sun dryer for onion particles. International Journal of Tadashi Energy Technology, 2009 1 (1) pages 29-41.
[9] Wachira, J. M., P. M. Mshenga and MSID, small amounts of greenhouse and open field tomato production systems in Nakuru-northern province, Kenya, relative to profitability. The Asian Journal of Agricascience, 2014 6 (2) pages 54-61.
[10] Yosten, F, Exporting Fruit and Vegetables in Al, Ethiopia - An assessment of the development potential and investment options of the export-focused fruit and vegetable sector. Addis Ababa, 2011.
[11] Yohannes, A., Economics of the Economics of the Economics of the Economicof of the Economicconomic in Ethiopia is the number one international symposium on the article economy in developing countries. Acta Horticulture, 1989 16, 15-19.
[12] Mekonnen, K., et al, in drought-stricken hotpots in Ethiopia's Blue Nile Basin to improve communities' ability to adapt to climate change. 2013.
[13] Barredo, U. S. A., Gamo Goffa Zone investigation and planning document. The livestock and irrigation chain project for Ethiopian small wealthy people, 2013.
[14] Tabor, G. and M. Yesuf, current map of carrot cultivation in Ethiopia, papers submitted to Carrot. 2012, Denmark.
[15] DMC, T. A., A. Ali, and D., find and eat fruits and vegetables in nine regions of Ethiopia with particular emphasis on vitamin A deficiency. Ethiopian Journal of Health Development, 2009 23 (3).
[16] Li, T., et al, Ag, Au, and Ag–bimetal nanoparticles at Daphnia Magna on the Study of Comparative Toxicity. Analysis and bioanalytical chemistry, 2010. 398 (2) Pages 689-700.
[17] Yeabsira, T. D., Assessment of the outworking of fruit and vegetables in Ethiopia. 2014, Mekelle University.
[18] Science, N. R. C. B. o. and T. F. I. Development, food losses in the developing world. 1978 National Academies.
[19] Gewali, M., B. Yoshi, and B. Ramchandra, The Rawbe Solar Biomass Cabinet Dryers Performance Assessment. European Journal of Scientific Research, 2005 4 (1): Pages 25-33.
[20] Cader, A. A. Increased food supply by reducing the loss of fresh produce after harvest. 682. 2004 at the V International Postharvest Symposium
[21] Mustain, A., S. Mekhilef, and R. Saidur, study the operation of various sun dryers. Renewable and Sustainable Energy Reviews, 2014. 34 p. 463-470.
[22] Bridgwater, A. V., renewable fuels and chemicals in the thermal process. Chemical Engineering Journal, 2003 B. C. E. 91 (2-3): Pages 87-102.
[23] Mujumdar, A., the dryer is basic. Industrial dryer food dryer, 1997. 1. 1.
[24] Mujumdar, A. S. and A. S. Menon, dryer principles, class, and dryers choice. The Index Drying Guidebook, 1995. 1 p. 1-39.
[25] Saadaoui, S., et al, electrical identification (Ni/Au) /Al. Al. 25Ga0.75N/GaN/SiC Schottky barrier diode. Journal of Applied Physics, 2011 110 (1) - page 013701.
[26] Visavale, G., principles, class, and choice of solar dryers. Sun dryer fundamentals, appliances, and inventions, Ed Hii, CL, Ong, SP, Zhang, SV, and Mujumdar, AS, Published in Singapore, 2012 p. 1-50.
[27] Al-Juamili, K. E., A. J. N. Khalifa, and T. A. Yassen, an investigation into the completion of the fruit and vegetable sun dryer system in Iraq. 2007 B. C. E. 209 (1-3): Pages 163-170.
[28] Senator, F., et al, Tagetes minuta L. L. A. essential oil is a variety of chemical compositions. Taste and Fragrance Journal, 2004. 19 (6): Pages 574-578.
[29] Chen, C., A. Sharma, and H. Lam. Experimental thermal fulfillment studies force solar dryers. I, Solars 2007, a third international conference at IIT Delhi.
[30] Wang, P. H., T-Ya Tang, and H-N Zheng, the cantilever techniques, the construction of cable bridges. Computers &structures, 2004. 82 (4-5): Pages 329-346.
