Submitted:
18 July 2025
Posted:
22 July 2025
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Abstract

Keywords:
1. Introduction
2. Materials and Methods
2.1. Design and operational characteristics of the drying system applied in carrot dehydration.
2.2. Preparation of carrot samples and experimental drying conditions.
2.3. Cyber-physical monitoring and control system applied to carrot dehydration
2.4. Dryer Design and implementation of adaptive fuzzy control in Arduino.
2.4.1. Mamdani-type fuzzy logic model.
2.4.2. Definition of linguistic variables and fuzzy sets.
2.4.3. Implementing the control system in Arduino with eFLL.
2.4.4. Fuzzy system rule base
2.4.5. Real-time control cycle: inference and defuzzification
2.4.6. Advantages of the Mamdani approach in dehydration processes
2.5. Evaluation of dehydration kinetics
3. Results and discussion
3.1. Evaluation of carrot dehydration kinetics.
3.2. Analysis of temperature measurements during the dehydration process
3.3. Analysis of the thermal energy used during the moisture removal process in carrots
3.4. Evaluation of Carrot Drying Rate Using a Cyber-Physical System
3.5. Evaluation of Drying Efficiency in the Rotary Dehydration Equipment
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Thibault, B.; Zeynoddin, M.; Bonakdari, H.; Ratti, C.; Khalloufi, S. Effect of Model Selection Approach Obtained by Machine Learning Tools on Predicting the Volume Reduction of Plant-Based Dehydrated Foods. J. Food Engineering. 2025, 391, 112415. [CrossRef]
- Jimenez-Garcia, J.A.; Aguilar-Torres, D.; Luque-Zuñiga, G.; Camacho-Martínez, J.L.; Jiménez-Ramírez, O.; Vázquez-Medina, R. Evaluation of the Efficiency and Economic Feasibility of an Indirect Solar Dehydrator and Its Comparison with an Affordable Electric Dehydrator. Therm. Sci. Eng. Prog. 2025, 61, 103505. [CrossRef]
- Kominami, Y.; Takase, K.; Ushio, H. Time-Course Analysis of Kobujime Curing of Japanese Flounder (Paralichthys olivaceus): Biochemical Insights into Dehydration Processing of Fish Meat with Kombu. Int. J. Gastron. Food Sci. 2025, 39, 101124. [CrossRef]
- Lordi, A.; Conte, A.; Del Nobile, M.A. Nutritional and Antimicrobial Properties of Tomato By-Products as Affected by Dehydration Temperature. Food Biosci. 2025, 63, 105797. [CrossRef]
- Yalta Chappa, M.; Angeles, W.G.; Quispe-Sanchez, L.; Mori Servan, D.C.; Santillan Gomez, H.; Oliva-Cruz, M.; Barrena Gurbillón, M.Á. Modeling of Drying Kinetics and Chemical Analysis for Optimal Preservation of Pitahaya, Aguaymanto and Pineapple Fruits Using a Parabolic Solar Dehydrator in the Amazon Region - Peru. J. Agric. Food Res. 2025, 19, 101696. [CrossRef]
- Rakariyatham, K.; Boonyapranai, K.; Laokuldilok, T.; Utama-ang, N.; Nutprem, A.; Kaewprasit, K.; Tatongjai, K. Impact of Different Dehydration Methods on Physicochemical and Functional Properties of Guava (Psidium guajava L.) Powder Prepared from White and Pink Pomaces. Appl. Food Res. 2025, 5(1), 100696. [CrossRef]
- Fu, Y.; Ren, Y.; Sun, D.-W. Impacts of Non-Thermal Pretreatments on Banana Slices during Microwave Vacuum Dehydration Using THz-TDS and NIR-HSI Techniques. J. Food Eng. 2025, 394, 112518. [CrossRef]
- Schemminger, J.; Raut, S.; Sturm, B.; Defraeye, T. Mapping the Most Effective Measures to Optimize Carrot Slice Tray Drying Using Physics-Based and Monte Carlo Simulations. Int. J. Thermofluids. 2025, 101221. [CrossRef]
