[
Abbaspour, G.Y., Jahanbakhshi, A. & Kaveh, M. (2019a). Prediction kinetic, energy, and exergy of quince under hot air dryer using ANNs and ANFIS. Food Science and Nutrition, 8(1), 594-611.
]Search in Google Scholar
[
Abhishek, D., Ramakrishna, K. & Naveen, P. (2019). Experimental investigation and mathematical modeling of convective drying kinetics of white radish. Frontiers in Heat and Mass Transfer (FHMT), 13, pp. 21.
]Search in Google Scholar
[
Abhishek, D., Tarun, P., Ramakrishna, K. & Naveen, P. (2020). Convective hot air-drying kinetics of red beetroot in thin layers. Frontiers in Heat and Mass Transfer (FHMT), 14, pp. 23.
]Search in Google Scholar
[
Adebimpe, F.O., Charles, T.A. & Tunde, A.M. (2021). Modeling of Thin Layer Drying Characteristics of Blanch-Assisted Water Yam (Dioscorea Alata) Slices. Croatian Journal of Food Science and Technology, 13(1), 43-50.
]Search in Google Scholar
[
Adesola, A. & Satimehin, A. (2014). Mathematical Model for Deep Bed Drying of Gelatinized White Yam (Dioscorea rotundata, Poir). International Journal of Energy Engineering, 4(2A), 3pp. 3-39.
]Search in Google Scholar
[
Akoy, E.O. (2014). Experimental characterization and modeling of thin-layer drying of mango slices. International Food Research Journal, 21(5), 1911-1917. https://www.researchgate.net/publication/273061769
]Search in Google Scholar
[
Alibas, I. (2014). Mathematical modeling of microwave dried celery leaves and determination of the effective moisture diffusivities and activation energy. Journal of Food Science and Technology, 34(2), 394-401.
]Search in Google Scholar
[
Behera, G. & Sutar, P.P.A (2018). Comprehensive review of mathematical modeling of paddy parboiling and drying: Effects of modern techniques on process kinetics and rice quality. Trends in Food Science & Technology, 75, 206-230.
]Search in Google Scholar
[
Beigi, M. (2016). Hot air drying of apple slices: dehydration characteristics and quality assessment. Journal of Heat and Mass transfer, 52(8), 1435-1442.
]Search in Google Scholar
[
Bhattacharya, M., Srivastav, P.P. & Mishra, H.N. (2015). Thin-layer modeling of convective and microwave-convective drying of oyster mushroom (Pleurotus ostreatus). Journal of Food Science Technology, 52(4), 2013-2022.
]Search in Google Scholar
[
Chineze, G., Okeke, B.E., Eje, P.C. & Eze, I. (2020). Drying Characteristics of Yam Varieties: A Comparative Analysis. Agricultural Engineering, 45(1), 20–37.
]Search in Google Scholar
[
Correia, A.F.K., Loro, A.C., Zanatta, S., Spoto, M.H.F. & Vieira, T.M.F.S. (2015). Effect of temperature, time and material thickness on the dehydration process of tomato. International Journal of Food Science, pp. 970724.
]Search in Google Scholar
[
Dan, H., Pei, Y., Xiaohong, T., Lei, L. & Bengt, S. (2021). Application of infrared radiation in the drying of food products. Trends in Food Science & Technology, 110, 765–777.
]Search in Google Scholar
[
Demiray, E. & Tulek, Y. (2012). Thin-layer drying of tomato (Lycopersicum esculentum Mill. cv. Rio Grande) slices in a convective hot air dryer. Journal of Heat and Mass transfer, 48(5), 841–847.
]Search in Google Scholar
[
Egbe, E.W. (2022). Effect of Temperature on Dehydration Kinetics of Pre-Treated and Untreated Yam (Dioscorea spp) Slices. Saudi Journal of Engineering and Technology, 7(1), 1-10.
]Search in Google Scholar
[
Fakhreddin, S. (2020). Recent Applications and Potential of Infrared Dryer Systems for Drying Various Agricultural Products: A Review. International Journal of Fruit Science, 20(3), 586-602.
]Search in Google Scholar
[
Fakhreddin, S. (2021). Recent applications of heat pump dryer for drying of fruit crops: A Review. International Journal of Fruit Science, 21, 546–555.
]Search in Google Scholar
[
Fasina, O., Tyler, B., Pickard, M., Zheng, G.H. & Wang, N. (2001). Effect of infrared heating on the properties of legume seeds. International Journal of Food Science and Technology, 36(1), 79-90.