[31] Reich, S. J., et al, small intervention effectively blocks ocular neovascularization in a mouse model that targets RNA (siRNA) VEGF. Mole Vice, 2003 9 (5) pages 210-216.
[32] Krokida, M. K., Z. B. Maroulis, and G. D. Sarcos, the results of the drying technique on the color of water-filled products. International Food Science and Technology Journal, 2001. 36 (1) pages 53-59.
[33] Bala B. and S. Janjai. Fruit, vegetables, spices, medicinal plants, and the growth and potential of the fish solar dryer. At the International Conference on Solar Food Planning... 2009 B. C. E.
[34] Madhya, A., S. Jones, and J. Kalenga Saka, combined with a solar air heater, combine-absorber systems to deplete water for food. Renewable Energy, 2002. 27 (1) Pages 27-37.
[35] Othieno, H., W. Grainger, and J. Tillwide, small amounts of solar crop dryer in Kenya, Energy for rural and island communities. 1982, Elsevier. p. 377-386.
[36] El-Shiatri, M.; J. Muhlbauer, drying fruits and vegetables with solar power in Egypt. Agricultural Mechanization in Asia, Africa, and Latin America, 1991. 22 (2): Pages 61-64.
[37] Lambert, J., D. Angus, and P. Reid, solar energy appliances in agriculture. I... dried grape industry. Solar energy in agriculture. Dry grape industry. 1980 (48/80).
[38] Norton, B., solar panels, Solar Energy Thermal Technology. 1992, Springer. p. 191-209.
[39] Soda, M. S. and R. Chandra, solar dryer systems and their experimental work are a review. Power change and governance, 1994. 35 (3) Pages 219-267.
[40] Jayaraman, K. and D. D. D. Gupta, recent developments in the fields and technicians have been depleted of fruit and vegetables. Drying Technology, 1992 10 (1) Pages 1-50.
[41] Rodriguez-Amaya, D. B., carotenoids, and food preparation provitamin carotenoids in processed and stored foods. 1997 John Snow Incorporated/OMNI Project Arlington, VA.
[42] Weiss, W. and J. Buchinger, Solar Dryer. AEE INTEC text, A-8200 Gleisdorf, Feldgasse, 2012. 19. 19.
[43] Amir, E. J., et al, et al, solar tunnel drying development with a purpose for use in wet weather. Renewable Energy, 1991. 1 (2): Pages 167-176.
[44] Wereko-Brobby, C. They felt the need to promote energy supply options for research and development in solar drying or to meet. A workshop in The Solar Drying in Africa, Dakar, Senegal, 21-24 July 1986. 1987. IDRC, Ottawa, ON, CA.
[45] Sreekumar, A., P. Manikantan, and K. Vijayakumar, a orbiting sun cabinet dryer. Power change and management, 2008. 49 (6) pages 1388-1395.
[46] Weiss, W. and J. Buchinger, Solar Dryer-Austrian Development Cooperation. AE INTEC, Gleisdorf, 2005. 110. (110).
[47] Irtwange, S. and S. Adebayo, tropical labratory levels pass through the sunflower development and operation. Journal of AgrixTnation and Rural Development, 2009 1 (2): Pages 042-049.
[48] Keener, H., et al, plastic film to dry grain from solar collectors. paragraph 1977 (14-77).
[49] Mumba, J., solar grain dryer design and development that includes photovoltaic-powered airfish. Power change and governance, 1996. 37 (5) Pages 615-621.
[50] Bilgen, E. and B. Bakeka, Solar collection systems to provide hot air in rural applications. Renewable Energy, 2008. 33 (7) Pages 1461-1468.
[51] Forson, F., et al, mixed-model design of natural convection solar crop dryers implemented the principles and regulations of thumb. Renewable Energy, 2007. 32 (14): Pages 2306-2319.
[52] Ahmed, Q. R., et al, ratings n e + d→ p + p + e− by Sudbury Neutrino Observatory B 8 Solar Neutrinos. Physical Review Letters, 2001 87 (7) p. 071301.
[53] Pérez-Luna, J., et al, altod electric field and ionization for repetition from laser indedore fluscence measurements. Science and Technology of Plasma Sources, 2009 18 (3) page 034008.
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  • APA Style

