Designing the structure and determining the mode characteristics of the grain dryer based on thermosiphons
DOI:
https://doi.org/10.15587/1729-4061.2022.253977Keywords:
thermosiphons, grain drying, specific energy consumption, air parameters, heat transfer coefficients, environmental friendlinessAbstract
Energy consumption, environmental issues, product quality are actual problems related to grain drying processes. It is necessary to pay attention to designing new structures of energy-efficient grain dryers.
A structure of an energy-efficient grain dryer based on thermosiphons has been designed; its energy consumption is 3.5...6.8 MJ/kg depending on surface temperature and air flow rate. The dryer includes a layer heater, a drying chamber, a heat generator, a heater, a noria for loading the product, and fans. The structural features of the dryer allow the drying process to be carried out without direct contact between the combustion gases and the product.
The efficiency of the designed structure was evaluated for such indicators as heat transfer coefficients to the grain flow, specific energy costs, moisture content, the relative humidity of the air leaving the dryer.
The values of coefficients of the heat transfer to the grain flow vary within 36...58 W/m2K at speeds 2.5...8 mm/s. An increase in the flow rate by 3.2 times leads to an increase in the heat transfer coefficient by 1.6 times.
The moisture content of the air at the outlet of the dryer reaches 60 g/kg, while the relative humidity is 90 %, which is several times higher than the parameters for convective mine grain dryers.
Energy consumption for drying at the surface temperature of thermosiphons Ts=142.9 °C for various grain flow rates is close to a minimum. The energy consumption is lower than in existing convective dryers.
21 % is spent on heating grain in the dryer; 54 % ‒ on moisture evaporation; and 23.6 % are losses. If we consider the energy spent on moisture evaporation usable, the efficiency of convective dryers is only 40 % while that of dryers based on thermosiphons is 54.1 %.
It is expected that the designed structure could be a solution for small farmers in the post-harvest drying process
References
- Tracking Industry 2020. Available at: https://www.iea.org/reports/tracking-industry-2020
- Ononogbo, C., Nwufo, O. C., Nwakuba, N. R., Okoronkwo, C. A., Igbokwe, J. O., Nwadinobi, P. C., Anyanwu, E. E. (2021). Energy parameters of corn drying in a hot air dryer powered by exhaust gas waste heat: An optimization case study of the food-energy nexus. Energy Nexus, 4, 100029. doi: https://doi.org/10.1016/j.nexus.2021.100029
- Beigi, M. (2016). Energy efficiency and moisture diffusivity of apple slices during convective drying. Food Science and Technology, 36 (1), 145–150. doi: https://doi.org/10.1590/1678-457x.0068
- Wang, H., Mustaffar, A., Phan, A. N., Zivkovic, V., Reay, D., Law, R., Boodhoo, K. (2017). A review of process intensification applied to solids handling. Chemical Engineering and Processing: Process Intensification, 118, 78–107. doi: https://doi.org/10.1016/j.cep.2017.04.007
- Amer, B. M. A., Hossain, M. A., Gottschalk, K. (2010). Design and performance evaluation of a new hybrid solar dryer for banana. Energy Conversion and Management, 51 (4), 813–820. doi: https://doi.org/10.1016/j.enconman.2009.11.016
- Ononogbo, C. (2020). Equipment Sizing and Method for the Application of Exhaust Gas Waste Heat to Food Crops Drying Using a Hot Air Tray Dryer. Indian Journal of Science and Technology, 13 (5), 502–518. doi: https://doi.org/10.17485/ijst/2020/v13i05/145593
- Alit, I. B., Susana, I. G. B., Mara, I. M. (2021). Thermal characteristics of the dryer with rice husk double furnace - heat exchanger for smallholder scale drying. Case Studies in Thermal Engineering, 28, 101565. doi: https://doi.org/10.1016/j.csite.2021.101565
- Burdo, O., Bezbakh, I., Kepin, N., Zykov, A., Yarovyi, I., Gavrilov, A. et. al. (2019). Studying the operation of innovative equipment for thermomechanical treatment and dehydration of food raw materials. Eastern-European Journal of Enterprise Technologies, 5 (11 (101)), 24–32. doi: https://doi.org/10.15587/1729-4061.2019.178937
- Chan, C. W., Siqueiros, E., Ling-Chin, J., Royapoor, M., Roskilly, A. P. (2015). Heat utilisation technologies: A critical review of heat pipes. Renewable and Sustainable Energy Reviews, 50, 615–627. doi: https://doi.org/10.1016/j.rser.2015.05.028
- Carvajal-Mariscal, I., De León-Ruíz, J. E., Belman-Flores, J. M., Salazar-Huerta, A. (2022). Experimental evaluation of a thermosyphon-based waste-heat recovery and reintegration device: A case study on low-temperature process heat from a microbrewery plant. Sustainable Energy Technologies and Assessments, 49, 101760. doi: https://doi.org/10.1016/j.seta.2021.101760
- Mathew, A. A., Thangavel, V. (2021). A novel thermal energy storage integrated evacuated tube heat pipe solar dryer for agricultural products: Performance and economic evaluation. Renewable Energy, 179, 1674–1693. doi: https://doi.org/10.1016/j.renene.2021.07.029
- Mustaffar, A., Phan, A., Boodhoo, K. (2018). Hybrid heat pipe screw dryer: A novel, continuous and highly energy-efficient drying technology. Chemical Engineering and Processing - Process Intensification, 128, 199–215. doi: https://doi.org/10.1016/j.cep.2018.04.035
- Gaponiuk, I. (2017). Improvement of grain drying technology through the rapid grain heating and heat recuperation of wet gases. Ukrainian Journal of Food Science, 5 (1). doi: https://doi.org/10.24263/2310-1008-2017-5-1-7
- Tiusanen, M. J., Jokiniemi, H. T., Hautala, M. I. (2013). Grain dryer temperature optimisation with simulation and a test dryer. IFAC Proceedings Volumes, 46 (18), 12–17. doi: https://doi.org/10.3182/20130828-2-sf-3019.00025
- Ropelewska, E. (2018). Effect of grinding on thermal properties of wheat grain. Journal of Consumer Protection and Food Safety, 14 (2), 139–146. doi: https://doi.org/10.1007/s00003-018-1200-y
- GOST ISO 712-2015. Cereals and cereal products. Determination of moisture content. Reference method. Available at: https://docs.cntd.ru/document/1200124060
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Copyright (c) 2022 Igor Bezbah, Aleksandr Zykov, Vsevolod Mordynskyi, Petr Osadchuk, Lyudmila Phylipova, Valentyna Bandura, Igor Yarovyi, Elena Marenchenko
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