]Search in Google Scholar
[
John, O.O., Clinton, E.O., Abiola J. A., Oladayo A., Abiola F. O., Nana E. G. & Adeniyi, T. O. (2020). Drying characteristics of yamslices (Dioscorear otundata) in a convective hotairdryer: application of ANFIS in the prediction of drying kinetics. Helyon, 6, pp. e03555.
]Search in Google Scholar
[
Kai, N.S., Ai Mei, L., Fan, Z., Kiran, T., Jian, G.Z., Ji, H.H. & Zhao, J.W. (2019). Microstructural, Textural, Sensory Properties and Quality of Wheat–Yam Composite Flour Noodles. Foods, 8(10), pp. 519.
]Search in Google Scholar
[
Kartik, S., Ramandeep, K., Satish, K., Ramesh, K.S., Surabhi, S., Subhash, V.P.& Vikas, K. (2023). Saponins: A concise review on food related aspects, applications and health implications. Food Chemistry Advances, 2, pp. 100191.
]Search in Google Scholar
[
Kaveh, M., Jahanbakhshi, A., Abbaspour G.Y., Taghinezhad, E. & Moghimi, M.B.F. (2018). The effect of ultrasound pre-treatment on quality, drying, and thermodynamic attributes of almond kernel under convective dryer using ANNs and ANFIS network. Journal of Food processing engineering, 41, 123-134.
]Search in Google Scholar
[
Keneni, Y.G., Hvoslef-Eide, A.K. & Marchetti, J.M. (2019). Mathematical modelling of the drying kinetics of Jatropha curcas L. seeds. Industrial crops and products, 132, 12-20.
]Search in Google Scholar
[
Kien, P.V., Tan, N.T., Nghia, P.H., Tinh, V. N., Duc, L.A. & Hay, N. (2024). Heat and mass transfer in infrared assisted heat pump drying of purple yam. Agricultural Engineering, 28(1), 7 1-84.
]Search in Google Scholar
[
Koua, K., Fassinou, W., Gbaha, P. & Toure, S. (2009). Mathematical modelling of the thin layer solar drying of banana, mango and cassava. Energy, 34, 1594-1602.
]Search in Google Scholar
[
Le, A.D., Hay, N. & Kien, P.V. (2022). Mathematical model of thin layer drying of ganoderma lucidum by radio frequency assisted heat pump drying. Frontiers in Heat and Mass Transfer (FHMT), 18(44), 1-7.
]Search in Google Scholar
[
Le, A.D., Kien, P.V., Tan, N.T., Son, D.T., Nhanh, V.N. & Ngoc, X. N. (2023). Heat and mass transfer in drying of carrot by radio frequency assisted heat pump drying. Frontiers in Heat and Mass Transfer (FHMT), 20, pp. 25.
]Search in Google Scholar
[
Linlin, L., Min, Z. & Bhesh, B. (2019). Influence of drying methods on some physicochemical, functional and pasting properties of Chinese yam flour. LWT - Food Science and Technology, 111, 182-189.
]Search in Google Scholar
[
Liu, Z., Bia, J., Wang, S., Meng, J., Wang, H., Yu, X., Gao, Z. & Xiao, H. (2019). Prediction of energy and exergy of mushroom slices drying in hot air impingement dryer by an artificial neural network. Drying Technology, 38(15), 1959-1970.
]Search in Google Scholar
[
Manuel, C., María, L.M.C., Luis, P.V., Lucía, H., Juan, F.G.M. & Sebastián, S. (2019). Drying kinetics and effective water diffusivities in olive stone and olive-tree pruning. Renewable Energy, 132, 911-920.
]Search in Google Scholar
[
Midilli, A. & Kucuk, H. (2003). Mathematical modelling of thin layer drying of pistachio by using solar energy. Energy Conversion and Management, 44(7), 1111-1122.
]Search in Google Scholar
[
Mostafa, K.Md., Rahmat, A.Md., Mohammad, Rezaul, I.S. & Shakti, C.M. (2020). Thin-layer drying kinetics of yam slices, physicochemical, and functional attributes of yam flour. Food Process Engineering, 2020, pp. e13448.
]Search in Google Scholar
[
Motevali, A., Saeid, M., Ahmad, B., Barat, G. & Hosain, D. (2016). Energy analyses and drying kinetics of chamomile leaves in microwave-convective dryer. Journal of the Saudi Society of Agricultural Sciences, 15(2), 179-187.
