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April 19, 20260 citationsOpen Access

Drying Performance of Monkey Cola: Comparative Analysis of Ripe and Unripe Samples at Different Thicknesses and Temperatures

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AOA. F. OgunnaikeOOO. A. OyedeleOAO. C. Adeosun

Key Points

  • The study aims to investigate how slice thickness and drying temperature impact the drying kinetics of monkey cola.
  • Experimental design with ripe and unripe monkey cola samples
  • Samples prepared in three thicknesses (T1, T2, T3)
  • Dried at 40 °C and 50 °C using a tray dryer
  • Moisture content monitored over time with drying rate curves generated
  • Regression models fitted to drying data for accuracy
  • Thinner slices (T1) had higher drying rates than thicker slices (T3)
  • Increasing temperature significantly improved drying efficiency across all thicknesses
  • Ripe monkey cola dried faster than unripe due to softer tissue structure
  • Unripe samples showed slower drying due to denser tissue and higher bound water content
  • Regression models showed high accuracy (R² > 0.85) in predicting drying behavior

Abstract

Aims: This study examined the influence of slice thickness and drying temperature on the drying kinetics of ripe and unripe monkey cola (Cola lepidota) under hot‑air drying conditions. Study Design:  An experimental design was used for this study. Place and Duration of Study: Department of Agricultural and Environmental Engineering, Ado Ekiti, Ekiti State, Nigeria, December 2024 and October 2025. Methodology: Samples were prepared in three thicknesses (T1, T2, T3) and dried at 40 °C and 50 °C using a tray dryer. Moisture content reduction was monitored over time, and drying rate curves were generated to evaluate the effects of thickness and temperature. Results: Results showed that thinner slices (T1) consistently exhibited higher drying rates, while thicker slices (T3) retained moisture longer. Increasing temperature from 40 °C to 50 °C significantly enhanced drying efficiency across all thicknesses. Ripe monkey cola dried faster than unripe samples, attributed to softer tissue structure and higher free water content, whereas unripe samples showed slower drying due to denser tissue and higher bound water content. Regression models (polynomial and exponential) fitted the drying data with high accuracy (R² > 0.85), confirming predictable drying behavior. Conclusion: These findings highlight the importance of optimizing slice thickness and drying temperature to achieve efficient moisture removal while preserving product quality.

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Cite This Study

Ogunnaike et al. (2026) studied this question.

synapsesocial.com/papers/69e4702d010ef96374d8d6c6https://doi.org/10.56557/ajorib/2026/v8i1132
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