This study presents the design, fabrication, and performance evaluation of a solar dryer capsule cabinet equipped with a parabola reflector, developed to enhance drying efficiency through the reflection of sunlight onto both the upper and lower surfaces of the product. Conventional solar drying exposes only the upper surface, resulting in uneven heating and the need for manual turning. The proposed system integrates a parabolic reflector and IoT-based monitoring sensors (BH1750 light sensor and DHT22 temperature-humidity sensor) to optimize heat distribution and record real-time environmental parameters. Dry experiments were conducted using Citrus hystrix DC. (Makrut lime) peels under natural sunlight from 9: 00 a. m. to 5: 00 p. m. The moisture loss achieved with the proposed dryer (P-DSD) was 45. 66%, compared with 6. 79% for direct solar drying (DSD). The drying rate increased from 3. 05 g h−1 (DSD) to 20. 50 g h−1 (P-DSD), while the specific energy consumption (SEC) decreased from 3519. 75 kWh kg−1 to 523. 67 kWh kg−1, representing an 85. 13% energy reduction. Economic analysis showed a system cost of 1384 and a return on investment of 30. 0%. These results demonstrate that the proposed solar dryer capsule cabinet with a parabola reflector offers a low-cost, eco-friendly, and high-efficiency solution for drying agricultural and herbal products, significantly shortening the drying time and improving product quality.
Nramat et al. (Sun,) studied this question.