Effect of Air Flow Rate Variation on the Performance of an Indirect Solar Dryer Using Flat and Perforated Absorber Plates

محتوى المقالة الرئيسي

Ghadeer Qasim Fadhil
Sarmad A. Abdul Hussein

الملخص

An experimental analysis was conducted to investigate the effect of varying the inlet airflow rate into the drying chamber on the performance of an indirect solar dryer using a forced convection system under the climatic conditions of Baghdad, Iraq, at a latitude of 33.3°N. The dryer performance was tested at three airflow rates (0.0113, 0.0169, and 0.0226) m³/s, using a conventional flat absorber plate and a perforated plate with circular holes of diameter 3 mm. Apricots were dried in all experiments conducted in June 2024. The results showed that the perforated plate significantly enhanced the thermal efficiency of the solar collector compared with that of the flat plate. The perforated plate improved the heat exchange by disturbing the thermal boundary layer and improving airflow. The results also indicated that a low airflow rate (0.0113 m³/s) achieved the best drying efficiency, reducing the apricot moisture content from 80% to 42% for the perforated plate and 47% for the flat plate within 8 h, with maximum drying efficiencies of 28.44% and 22.22%, respectively. Although a higher airflow rate (0.0226 m³/s) improved the thermal efficiency of the collector, it was less effective for enhancing the drying process. The results of this study demonstrated that operating an indirect solar dryer with a perforated absorbent plate at a low airflow rate accelerates the removal of moisture from the product while maintaining its quality. This makes the system suitable for practical agricultural applications in hot and dry environments, where drying speed and efficiency are critical for reducing postharvest losses and increasing product storage life.

تفاصيل المقالة

القسم

Articles

كيفية الاقتباس

"Effect of Air Flow Rate Variation on the Performance of an Indirect Solar Dryer Using Flat and Perforated Absorber Plates" (2025) مجلة الهندسة, 31(8), ص 200–226. doi:10.31026/j.eng.2025.08.12.

المراجع

Akpinar, E.K., 2010. Drying of mint leaves in a solar dryer and under open sun: Modelling, performance analyses. Energy Conversion and Management, 51(12), pp. 2407-2418. https://doi.org/10.1016/j.enconman.2010.05.005.

Al-Juamily, K.E.J., Khalifa, A.J.N., and Yassen, T.A., 2007. Testing of the performance of a fruit and vegetable solar drying system in Iraq. Desalination, 209(1-3), pp. 163-170. https://doi.org/10.1016/j.desal.2007.04.026.

Al-Neama, M.A.J., 2018. Performance enhancement of solar air collectors applied for drying processes. PhD. Thesis, Faculty of Mechanical Engineering, Szent Stván University, Gödöllő, Hungary.‏

Arunkumar, P.M., Balaji, N., and Madhankumar S., 2024. Performance analysis of indirect solar dryer with natural heat energy retention substances for drying red chilli. Sustainable Energy Technologies and Assessments, 64, P. 103706. https://doi.org/10.1016/j.seta.2024.103706.

Babar, O.A., Tarafdar, A., Malakar, S., Arora, V.K., and Nema, P.K., 2020. Design and performance evaluation of a passive flat plate collector solar dryer for agricultural products. Journal of Food Process Engineering. http://dx.doi.org/10.1111/jfpe.13484.

Bhavsar, H.P., and Patel, C.M. 2021. Performance investigation of natural and forced convection cabinet solar dryer for ginger drying. In Materials Today: Proceedings, 47(Part 17), pp. 6128-6133. https://doi.org/10.1016/j.matpr.2021.05.050.

El-Sebaey, M.S., 2024. Proposing novel approach for indirect solar dryer integrated with active-fan and passive-chimney: An experimental and analytical investigation. Energy, 304, P. 132215. https://doi.org/10.1016/j.energy.2024.132215.

Ennissioui, J., Benghoulam, E.l. M., and El Rhafiki, T., 2023. Experimental study of a natural convection indirect solar dryer. Heliyon, 9(11), pp. e21299. https://doi.org/10.1016/j.heliyon.2023.e21299.

