Modeling and Experimental Study on Drying Characteristics of Corn Particles with Hot Air in Downward Moving Bed

Author:

Wang Hairui1,Zhang Shuangming2,Fan Haodong2,Zhang Man2,Hu Nan1,Yang Hairui2

Affiliation:

1. Changchun Institute of Technology, Changchun 130012, China

2. State Key Laboratory of Power Systems, Department of Energy and Power Engineering, Tsinghua University, Beijing 100084, China

Abstract

With regard to drying fresh grain prior to storage, the drying tower with a downward moving bed with hot air is often used, which always has high energy consumption during operation. To optimize the operation, according to the actual operating parameters of a corn drying tower with hot air, a heat balance model was established, and the heat transfer between the hot air and corn flow in a downward moving bed was analyzed. Since the downward moving time is short, the heat absorbed by corn significantly depends on the heat transfer coefficient, mainly the convective heat transfer, between the hot air and corn surface. To determine the convective heat transfer coefficient, a hot air drying experimental system for corn grains was established, and the effects of hot air temperature and wind speed on the central temperature and moisture content of corn grains were analyzed. Utilizing the heat balance model, the convective heat transfer coefficients between corn particles and hot air were calculated. The total convective heat transfer coefficients are in the range of 39.4–53.8 W/m2 · K. With an average value of 46.7 W/m2 · K, drying energy efficiencies in different drying zones in the drying tower were calculated, and the accuracy of the model was verified by the operation data. Due to the high inlet temperature of hot air, the maximum energy efficiency of the first zone is 60.15%, whereas when the temperature of hot air in the second drying tower is 140 °C, the energy efficiency is only 41.97%. Therefore, under the premise of ensuring the drying rate, the temperature of hot air of the second zone should be appropriately reduced to improve the whole drying energy efficiency.

Funder

Development of Flexible Low Carbon Power Generation Technology for High Proportion Consumption of New Energy

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Mechanical Engineering,Condensed Matter Physics

Reference41 articles.

1. Thermal analysis of hot air drying of chicken manure pellets in a modified portable horizontal rotary dryer;Krissada;Heat Mass Transf.,2022

2. Numerical study of airflow regimes and instabilities produced by the swirl generation chamber in counter-current spray dryers;Borja;Chem. Eng. Res. Des.,2021

3. Study on novel nano mahua methyl ester powered DI diesel engine preheated with a thermoelectric waste heat recovery system;Manimaran;Energy Sources Part A Recovery Util. Environ. Eff.,2021

4. Role of Drying Technology in The Promotion of Global Drying R&D;Jangam;Dry. Technol.,2012

5. Kong, N.H. (2013). Simulation of Hot Air Drying on Corn Kernel Based on Three Dimension Solid Model, Northeastern University.

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