- Malaslı, M.Z.; Akkoyunlu, M.C.; Pekel, E.; Taşova, M.; Dursun, S.K.; Akkoyunlu, M.T. Prediction of Drying Kinetics and Energy Consumption Values of Purple Carrots Dried in a Temperature-Controlled Microwave Dryer by Decision Tree, Random Forest and Ada Boost Approaches. Chemom. Intell. Lab. Syst. 2025, 260, 105352. [CrossRef]
- Thuy, N.M.; Hao, H.V.; Duong, L.T.T.; Giau, T.N.; Minh, V.Q.; Tai, N.V. Foam-Mat Drying of Lucuma Powder: Mathematical and Artificial Modeling of Drying Kinetics, Physicochemical and Microstructural Properties. J. Agric. Food Res. 2025, 19, 101656. [CrossRef]
- Sukunza, X.; Rojcewicz, K.; Martin, A.; Bolaños, M.; Tellabide, M.; Olazar, M.; Dajnowiec, F.; Oksiuta, Z. A Model for Predicting the Performance and Maximizing the Drying Efficiency of an Innovative Fountain Bed Dryer. Particuology. 2025. [CrossRef]
- Kerse, A.Y.; Embiale, D.T.; Gunjo, D.G. Dehydration of Red Chilli Using an Indirect Type Forced Convection Solar Dryer Integrated with Thermal Energy Storage. Int. J. Thermofluids. 2025, 26, 101045. [CrossRef]
- Naniwadekar, M.; Walke, S.; Mandake, M.; Tapre, R.; Patil, K.; Komble, S. A Comprehensive Study of Performance Metrics and Potato Dehydration at Various Slice Thickness Using an IoT-Based Indirect Solar Dryer: An Experimental Approach. Sol. Energy. 2025, 288, 113269. [CrossRef]
- Kidane, H.; Farkas, I.; Buzás, J. Performance Evaluation of Solar Drying Chambers and Drying Kinetics of Apple Slices. Energy Rep. 2025, 13, 4528–4540. [CrossRef]
- Pei, Y.; Fan, L.; Wang, C.; Tian, G.; Meng, X.; Li, Z.; Xu, W. Intelligent Control of Ginger Far-Infrared Radiation and Hot-Air Drying Based on Multi-Sensor Fusion Technology. Food Bioprod. Process. 2025, 149, 415–427. [CrossRef]
- Villa-Medina, J.F.; Porta-García, M.Á.; Gutiérrez, J.; Porta-Gándara, M.Á. Solar Forced Convection Dryer for Agriproducts Monitored by IoT. Internet Things. 2025, 31, 101566. [CrossRef]
- Abreu, D.J.M.d.; Lorenço, M.S.; Machado, G.G.L.; Silva, J.M.; Azevedo, E.C.d.; Carvalho, E.E.N. Influence of Drying Methods on the Post-Harvest Quality of Coffee: Effects on Physicochemical, Sensory, and Microbiological Composition. Foods. 2025, 14, 1463. [CrossRef]
- Ortíz-Yescas, G.; Meléndez-Vázquez, F.; Quezada-Téllez, L.A.; Torres-Mendoza, A.; Morales-Peñaloza, A.; Fernández-Anaya, G.; Macías-Díaz, J.E. A Hybrid PI–Fuzzy Control Scheme for a Drum Drying Process. AppliedMath. 2025, 5, 45. [CrossRef]
- Tabares-Martinez, J.M.; Guzmán-López, A.; Bravo-Sánchez, M.G.; Barranco-Gutierrez, A.I.; Martínez-Nolasco, J.J.; Villaseñor-Ortega, F. Instrumentation and Evaluation of a Sensing System with Signal Conditioning Using Fuzzy Logic for a Rotary Dryer. Technologies. 2025, 13, 83. [CrossRef]
- Abbaspour-Gilandeh, Y.; Zadhossein, S.; Kaveh, M.; Szymanek, M.; Hassannejad, S.; Wojciechowska, K. Drying Time, Energy and Exergy Efficiency Prediction of Corn (Zea mays L.) at a Convective-Infrared-Rotary Dryer: Approach by an Artificial Neural Network. Energies. 2025, 18, 696. [CrossRef]
- Petrescu, M.G.; Burlacu, A.; Isbășoiu, G.D.; Dumitru, T.; Tănase, M. Estimating the Lifetime of Rotary Dryer Flights Based on Experimental Data. Processes. 2024, 12, 993. [CrossRef]
- Coelho, E.G.; Bertarini, P.L.L.; Gomes, M.S.; Amaral, L.R.; Zotarelli, M.F.; Santos, L.D.; Santana, R.C. Physicochemical and Sensory Properties of Arabica Coffee Beans of Arara cv. Dried Using Different Methods. Foods. 2024, 13, 642. [CrossRef]
- Donoso-García, P.; Henríquez-Vargas, L.; González, J.; Díaz, I.; Fuentes, I. A Study for Estimating the Overall Heat Transfer Coefficient in a Pilot-Scale Indirect Rotary Dryer. Processe.s 2024, 12, 357. [CrossRef]
