TY - JOUR T1 - Thermal performance of drying mango slices using a baffled-type hybrid solar dryer with exhaust hot air recirculation AU - Mohanty, Ramesh Chandra AU - Behera, Debashree Debadatta AU - Das, Shiv Sankar AU - Satankar, Raj Kumar PY - 2025 DA - October Y2 - 2024 DO - 10.14744/thermal.0000988 JF - Journal of Thermal Engineering PB - Yildiz Technical University WT - DergiPark SN - 2148-7847 SP - 1483 EP - 1496 VL - 11 IS - 5 LA - en AB - In this research, a hybrid solar dryer has been designed for day and night operation through forced convection for drying mango slices and preparation of bread toast. As studied from the literature, enough research is not done on the use of recirculation of exhaust hot air and baffle in a solar dryer. The thermal and economic performance of the dryer has been assessed by calculating collector efficiency, drying efficiency, drying rate, payback period and cost-benefit ratio. It is found that the maximum collector efficiency is 74.1% and 66.96% with and without the use of exhaust hot air recirculation. Performance parameters such as drying rate (0.95 kg/hr), drying efficiency (32.89%), payback period (1.4394 years), and cost-benefit ratio (2.08) have been evaluated. An effective drying effectis producedby using an electric coil for night operation of dryer. An increase in the solar radiation increases the temperature of air inside the collector, thereby increasing the collector efficiency, drying efficiency and drying rate. The coefficient of determination for outlet collector temperature during consecutive three days is estimated above 95%, thus signifying a higher order of fit. Performing an uncertainty analysis of measurement, the uncertainty error is calculated below 10% exhibiting a reliable experimental result. Solar drying is considered as a sustainable food preservation method without negatively impacting the environment and finds wide applications in the fruit and food processing industries, domestic purposes etc. KW - Solar Drying KW - Forced Convection KW - Development of Hybrid Solar Dryer KW - Experimental Investigation KW - Performance Analysis KW - Uncertainty Analysis CR - REFERENCES CR - [1] Şirin C, Selimefendigil F, .ztop HF. Performance analysis and identification of an indirect photovoltaic thermal dryer with aluminum oxide nano-embedded thermal energy storage modification. Sustainability 2023;15:2422. [CrossRef] CR - [2] Veeramanipriya E, Sundari AU. Performance evaluation of hybrid photovoltaic thermal (PVT) solar dryer for drying of cassava. Solar Energy 2021;215:240–51. [CrossRef] CR - [3] Singh P, Gaur MK. Environmental and economic analysis of novel hybrid active greenhouse solar dryer with evacuated tube solar collector. Sustainable Energy Technol Assess 2021;47:101428. 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[CrossRef] UR - https://doi.org/10.14744/thermal.0000988 L1 - https://dergipark.org.tr/en/download/article-file/5349772 ER -