347
Views
6
CrossRef citations to date
0
Altmetric
Research Article

Techno-economic analysis of a hybrid solar-electric dryer

ORCID Icon, &
Received 29 Apr 2020, Accepted 09 Jun 2020, Published online: 22 Jun 2020

References

  • Abano, E. E., H. Ma, and W. Qu. 2014. Optimization of drying conditions for quality dried tomato slices using response surface methodology. Journal of Food Process and Preservation 38:996–1009.
  • Afolabi, T. J., T. Y. Akintunde, and O. J. Oyelade. 2014. Influence of drying conditions on the effective moisture diffusivity and energy requirements of ginger slices. Journal of Food Research 3 (5):103–12. doi:10.5539/jfr.v3n5p103.
  • Aghbashlo, M., M. H. Kianmehr, and A. Arabhosseini. 2008. Energy and exergy analyses of thin-layer drying of potato slices in a semi-industrial continuous band dryer. Drying Technology 26 (2008):1501–08. doi:10.1080/07373930802412231.
  • Akpinar, E. K. 2004. Energy and exergy analyses of drying of red pepper slices in a convective type dryer. International Communication in Heat and Mass Transfer 31 (2004):1165–76. doi:10.1016/j.icheatmasstransfer.2004.08.014.
  • Alejandro, R., M. Andrea, C. Fracisco, and H. Pedro. 2013. Mushroom dehydration in a hybrid solar dryer. Energy Conversion Management 70:31–39. doi:10.1016/j.enconman.2013.01.032.
  • Amer, B. M. A., K. Gottschalk, and M. A. Hossain. 2018. Integrated hybrid solar drying system and its drying kinetics of chamomile. Renewable Energy 121 (2018):539–47. doi:10.1016/j.renene.2018.01.055.
  • Amer, B. M. A., M. A. Hossain, and K. Gottschalk. 2010. Design and performance evaluation of a new hybrid solar dryer for banana. Energy Conversion and Management 51 (2010):813–20. doi:10.1016/j.enconman.2009.11.016.
  • Arslan, D., and M. M. Ozcan. 2011. Drying of tomato slices: Changes in drying kinetics, mineral contents, antioxidant activity and color parameters. CyTA – Journal of Food 9 (3):229–36. doi:10.1080/19476337.2010.522734.
  • Augustine, C., and M. N. Nnabuchi. 2010. Analysis of some meteorological data for some selected cities in the Eastern and Southern zone of Nigeria. African Journal of Environmental Science and Technology 4 (2):92–99.
  • Aviara, N. A., L. N. Onuoha, O. E. Falola, and J. C. Igbeka. 2014. Energy and exergy analyses of native cassava starch drying in a tray Dryer. Energy 73 (2014):809–17. doi:10.1016/j.energy.2014.06.087.
  • Aydin, D., S. E. Ezenwali, M. Y. Alibar, and X. Chen. 2019. Novel modular mixed-mode dryer for enhanced solar energy utilization in agricultural crop drying applications. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects. doi:10.1080/15567036.2019.1663306.
  • Azadbakht, M., V. M. Torshizi, A. Ziaratban, and H. Aghili. 2017. Energy and exergy analysis during eggplant drying in a fluidized bed dryer. Agricultural Engineering International, CIGR E-Journal 19 (3):177–82.
  • Beigi, M. 2016. Energy efficiency and moisture diffusivity of apple slices during convective drying. Food Science Technology 36 (1):145–50. doi:10.1590/1678-457X.0068.
  • Boughali, S., H. Benmoussa, B. Bouchekima, D. Mennouche, H. Bouguettaia, and D. Bechki. 2009. Crop drying by indirect active hybrid solar-electrical dryer in the eastern. Algerian Septentrional Sahara: Solar Energy 83 (2009):2223–32.
  • Castro, M., C. Roman, M. Echegaray, G. Mazza, and R. Rodriguez. 2018. Exergy analyses of onion drying by convection: Influence of dryer parameters on performance. Entropy 20 (310):2–9. doi:10.3390/e20050310.
  • Chowdhury, M. M., B. K. Bala, and M. A. Haque. 2011. Energy and exergy analysis of the solar drying of jackfruit leather. Biosystems Engineering 110:222–29. doi:10.1016/j.biosystemseng.2011.08.011.