- Ignaczak, A.; Woźniak, Ł.; Marzec, A.; Kowalska, J.; Chobot, M.; Kowalska, H. The Influence of Osmotic Treatment, Edible Coatings Application, and Reduced Pressure on Microwave–Vacuum-Dried Carrot Properties. Molecules. 2025, 30, 1877. [CrossRef]
- Gao, K.; Liu, B.; Wu, B.; Guo, Y.; Song, C.; Nan, S.; Dai, J.; Shen, Y.; Ma, H. A Study on the Effect Mechanism of Pectin Modification on the Carrot Cell Wall’s Texture Formation under Ultrasonic and Infrared Drying. Agriculture. 2024, 14, 803. [CrossRef]
- Vega-Gálvez, A.; Orellana-Palma, P.; Pasten, A.; Uribe, E.; Cortés, D.; Carvajal, M. Mild Temperature Conditions Applied to Carrot (Daucus carota L.) Waste Using Different Drying Methods: Effect on the Kinetics and Some Chemical Parameters. Processes. 2025, 13, 90. [CrossRef]
- Mierzwa, D.; Musielak, G. Microwave and Ultrasound Assisted Rotary Drying of Carrot: Analysis of Process Kinetics and Energy Intensity. Appl. Sci. 2024, 14, 10676. [CrossRef]
- Moura, J.R.R.d.O.; de Morais, B.R.S.; da Silva, J.H.F.; Alves, A.S.S.; Brandão, S.C.R.; Azoubel, P.M. Evaluation of Organic Acids and Ultrasound as Pretreatment in Convective Drying Kinetics and Quality Parameters of Pumpkin. Foods 2024, 13, 2502. [CrossRef]
- Francik, S.; Łapczyńska-Kordon, B.; Hajos, M.; Basista, G.; Zawiślak, A.; Francik, R. Modeling the Drying Process of Onion Slices Using Artificial Neural Networks. Energies 2024, 17, 3199. [CrossRef]
- Bogusz, R.; Nowacka, M.; Gondek, E.; Delman, M.; Szulc, K. Effect of Drying Method on Selected Physical and Functional Properties of Powdered Black Soldier Fly Larvae. Appl. Sci. 2025, 15, 4097. [CrossRef]
- Carrillo Luis, V.; Beristain Rios, D.; Hernández-Flores, O.A.; Romero-Salazar, C.; Sandoval-Torres, S. Mathematical Modeling of Goat Meat Drying Kinetics with Thermal Oscillations. Foods 2024, 13, 3836. [CrossRef]
- Sundarsingh, A.; BhagyaRaj, G.V.S.; Dash, K.K. Modeling and Optimization of Osmotic Dehydration of Wax Apple Slices Using Adaptive Neuro-Fuzzy Inference System. Appl. Food Res. 2023, 3(2), 100316. [CrossRef]
- Dash, K.K.; Sundarsingh, A.; BhagyaRaj, G.V.S.; Pandey, V.K.; Kovács, B.; Mukarram, S.A. Modelling of Ultrasonic Assisted Osmotic Dehydration of Cape Gooseberry Using Adaptive Neuro-Fuzzy Inference System (ANFIS). Ultrason. Sonochem. 2023, 96, 106425. [CrossRef]
- Kang, C.; Zhang, G.; Mu, G.; Guo, H.; Yuan, T.; Zhao, C.; Li, X.; Zhang, Q. Solar-Heat Pump Combined Drying with Phase Change Heat Storage: Multi-Energy Self-Adaptive Control. Renew. Energy. 2024, 230, 120867. [CrossRef]
- Kumar, V.; Devi, M.K. Impact of Different Drying Methods on Sensory and Physicochemical Analysis of Instant Green Bell Pepper Chutney Mix. Meas. Food. 2023, 9, 100077. [CrossRef]
- Song, F.; Zheng, Y.; Li, R.; Li, Z.; Liu, B.; Wu, X. Intelligent Control of Green Tea Fixation with Microwave Processing. J. Food Eng. 2023, 349, 111481. [CrossRef]
- Abioye, A.O.; Hussein, J.B.; Oke, M.O.; Bolarinwa, I.F. Modelling Some Quality Attributes of a Convective Hot-Air Dried Tomato Slices Using ANN and ANFIS Techniques. Meas. Food. 2024, 13, 100140. [CrossRef]
- Baidhe, E.; Clementson, C.L. A Review of the Application of Modeling and Simulation to Drying Systems for Improved Grain and Seed Quality. Comput. Electron. Agric. 2024, 222, 109094. [CrossRef]