Essalhi, H., Tadili, R., and Bargach, M.N., 2017. Conception of a solar air collector for an indirect solar dryer. pear drying test. Energy Procedia, 141, pp. 29-33. https://doi.org/10.1016/j.egypro.2017.11.114.

Farhan, A.A., and Sahi, H.A., 2017. Energy analysis of solarc with perforated absorber plate. Journal of Engineering, 23(9), pp. 89-102. https://doi.org/10.31026/j.eng.2017.09.07.

Fernandes, L., Fernandes, J.R., and Tavares, P.B., 2022. Design of a friendly solar food dryer for domestic over-production. Solar, 2(4), pp. 495–508.‏ http://dx.doi.org/10.3390/solar2040029.

Gilago, M.C., and Chandramohan, V.P., 2022. Performance evaluation of natural and forced convection indirect type solar dryers during drying ivy gourd: An experimental study. Renewable Energy, 182, pp. 934-945. https://doi.org/10.1016/j.renene.2021.11.038.

Hegde, V.N., Hosur, V.S., Rathod, S.K., Harsoor, P.A., and Narayana, K.B., 2015. Design, fabrication and performance evaluation of solar dryer for banana. Energy, Sustainability and Society, 5(1), pp. 1-12. http://dx.doi.org/10.1186/s13705-015-0052-x.

Jadallah, A.A., Alsaadi, M.K., and Hussien, S.A., 2020. The hybrid (PVT) double-pass system with a mixed-mode solar dryer for drying banana. Engineering and Technology Journal, 38(08), pp. 1214-1225. https://doi.org/10.30684/etj.v38i8A.535.

Jassim, N.A., and Shbailat, S.J., 2018. Energy and exergy analysis of dual channel solar air collector with different absorber plates geometry. Journal of Engineering, 24(4), pp. 19-40. https://doi.org/10.31026/j.eng.2018.04.02.

Khan, Y., Kasi, J.K., and Kasi, A.K., 2018. Dehydration of vegetables by using indirect solar dryer. Scientific Journal of Mehmet Akif Ersoy University, 1(1), pp. 22-28.

Khidhir, D.K., 2023. Manufacturing and evaluating of indirect solar dryers: A case study for the kurdistan region of Iraq. Aro-The Scientific Journal of Koya University, 11(2), pp. 89-94. http://dx.doi.org/10.14500/aro.11127.

Kilanko, O., Ilori, T.A., Leramo, R.O., Babalola, P.O., Eluwa, S.E., Onyenma, F.A., Ameh, N.I., Onwordi, P.N., Aworinde, A.K., and Fajobi, M.A., 2019. Design and Performance Evaluation of a Solar Dryer. Journal of Physics: Conference Series, 1378(3), P. 032001. http://dx.doi.org/10.1088/1742-6596/1378/3/032001.

Kokate, Y.D., Baviskar, P.R., Baviskar, K.P., Deshmukh, P.S., Chaudhari, Y.R., and Amrutkar, K.P., 2023. Design, fabrication and performance analysis of indirect solar dryer. Materials Today: Proceedings, 77(Part 3), pp. 748-753. https://doi.org/10.1016/j.matpr.2022.11.439.

Krabch, H., Tadili, R., Idrissi, A., and Bargach, M., 2022. Indirect solar dryer with a single compartment for food drying. Application to the drying of the pear. Solar Energy, 240(1), pp. 131-139. https://doi.org/10.1016/j.solener.2022.05.025.

Kumar, A., Singh, K.U., Singh, M.K., Kushwaha, A.K.S., Kumar, A., and Mahato, S., 2022. Design and fabrication of solar dryer system for food preservation of vegetables or fruit. Journal of Food Quality,(1), pp. 1-14. http://dx.doi.org/10.1155/2022/6564933.

Lingayat, A.B., Chandramohan, V.P., Raju, V.R.K., and Meda, V., 2020. A review on indirect type solar dryers for agricultural crops – Dryer setup, its performance, energy storage and important highlights. Applied Energy, 258, P. 114005. https://doi.org/10.1016/j.apenergy.2019.114005.

Mugi, V.R., Gilago, M.C., and Chandramohan, V.P., 2022. Energy and exergy investigation of indirect solar dryer under natural and forced convection while drying muskmelon slices. Energy Nexus, 8, P. 100153. https://doi.org/10.1016/j.nexus.2022.100153.