  • Correia, A. F. K., A. C. Loro, S. Zanatta, M. H. F. Spoto, and T. M. Vieira. 2015. Effect of temperature, time, and material thickness on the dehydration process of tomato. International Journal of Food Science 2015:1–8. doi:10.1155/2015/970724.
  • Darvishi, H., R. A. Asi, A. Asghari, G. Najafi, and H. A. Gazori. 2013. Mathematical modelling, moisture diffusion, energy consumption and efficiency of thin-layer drying of potato slices. Journal of Food Process Technology 4 (3):215–29. doi:10.4172/2157-7110.1000215.
  • Darvishi, H., M. Azadbakht, and B. Noralahi. 2018. Experimental performance of mushroom fluidized-bed drying: Effect of osmotic pre-treatment and air recirculation. Renewable Energy 120 (2018):201–08. doi:10.1016/j.renene.2017.12.068.
  • El-Ferouali, H., A. Zoukit, I. Salhi, T. El Kilali, S. Doubabi, and N. Abdenouri. 2019. Optimization study and design of a hybrid solar-electric dryer suitable to the developing countries context. Solar for Africa and Renewable Energies Journal 1 (19):35–39.
  • Elhage, H., A. Herez, M. Ramadan, H. Bazzi, and M. Khaled. 2018. An investigation on solar drying: A review with economic and environmental assessment. Energy 3 (4):20–29.
  • Erbay, Z., and F. Icier. 2011. Energy and exergy analysis on drying of olive leaves (oleaeuropaca L.) in tray drier. Journal of Food Process Engineering 34 (2011):2105–23. doi:10.1111/j.1745-4530.2009.00505.x.
  • Ferreira, A. G., A. L. Charbel, R. L. Pires, J. G. Silva, and C. B. Maia. 2007. Experimental analysis of a hybrid dryer. Journal of Thermal Engineering 6 (2007):3–7.
  • Fu, M., C. Roman, M. Echegaray, G. Mazza, and R. Rodriguez. 2018. Exergy analyses of onion drying by convection: Influence of dryer parameters on performance. Entropy 20 (2):2–9.
  • Fudholi, A., R. Yendra, D. F. Basri, M. H. Ruslan, and K. Sopian. 2016. Energy and exergy analysis of hybrid solar drying system. Control Engineering Science 9 (4):215–23. doi:10.12988/ces.2016.512323.
  • Global petrol prices, 2019.Nigeria electricity prices. https://www.globalpetrolprices.com/Nigeria/electricity_prices/. Downloaded 10th December, 2019.
  • Hatami, S., G. Payehaneh, and A. Mehrpanahi. 2019. Energy and exergy analysis of an indirect solar based on a dynamic model. Journal of Cleaner Production, 244, 118809–118837.
  • Hossain, M. Z., M. M. Alam, F. B. Hossain, M. S. Sarker, M. A. Awal, and N. Jahan. 2018. Performance evaluation of a cabinet solar dryer for drying red pepper in Bangladesh. Journal of Agricultural Engineering XLIX:100–09. doi:10.4081/jae.2018.774.
  • Khattab, N. M. 1996. Optimization of hybrid solar dryer. Energy Sources 18 (1996):781–90. doi:10.1080/00908319608908810.
  • Lakshmi, D. V. N., P. Muthukumar, A. Layek, and P. K. Nayak. 2019. Drying kinetics and quality analysis of black turmeric (Curcuma caesia) drying in a mixed mode forced convection solar dryer integrated with thermal energy storage. Renewable Energy 120:23–34. doi:10.1016/j.renene.2017.12.053.
  • Lamrani, B., A. Khouya, and A. Draoui. 2019. Energy and environmental analysis of an indirect solar dryer of wood using TRNSYS software. Solar Energy 183:132–45. doi:10.1016/j.solener.2019.03.014.
  • Lokeswaran, S., and M. Eswaramoorthy. 2013. Experimental studies on a solar drier system with a biomass back-up heater. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 35 (5):467–75. doi:10.1080/15567036.2010.511434.
  • Lopez-Vidana, E. C., L. L. Mendez-Lagunas, and J. Rodriguez-Ramirez. 2013. Efficiency of a hybrid solar-gas dryer. Solar Energy 93 (2013):23–31. doi:10.1016/j.solener.2013.01.027.
