Simulation and experimental validation of heat and mass transfer during hot air drying of wheat grain piles using CFD-DEM under constant-variable temperature

Authors

  • Pengxiao Chen School of Food and Strategic Reserves, Henan University of Technology, Zhengzhou 450001, China
  • Jin Chen School of Food and Strategic Reserves, Henan University of Technology, Zhengzhou 450001, China
  • Mengke Fan School of Food and Strategic Reserves, Henan University of Technology, Zhengzhou 450001, China
  • Xiaowan Wang School of Food and Strategic Reserves, Henan University of Technology, Zhengzhou 450001, China
  • Ruobing Lyu School of Food and Strategic Reserves, Henan University of Technology, Zhengzhou 450001, China
  • Ye Liu School of Food and Strategic Reserves, Henan University of Technology, Zhengzhou 450001, China
  • Wenxue Zhu School of Food and Strategic Reserves, Henan University of Technology, Zhengzhou 450001, China
  • Jianzhang Wu School of Food and Strategic Reserves, Henan University of Technology, Zhengzhou 450001, China

Keywords:

wheat grain drying, constant and variable temperature drying, hot air drying, mass and heat transfer, drying process optimization

Abstract

Achieving rapid and uniform drying of wheat grain piles remains a major challenge because of the complex heat and mass transfer processes within the grain bulk. This study employs a hybrid discrete-continuous 3D model of a wheat grain heap to assess the effects of constant and variable temperature drying (46°C, 56°C, 46°C/16%/56°C, and 56°C/16%/46°C) on mass and heat transfer, as well as drying uniformity. Model validation against experimental data confirmed accuracy, with maximum relative errors below 15.6% for temperature and 4.63% for moisture content. For both constant and variable-temperature drying, the grain pile temperature exhibited a two-stage evolution, with a rapid increase during the initial stage followed by gradual temperature homogenization in the later stage as moisture migration became dominant. The early-stage temperature notably influences temperature and moisture uniformity. Results indicate that higher temperatures improve free water removal but slow its conversion to bound water. Prolonged high temperatures lead to epidermis contraction, internal deformation, and cracking. The findings suggest that variable temperature drying enhances overall drying efficiency and quality. These findings provide theoretical support and practical guidance for optimizing hot-air drying strategies and improving the energy efficiency and product quality of wheat grain drying.

Keywords: wheat grain drying, constant and variable temperature drying, hot air drying, mass and heat transfer, drying process
optimization
DOI: 10.25165/j.ijabe.20261904.10040

Citation: Chen P X, Chen J, Fan M K, Wang X W, Lyu R, Liu Y, et al. Simulation and experimental validation of heat and
mass transfer during hot air drying of wheat grain piles using CFD-DEM under constant-variable temperature. Int J Agric &
Biol Eng, 2026; 19(4): 315–327.

Author Biographies

Mengke Fan, School of Food and Strategic Reserves, Henan University of Technology, Zhengzhou 450001, China

School of Food and Strategic Reserves

Xiaowan Wang, School of Food and Strategic Reserves, Henan University of Technology, Zhengzhou 450001, China

School of Food and Strategic Reserves

References

[1] Zhu Y D, Shurlknight K L, Chen X X, Sang S M. Identification and pharmacokinetics of novel alkylresorcinol metabolites in human urine, new candidate biomarkers for whole-grain wheat and rye intake. The Journal of Nutrition, 2014; 144(2): 114–122.

[2] Sangha J S, Meyer B, Ruan Y, Cuthbertet R D, Knox R, Xiao G. A pin-based probe for electronic moisture meters to determine moisture content in a single wheat kernel. Plant Methods, 2024; 20: 89.

[3] Cetiner B, Acar O, Kahraman K, Sanal T, Koksel H. An investigation on the effect of heat-moisture treatment on baking quality of wheat by using response surface methodology. Journal of Cereal Science, 2017; 74: 103–111.