Nabnean, S., and Nimnuan, P., 2020. Experimental performance of direct forced convection household solar dryer for drying banana. Case Studies in Thermal Engineering, 22, P. 100787. https://doi.org/10.1016/j.csite.2020.100787.

Natarajan, S.K., Suraparaju, S.K., Muthuvairavan, G., Elangovan, E., and Samykano, M., 2024. Experimental analysis and development of novel drying kinetics model for drying grapes in a double slope solar dryer. Renewable Energy, 236, P. 121508. https://doi.org/10.1016/j.renene.2024.121508.

Ndukwu, M.C., Ibeh, M., Okon, B.B., Akpan, G., Kalu, C.A., Ekop, I., Nwachukwu, C.C., Abam, F.I., Lamrani, B.,Tagne, M.S., Ben, A.E., Mbanasor, J., and Bennamoun, L., 2023. Progressive review of solar drying studies of agricultural products with exergoeconomics and econo-market participation aspect. Cleaner Environmental Systems, 9, P. 100120. https://doi.org/10.1016/j.cesys.2023.100120.

Nhut, L.M., Hien, H.T.T., and Lam, N.X., 2020. Development of solar air collector with crimped baffles for drying applications. International Journal of Engineering Research, 9(03). http://dx.doi.org/10.17577/IJERTV9IS030156.

Rezaei, M.H., Sefid, M., Almutairi, K., Mostafaeipour, A., Ao, H.X., Dehshiri, S.J.H., Dehshiri, S.S.H., Chowdhury, S., and Techato, K., 2022. Investigating performance of a new design of forced convection solar dryer. Sustainable Energy Technologies and Assessments, 50, P. 101863. https://doi.org/10.1016/j.seta.2021.101863.

Salhi, M., Chaatouf, D., Bria, A., Amraqui, S., and Mezrhab, A., 2024. Experimental assessment of a new prototype solar dryer integrated with a photovoltaic system. Energy for Sustainable Development, 81, P. 101518. https://doi.org/10.1016/j.esd.2024.101518.

Sileshi, S.T., Hassen, A.A., and Adem, K.D., 2022., Simulation of mixed-mode solar dryer with vertical air distribution channel. Heliyon, 8(11), P. e11898. https://doi.org/10.1016/j.heliyon.2022.e11898.

Srithanyakorn, S., Bunchan, S., Krittacom, B., and Luampon, R., 2023. Comparison of mixed-mode forced-convection solar dryer with and without stainless wire mesh in solar collector. Clean Energy, 7(6), pp. 1316–1329. https://doi.org/10.1093/ce/zkad058.

Ssemwanga, M., Makule, E., and Kayondo, S.I., 2020. Performance analysis of an improved solar dryer integrated with multiple metallic solar concentrators for drying fruits. Solar Energy, 204(1), pp. 419-428. https://doi.org/10.1016/j.solener.2020.04.065.

Tagne, M.S., Etala, H.D.T., Tagne, A.T., Ndukwu, M.C., and El Marouani, M., 2022. Energy, environmental and economic analyses of an indirect cocoa bean solar dryer: A comparison between natural and forced convections. Renewable Energy, 187, pp. 1154-1172. https://doi.org/10.1016/j.renene.2022.02.015.

Vijayan, S., Arjunan, T.V., and Kumar, A., 2020. Exergo-environmental analysis of an indirect forced convection solar dryer for drying bitter gourd slices. Renewable Energy, 146, pp. 2210-2223. https://doi.org/10.1016/j.renene.2019.08.066.

Zeeshan, M., Tufail, I., Khan, S., Khan, I., Ayuob, S., Mohamed, A., and Chauhdary, S.T., 2024. Novel design and performance evaluation of an indirectly forced convection desiccant integrated solar dryer for drying tomatoes in Pakistan. Heliyon, 10(8), P. e29284. https://doi.org/10.1016/j.heliyon.2024.e29284.

المؤلفات المشابهة

يمكنك أيضاً إبدأ بحثاً متقدماً عن المشابهات لهذا المؤلَّف.