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Article

Development of a PLC/IoT Control System with Real-Time Concentration Monitoring for the Osmotic Dehydration of Fruits

by
Manuel Sanchez-Chero
*,
William R. Miranda-Zamora
,
Lesly C. Flores-Mendoza
and
José Sanchez-Chero
Grupo de Investigación, Desarrollo e Innovación en Industrias Alimentarias-GIDIIA, Industry; Universidad Nacional de Frontera, Sullana 20103, Peru
*
Author to whom correspondence should be addressed.
Automation 2025, 6(4), 68; https://doi.org/10.3390/automation6040068
Submission received: 25 August 2025 / Revised: 31 October 2025 / Accepted: 3 November 2025 / Published: 4 November 2025

Abstract

Osmotic dehydration (OD) is an effective pre-treatment for fruit preservation, but conventional processes often lack precision due to manual control of critical variables. This work reports the design and validation of an automated OD system integrating a programmable logic controller (PLC), human–machine interface (HMI), and IoT-enabled sensors for real-time monitoring of syrup concentration and process temperature. Mango (Mangifera indica) cubes were treated under a 23 factorial design with sucrose concentrations of 45 and 50 °Brix, immersion times of 120 and 180 min, and temperatures of 30 and 40 °C. Validation demonstrated that the IoT hydrometer achieved strong agreement with reference devices (R2 = 0.985, RMSE = 0.36 °Brix), while the PLC-integrated tank sensor also demonstrate improved performance over existing calibrated thermometer (R2 = 0.992, MAE = 0.20 °C). ANOVA indicated that concentration, temperature, and time significantly affected water loss and weight reduction (p < 0.01), with temperature being the dominant factor. Water loss ranged from 18.62% to 39.15% and weight reduction from 9.48% to 34.47%, while maximum solid gain reached 9.31% at 50 °Brix and 40 °C for 180 min, with stabilization consistent with case hardening. Drying kinetics were best described by the Page model (R2 > 0.97). The findings highlight the effectiveness of the system for precise monitoring and optimization of OD processes.
Keywords: osmotic dehydration; process automation; syrup concentration control; kinetic modeling osmotic dehydration; process automation; syrup concentration control; kinetic modeling

Share and Cite

MDPI and ACS Style

Sanchez-Chero, M.; Miranda-Zamora, W.R.; Flores-Mendoza, L.C.; Sanchez-Chero, J. Development of a PLC/IoT Control System with Real-Time Concentration Monitoring for the Osmotic Dehydration of Fruits. Automation 2025, 6, 68. https://doi.org/10.3390/automation6040068

AMA Style

Sanchez-Chero M, Miranda-Zamora WR, Flores-Mendoza LC, Sanchez-Chero J. Development of a PLC/IoT Control System with Real-Time Concentration Monitoring for the Osmotic Dehydration of Fruits. Automation. 2025; 6(4):68. https://doi.org/10.3390/automation6040068

Chicago/Turabian Style

Sanchez-Chero, Manuel, William R. Miranda-Zamora, Lesly C. Flores-Mendoza, and José Sanchez-Chero. 2025. "Development of a PLC/IoT Control System with Real-Time Concentration Monitoring for the Osmotic Dehydration of Fruits" Automation 6, no. 4: 68. https://doi.org/10.3390/automation6040068

APA Style

Sanchez-Chero, M., Miranda-Zamora, W. R., Flores-Mendoza, L. C., & Sanchez-Chero, J. (2025). Development of a PLC/IoT Control System with Real-Time Concentration Monitoring for the Osmotic Dehydration of Fruits. Automation, 6(4), 68. https://doi.org/10.3390/automation6040068

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