    Tariku Workineh Daksa, Getachew Neme Tolesa. (2023). Review the Design of the Solar Dryer for the Dryer of Fruit and Vegetable Dryers. International Journal of Food Engineering and Technology, 7(1), 1-11. https://doi.org/10.11648/j.ijfet.20230701.11

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    ACS Style

    Tariku Workineh Daksa; Getachew Neme Tolesa. Review the Design of the Solar Dryer for the Dryer of Fruit and Vegetable Dryers. Int. J. Food Eng. Technol. 2023, 7(1), 1-11. doi: 10.11648/j.ijfet.20230701.11

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    AMA Style

    Tariku Workineh Daksa, Getachew Neme Tolesa. Review the Design of the Solar Dryer for the Dryer of Fruit and Vegetable Dryers. Int J Food Eng Technol. 2023;7(1):1-11. doi: 10.11648/j.ijfet.20230701.11

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  • @article{10.11648/j.ijfet.20230701.11,
      author = {Tariku Workineh Daksa and Getachew Neme Tolesa},
      title = {Review the Design of the Solar Dryer for the Dryer of Fruit and Vegetable Dryers},
      journal = {International Journal of Food Engineering and Technology},
      volume = {7},
      number = {1},
      pages = {1-11},
      doi = {10.11648/j.ijfet.20230701.11},
      url = {https://doi.org/10.11648/j.ijfet.20230701.11},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ijfet.20230701.11},
      abstract = {Fruits and vegetables are very seasonal and are particularly abundant year-on-year. Preserving these fruits and vegetables can prevent high accusations and can be achieved during the exit period at the cost of pay. Drying out fruits and vegetables is essential for the preservation of food. The technique is done using artificially fossil fuels or placing the fruit and vegetables under the sun. The first method has an expensive and environmentally negative impact, and the second method is entirely dependent on the weather. By contrast, the use of solar dryers is relatively cheap and efficient. Some solar dryers run without electricity or fossil fuels. This paper looks at a variety of solar panels that are widely used today. Active and useless design solar dryers are an environmental influence on solar power (Harness). This plays a crucial role in the solar dryer. They are often easy and relatively cheap to make, often showing efficient and active designs based on low-quality products or the use of compulsory convection. The indirect and direct, design dryers that have shown potential in drying food products in tropical and subtropical countries are reviewed. Such low-cost food drying technologies can be easily introduced in rural areas of developing and developed countries. This technology aims to reduce the quality of production, improve product quality and promote overall sanitation. Therefore, this review should be used to adequately guide individuals by selecting appropriate drying designs for the conditions given to them and later assessing the execution of the system for developing countries such as Ethiopia.},
     year = {2023}
    }
    

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  • TY  - JOUR
    T1  - Review the Design of the Solar Dryer for the Dryer of Fruit and Vegetable Dryers
    AU  - Tariku Workineh Daksa
    AU  - Getachew Neme Tolesa
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    N1  - https://doi.org/10.11648/j.ijfet.20230701.11
    DO  - 10.11648/j.ijfet.20230701.11
    T2  - International Journal of Food Engineering and Technology
    JF  - International Journal of Food Engineering and Technology
    JO  - International Journal of Food Engineering and Technology
    SP  - 1
    EP  - 11
    PB  - Science Publishing Group
    SN  - 2640-1584
    UR  - https://doi.org/10.11648/j.ijfet.20230701.11
    AB  - Fruits and vegetables are very seasonal and are particularly abundant year-on-year. Preserving these fruits and vegetables can prevent high accusations and can be achieved during the exit period at the cost of pay. Drying out fruits and vegetables is essential for the preservation of food. The technique is done using artificially fossil fuels or placing the fruit and vegetables under the sun. The first method has an expensive and environmentally negative impact, and the second method is entirely dependent on the weather. By contrast, the use of solar dryers is relatively cheap and efficient. Some solar dryers run without electricity or fossil fuels. This paper looks at a variety of solar panels that are widely used today. Active and useless design solar dryers are an environmental influence on solar power (Harness). This plays a crucial role in the solar dryer. They are often easy and relatively cheap to make, often showing efficient and active designs based on low-quality products or the use of compulsory convection. The indirect and direct, design dryers that have shown potential in drying food products in tropical and subtropical countries are reviewed. Such low-cost food drying technologies can be easily introduced in rural areas of developing and developed countries. This technology aims to reduce the quality of production, improve product quality and promote overall sanitation. Therefore, this review should be used to adequately guide individuals by selecting appropriate drying designs for the conditions given to them and later assessing the execution of the system for developing countries such as Ethiopia.
    VL  - 7
    IS  - 1
    ER  - 

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Author Information
  • Department of Food Technology and Process Engineering, Haramaya Institute of Technology, Haramaya University, Haramaya, Ethiopia

  • Department of Food Science and Postharvest Technology, Haramaya Institute of Technology, Haramaya University, Haramaya, Ethiopia

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