- Ait Hmazi, O.; Bagar, H.; Madani, A.; Mrani, I. A Novel Approach for Modelling and Predicting the Drying Kinetics of Couscous Grains Using Artificial Neural Networks. J. Food Compos. Anal. 2024, 132, 106301. [CrossRef]
- El-Mesery, H.S.; Ali, M.; Qenawy, M.; Adelusi, O.A. Application of Artificial Intelligence to Predict Energy Consumption and Thermal Efficiency of Hybrid Convection-Radiation Dryer for Garlic Slices. Eng. Appl. Artif. Intell. 2024, 138, 109338. [CrossRef]
- Rojas Vargas, A.; Pérez García, L.; Sánchez Guillen, C.; AlJaberi, F.Y.; Salman, A.D.; Alardhi, S.M.; Le, P.-C. Performance Evaluation of a Flighted Rotary Dryer for Lateritic Ore in Concurrent Configuration. Heliyon. 2023, 9, e21345. [CrossRef]
- Alshehri, A.A.; Tolba, N.M.; Salama, M.A.; Saleh, M.; Kamel, R.M. Energy Analysis and Quality Characteristics of Flaxseed Oil by Using an Infrared Rotary Dryer. Case Stud. Therm. Eng. 2024, 54, 103988. [CrossRef]
- Susana, I.G.B.; Alit, I.B.; Okariawan, I.D.K. Rice Husk Energy Rotary Dryer Experiment for Improved Solar Drying Thermal Performance on Cherry Coffee. Case Stud. Therm. Eng. 2023, 41, 102616. [CrossRef]
- Nafisah, N.; Syamsiana, I.N.; Putri, R.I.; Kusuma, W.; Sumari, A.D.W. Implementation of Fuzzy Logic Control Algorithm for Temperature Control in Robusta Rotary Dryer Coffee Bean Dryer. MethodsX. 2024, 12, 102580. [CrossRef]
- Li, M.; Liu, M.; Xu, C.; Wang, J.; Yan, J. Thermodynamic and Sensitivity Analyses on Drying Subprocesses of Various Evaporative Dryers: A Comparative Study. Energy. 2023, 284, 128571. [CrossRef]
- Mihret, Y.C.; Hailemesikel, S.T.; Alemu, A.G.; Delele, M.A. Modeling the Drying Kinetics, Performance Evaluation, and Economic Analysis of Rice Drying Using a Rice Husk-Fueled Mixed-Flow Dryer. Energy Conversion and Management: X. 2024, 24, 100774. [CrossRef]
- Yu, M.; Zou, L.; Yu, J. Experimental Investigation on the Drying Characteristics in a Solar Assisted Ejector Enhanced Heat Pump Dryer System. Solar Energy. 2024, 267, 112265. [CrossRef]
- Hamdani, N.; Rizal, T.; Muhammad, Z. Fabrication and testing of hybrid solar-biomass dryer for drying fish. Case Stud. Therm. Eng. 2018, 12, 489–496. [CrossRef]
- Soponpongpipat, N.; Nanetoe, S.; Comsawang, P. Thermal and Torrefaction Characteristics of a Small-Scale Rotating Drum Reactor. Processes. 2020, 8, 489. [CrossRef]
- Yang, G.; Yang, X.; Li, C.; Wei, X.; Lu, Z.; Zhang, C.-a.; Wang, Q.; Wu, X. Numerical Study on the Uniform Distribution of Flow Field of Airflow Dryer. Heliyon. 2024, 10(8), e29439. [CrossRef]
- van Boven, A.P.; Dubbelboer, A.; Janssen, T.J.A.; Schröder, J.; Sewalt, J.J.W.; Kohlus, R.; Schutyser, M.A.I. Investigating the Impact of Air Distribution on Spray Dryer Operability Using CFD Simulations and Pilot-Scale Experiments. Powder Technology, 2024, 440, 119779. [CrossRef]
- Charmongkolpradit, S.; Somboon, T.; Phatchana, R.; Sang-Aroon, W.; Tanwanichkul, B. Influence of drying temperature on anthocyanin and moisture contents in purple waxy corn kernel using a tunnel dryer. Case Stud. Therm. Eng. 2021, 25, 100886. [CrossRef]
- Wang, Y.; Ding, C. Effect of Electro hydrodynamic Drying on Drying Characteristics and Physicochemical Properties of Carrot. Foods, 2023, 12, 4228. [CrossRef]
- Adegbite, S. A.; Asiru, W. B.; Sartas, M.; Tran, T.; Taborda, A. L.; Chapuis, A.; Ojide, M.; Abass, A. Development of a Pilot Scale Energy Efficient Flash Dryer for Cassava Flour. Resources, Environment and Sustainability. 2023, 13, 100117. [CrossRef]










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