Development of a Smart Dual-Energy Crop Dryer with Heat Recovery Integration: Zero-Load Thermal Dynamics Test Validation

Authors

  • N. R. Nwakuba Department of Agricultural and Biosystems Engineering, Federal University of Technology, Owerri, Nigeria.
  • N. C. Ezeanya Department of Agricultural and Biosystems Engineering, Federal University of Technology, Owerri, Nigeria.
  • P. C. Obumseli Department of Agricultural and Biosystems Engineering, Federal University of Technology, Owerri, Nigeria.
  • C. C. Egwuonwu Department of Agricultural and Biosystems Engineering, Federal University of Technology, Owerri, Nigeria.
  • G. I. Nwandikom Department of Agricultural and Biosystems Engineering, Federal University of Technology, Owerri, Nigeria.
  • S. O. Alagbaso Department of Food Science and Technology, Federal University of Technology, Owerri, Nigeria.
  • N. E. Njoku Department of Food Science and Technology, Federal University of Technology, Owerri, Nigeria.

DOI:

https://doi.org/10.63746/njtd.v22i5.3818

Keywords:

Hybrid solar dryer, heat-up time, thermal efficiency, photovoltaic energy, energy analysis

Abstract

Innovative drying strategies are essential to the advancement of sustainable postharvest processing. This work presents the development and zero-load thermal characterization test of a smart dual-energy crop dryer integrated with a heat recovery unit. To improve thermal stability and energy efficiency, the dryer incorporates an Arduino-based control unit, solar and electric heating, and heat recovery. According to test data, the solar collector maintained a 38 to 45% thermal gain over ambient conditions and a 40.9% temperature increase in the drying air while reaching temperatures of up to 65°C. It exhibited a remarkable thermal efficiency of 80.76%. The dryer adaptively consumed 74.1% electric and 25.9% solar energy, guaranteeing a steady heat supply during variable solar radiation. A heat-up time of 6.2 to 12 minutes was recorded, with the best performance occurring between 55 °C and 60°C and 1.5 m/s and 2.0 m/s of air velocity. The dryer’s heat-up behaviours were successfully predicted by a fitted quadratic model (R² = 0.9585). The exhaust heat recovery system reduced energy loss and improved the moisture extraction effectiveness by providing low-humidity preheated air. These results demonstrate the dryer's fast response time, energy flexibility, and appropriateness for off-grid crop drying.

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Published

2025-12-31

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