[4] Liao Y X, Liu Y X, Zhang W D, Dong H, Yang L Q, Zhang J J, et al. Effects of variable-temperature drying on the qualities and sweet-substance profile of Zizyphus jujuba Mill. cv. Junzao. Food Chem: X, 2024; 22: 101361.

[5] Hossein Nia R, Nalbandi H, Seyedlou S, Salteh S A. Utility of heating pattern with variable air temperature in drying; effects on drying time, energy consumption, and product quality. Food Sci Technol Int. 2023; 31(4). doi: 10.1177/10820132231206435

[6] Deng Z H, Li M, Xing T Y, Zhang J Y, Wang Y F, Zhang Y, et al. A literature research on the drying quality of agricultural products with using solar drying technologies. Solar energy, 2021; 229: 69–83.

[7] Kumar C, Karim M A, Joardder M U H. Intermittent drying of food products: A critical review. Journal of Food Engineering, 2014; 121: 48–57.

[8] Li B, Zeng Z H, Zhang X F, Zhang Y. Study on the variable-temperature drying process of corn drying in an industrial corn-drying system equipped with a self-adaptive control heat exchanger. Applied Sciences, 2021; 11(6): 2772.

[9] Wang H C, Che G, Wan L, Tang H. Effects of drying approaches combined with variable temperature and tempering on the physicochemical quality of rice. Drying Technology, 2023; 41(7): 1199–1213.

[10] Zhang L Z, Jiang L, Xu Z C, Zhang X J, Fan Y B, Adnouni M, et al. Optimization of a variable-temperature heat pump drying process of shiitake mushrooms using response surface methodology. Renewable Energy, 2022; 198: 1267–1278.

[11] Xu X G, Zhao T Y, Ma J N, Song Q, Wei Q, Sun W H. Application of two-stage variable temperature drying in hot air-drying of paddy rice. Foods, 2022; 11(6): 888.

[12] Li L L, Bao Y F, Guo F Z, Chen J L, Zhao M Y, Cao W W, et al. Effect of constant and variable temperature drying processes on drying characteristics, quality, and volatile profile of rose petals in infrared-assisted spouted bed drying. Journal of Food Science, 2024; 89(3): 1387–1402.

[13] Azmir J, Hou Q, Yu A. CFD-DEM simulation of drying of food grains with particle shrinkage. Powder Technology, 2019; 343: 792–802.

[14] Babu A K, Kumaresan G, Aroul Raj V A, Vishal Surya S B. Numerical simulation of heat pump thin layer drying of amaranth leaves. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 2023; 45(3): 9383–9395.

[15] de Munck M J A, Peters E A J F, Kuipers J A M. CFD-DEM fluidized bed drying study using a coarse-graining technique. Industrial & Engineering Chemistry Research, 2023; 62(48): 20911–20920.

[16] Zheng D Q, Li L, Chen G X, Zhou Y, Liu K. Numerical study of low-temperature ventilation drying in a wheat grain silo considering non-uniform porosity distribution. Applied Sciences, 2024; 14(1): 96.

[17] Chen P X, Fan M K, Zhu W X, Liu Y, Jiang M M, Wang Y K, et al. Numerical simulation of hot air drying of wheat grain piles based on CFD-DEM and experimental research. Drying Technology, 2024; 42(2): 199–211.

[18] Cao C W, Zhu W X. Computer simulation of agricultural product drying processes. Beijing: China Agriculture Press. 2001. 257p. (in Chinese)

[19] Wei S, Xie W J, Zheng Z H, Yang D Y. Numerical and experimental studies on drying behavior of radio frequency assisted convective drying for thin-layer corn kernels. Computers and Electronics in Agriculture, 2021; 191: 106520.

[20] Wei S, Xie W J, Zheng Z H, Ren L Y, Yang D Y. Numerical study on drying uniformity of bulk corn kernels during radio frequency-assisted hot air drying. Biosystems Engineering, 2023; 227: 117–129.