  • Minaei, S. C., H. A. Motevali, and A. Arabhosseini. 2014. Energy consumption, thermal utilization efficiency and hypericin content in drying leaves of St. John’s Wort (Hypericum Perforatum). Journal of Energy in South Africa 25 (3):27–35. doi:10.17159/2413-3051/2014/v25i3a2655.
  • Murugavelh, S., B. Anand, K. Midhun, R. Nagarajan, and S. Azariah. 2019. Exergy analysis and kinetic study of tomato waste drying in a mixed mode solar tunnel dryer. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects. doi:10.1080/15567036.2019.1679289.
  • Nazghelichi, T., M. H. Kianmehr, and M. Aghbashlo. 2010. Thermodynamic analysis of fluidized bed drying of carrot cubes. Energy 35 (12):4679–84. doi:10.1016/j.energy.2010.09.036.
  • Ndukwu, M. C., L. Bennamoun, and F. I. Abam. 2018. Experience of solar drying in Africa: Presentation of designs, operations and models. Food Engineering Review 10:211–44. doi:10.1007/s12393-018-9181-2.
  • Ndukwu, M. C., L. Bennamoun, F. I. Abam, A. B. Eke, and D. Ukoha. 2017. Energy and exergy analysis of a solar dryer integrated with sodium sulfate decahydrate and sodium chloride as thermal storage medium. Renewable Energy 113 (2017):1182–92. doi:10.1016/j.renene.2017.06.097.
  • Ndukwu, M. C., M. Simo-Tagne, F. I. Abam, O. S. Onwuka, S. Prince, and L. Bennamoun. 2020. Exergetic sustainability and economic analysis of hybrid solar-biomass dryer integrated with copper tubing as heat exchanger. Heliyon 6:e03401. doi:10.1016/j.heliyon.2020.e03401.
  • Nwakuba, N. R., S. N. Asoegwu, and K. N. Nwaigwe. 2016. Energy consumption of agricultural dryers: An overview. Agricultural Engineering International, CIGR E-Journal 18 (2):119–32.
  • Nwakuba, N. R., O. C. Chukwuezie, G. U. Asonye, and S. N. Asoegwu. 2018. Energy analysis and optimization of thin layer drying conditions of okra. Arid Zone Journal of Engineering Technology and Environment 14 (4):135–54.
  • Nwakuba, N. R., O. C. Chukwuezie, U. G. Asonye, and S. N. Asoegwu. 2020. Influence of process parameters on the energy requirements and dried sliced tomato quality. Engineering Reports 2020:e12123. doi:10.1002/eng2.12123.
  • Okoroigwe, E. C., M. N. Eke, and H. U. Ugwu. 2013. Design and evaluation of combined solar and biomass dryer for small and medium enterprises for developing countries. International Journal of Physical Sciences 8 (25):1341–49.
  • Oyewola, M. O., and A. I. Adeleke 2014. Design and construction of a hybrid dryer with temperature control, utilizing solar and electric energies International Conference of Mechanical Engineering, Energy Technology and Management. 639–46, 10 – 14th May, 2014, Johannesburg, South Africa.
  • Rayaguru, K., and W. Routray. 2012. Mathematical modeling of thin layer drying kinetics of stone apple slices. International Food Research Journal 19 (4):1503–10.
  • Rosen, M. A., I. Dincer, and M. Kanoglu. 2008. Role of exergy in increasing efficiency and sustainability and reducing environmental impact. Energy Policy 36 (2008):128–37. doi:10.1016/j.enpol.2007.09.006.
  • Sajith, K. G., and C. Muraleedharan. 2014. Economic analysis of a hybrid photovoltaic/thermal solar dryer for drying amla. International Journal of Engineering Research and Technology 3 (8):907–10.
  • Sreekumar, A. 2010. Techno-economic analysis of a roof-integrated solar air heating system for drying fruits and vegetables. Energy Conversion and Management 51:2230–38. doi:10.1016/j.enconman.2010.03.017.
  • Ugonna, U. C., M. A. Jolaoso, and A. P. Onwualu. 2015. Tomato value chain in Nigeria: Issues, challenges and strategies. Journal of Scientific Research and Reports 7 (7):501–15. doi:10.9734/JSRR/2015/16921.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.