]Search in Google Scholar
[
Nidhal, B.K. (2018). Effect of the variability of heat and mass transfer coefficients on 3D unsaturated porous medium drying. Frontiers in Heat and Mass Transfer (FHMT), 10, pp. 28, 1-7.
]Search in Google Scholar
[
Nurdi, S., John, S.M., Saka, S. & Yoshiharu, F. (2021). Variation in the Physical and Functional Properties of Yam (Dioscorea spp.) Flour Produced by Different Processing Techniques. Foods, 10(6), pp. 1341.
]Search in Google Scholar
[
Olatoye, K.K. & Arueya, G.L. (2019). Nutrient and phytochemical composition of flour made from selected cultivars of aerial yam (Dioscorea bulbifera) in Nigeria. Journal of Food Composition and Analysis, 79, 23-27.
]Search in Google Scholar
[
Omari, A., Behroozi K.N. & Sharifian, F. (2018). Drying kinetics and artificial neural network modeling of the mushroom drying process in a microwave-hot air dryer. Journal of Food Processing Engineering, 41(7), pp. e12849.
]Search in Google Scholar
[
Ononogbo, C. & Nwakuba, N.R., Nwaji, G.N., Nwufo, O.C., Nwosu, E.C., Okoronkwo, C.A., Igbokwe, J.O., Anyanwu, E.E. (2022). Thermal efficiency and drying Behaviour of Yam slices in a dryer driven by the waste heat of exhaust gases. Scientific African, 17, pp. (e01310) 1-11.
]Search in Google Scholar
[
Onwude, D.I., Hashim, N., Abdan, K., Janius, R. & Chen, G. (2019). The effectiveness of combined infrared and hot-air drying strategies for sweet potato. Journal of Food Engineering, 241, 75-87.
]Search in Google Scholar
[
Qu, F., Zhu, X., Ai, Z, Ai, Y., Qiu, F. & Ni, D. (2019). Effect of different drying methods on the sensory quality and chemical components of black tea. LWT - Food Science and Technology, 99, 112-118.
]Search in Google Scholar
[
Rastogi, N.K. (2012). Recent trends and developments in infrared heating in food processing, Critical Reviews in Food Science and Nutrition, 52, 737-760.
]Search in Google Scholar
[
Royen, M.J., Noori, A.W. & Haydary, J. (2020). Experimental Study and Mathematical Modeling of Convective Thin-Layer Drying of Apple Slices. Processes, 8, pp.1562.
]Search in Google Scholar
[
Salam, A., Aboud Ammar, B.A.A., Al-HiIphy, R. S., Lee, Y.C. & Francesco, C. (2019). A Comprehensive Review on Infrared Heating Applications in Food Processing. Molecules, 24(22), pp. 4125.
]Search in Google Scholar
[
Soner, S. & Fatih, A. (2020). Experimental investigation of drying kinetics of apple with hot air, microwave and ultrasonic power. Sadhana, 45, 94-104.
]Search in Google Scholar
[
Srikanth, K.S., Sharanagat, V.S., Kumar, Y., Bhadra, R., Singh, L., Nema, P.K. & Kumar, V. (2019). Convective drying and quality attributes of elephant foot yam (Amorphophallus paeoniifolius). LWT - Food Science and Technology, 99, 8-16.
]Search in Google Scholar
[
Uwem, E.I., Innocent, O.O. & Benjamin, R.E. (2018). Kinetic Models for Drying Techniques—Food Materials. Advances in Chemical Engineering and Science, 8(2), 27-48.
]Search in Google Scholar
[
Waheed, M.A. & Komolafe C.A. (2019). Temperatures dependent drying kinetics of cocoa beans varieties in air-ventilated oven. Frontier in Heat and Mass Transfer (FHMT), 12, pp. 8.
]Search in Google Scholar
[
Wu, X.F., Zhang, M. & Bhandari, B. (2019). A novel infrared freeze drying (IRFD) technology to lower the energy consumption and keep the quality of Cordyceps militarist. Innovative Food Science and Emerging Technologies, 54(4), 34-42.
]Search in Google Scholar
[
Zi, L.L., Long X., Magdalena, Z., Zhongli, P., Li Z.D., Jing, S.Z.L.G., Shan, Y.W., Zhi, A.Z. & Hong, W.X. (2022). Improvement of drying efficiency and quality attributes of blueberries using innovative far-infrared radiation heating assisted pulsed vacuum drying (FIR-PVD). Innovative Food Science and Emerging Technologies, 77, pp. 102948, 2022.
]Search in Google Scholar