[21] Ge M M, Chen G X, Liu C S, Zheng D Q, Liu W L. Effect of vertical pressure on temperature field distribution of bulk paddy grain pile. Applied Sciences, 2022; 12(20): 10392.

[22] Wu Z H, Li K, Gao M, Zhao L J, Zhang Z J. Three dimensional body-fitted mathematical model of rice kernel in hot air drying process. Transactions of the CSAM, 2018; 49(1): 329–334. (in Chinese)

[23] Zecchi B, Gerla P. Breakage and mass transfer models during drying of rough rice. Drying Technology, 2007; 25(9): 1405–1410.

[24] Prachayawarakorn S. Drying technologies for foods: fundamentals and applications. Drying Technology, 2019; 37(6): 801.

[25] Jin X, Wang C, Bi Q Y, Liu Z Y, Zhang Z T. Study on drying characteristics of corn based on 3D model. International Journal of Food Engineering, 2020; 16(8). doi:10.1515/ijfe-2019-0320

[26] Li L L, Pan H, Chen J L, Cao W W, Liu W C, Duan X, et al. Infrared-assisted spouted bed drying of Chinese yam cubes: effect of constant and variable temperature drying processes on drying behavior, uniformity, and quality attributes. Journal of the Science of Food and Agriculture, 2023; 103(6): 2815–2823.

[27] Pei Y S, Li Z F, Song C F, Li J, Xu W X, Zhu G Y. Analysis and modelling of temperature and moisture gradient for ginger slices in hot air drying. Journal of Food Engineering, 2022; 323: 111009.

[28] Cheng J H, Zhou X Q, Zhang Y R. Research progress on moisture migration changes and models during grain drying process. Grain and Feed Industry, 2011(7): 13–16. (in Chinese)

[29] Jiang M X, Wu P, Xing H H, Li L, Jia C, Chen S, et al. Water migration and diffusion mechanism in the wheat drying. Drying Technology, 2021; 39(6): 738–751.

[30] Wang X Q, Zhong J H, Han M, Li F, Fan X Y, Liu Y H. Drying characteristics and moisture migration of ultrasound enhanced heat pump drying on carrot. Heat and Mass Transfer, 2023; 59(12): 2255–2266.

[31] Ghosh P K, Jayas D S, Smith E A, Gruwel M L H, White N D G, Zhilkin P A. Mathematical modelling of wheat kernel drying with input from moisture movement studies using magnetic resonance imaging (MRI), part I: model development and comparison with MRI observations. Biosystems Engineering, 2008; 100(3): 389–400.

[32] Hande A R, Swami S B, Thakor N J. Effect of drying methods and packaging materials on quality parameters of stored kokum rind. Int J Agric & Biol Eng, 2014; 7(4): 114–126.

[33] Polat A, Taskin O, Izli N. Intermittent and continuous infrared drying of sweet potatoes. Heat and Mass Transfer, 2022; 58(10): 1709–1721.

[34] Zeng Q Y. Analysis of drying characteristics and energy consumption of sludge at room temperature. Master’s dissertation. Guangzhou: South China University of Technology, 2017. (in Chinese)

[35] Zhang L Z, Jiang L, Adnouni M, Li S, Zhang X J. Numerical study on the variable-temperature drying and rehydration of shiitake. Foods, 2024; 13(21): 3356.

[36] Kowalski S J, Pawłowski A. Energy consumption and quality aspect by intermittent drying. Chemical Engineering and Processing: Process Intensification, 2011; 50(4): 384–390.

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Published

2026-09-03

How to Cite

(1)
Chen, P.; Chen, J.; Fan, M.; Wang, X.; Lyu, R.; Liu, Y.; Zhu, W.; Wu, J. Simulation and Experimental Validation of Heat and Mass Transfer During Hot Air Drying of Wheat Grain Piles Using CFD-DEM under Constant-Variable Temperature. Int J Agric & Biol Eng 2026, 19, 315-327.

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Section

Agro-product and Food Processing Systems

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