Computational Fluid Dynamics Studies in the Drying of Industrial Clay Brick: The Effect of the Airflow Direction

Morgana V Araújo, A. C. Sousa, M. R. Luiz, Adriano S. Cabral, T. R. B. Pessoa, P. C. Martins, A.M. Vasconcelos da Silva, R. S. Santos, V. B. de Oliveira, A. G. B. de Lima
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引用次数: 1

Abstract

The manufacture of ceramic brick goes through the stages of raw material extraction, clay homogenization, material conformation, drying and firing. Drying is the phase that needs greater care, as it involves removing part of the moisture from the brick, in order to preserve its quality after process. This work aims to predict heat and mass transfer in the drying of ceramic bricks in oven using computational fluid dynamics. Considering the constant thermophysical properties, a transient three-dimensional mathematical model was used to predict mass and energy transfer between the material and air during the process. Drying simulations at temperature of 100°C were performed with the air flow in the frontal direction to the ceramic brick holes and the results were compared with those obtained for the air flow in the perpendicular direction to the brick holes reported in the literature. It was found that the position of the brick in relation to the direction of air flow inside the oven affected directly the drying and heating kinetics, and the distribution of temperature and moisture content inside the brick. The positioning of the holes in the brick parallel to the direction of the air flow resulted in reduction at the drying time and, consequently, in energy savings in the process, more uniform drying, and improvement in the product quality.
工业粘土砖干燥过程的计算流体力学研究:气流方向的影响
陶瓷砖的制作要经过原料提取、粘土均质、物料构象、干燥和烧制等阶段。干燥是需要更加小心的阶段,因为它涉及到从砖中去除部分水分,以保持其加工后的质量。本工作旨在利用计算流体力学方法预测陶瓷砖在烘箱干燥过程中的传热传质。考虑到材料的恒定热物理性质,采用瞬态三维数学模型预测了该过程中材料与空气之间的质量和能量传递。在温度为100℃的条件下,进行了迎面气流对陶瓷砖孔的干燥模拟,并与文献报道的垂直气流对陶瓷砖孔的干燥模拟进行了比较。研究发现,砖的位置与烘箱内气流方向的关系直接影响了砖的干燥和加热动力学,以及砖内温度和含水率的分布。砖上的孔与气流方向平行的定位减少了干燥时间,从而节省了过程中的能源,干燥更均匀,提高了产品质量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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