高速液固环形反应器的流动特性与混合特性

Wugeng Liang , Yong Jin , Zhiqing Yu , Zhanwen Wang , Jingxu Zhu , Jing Chen
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引用次数: 13

摘要

实验在高速条件下,在环长14.45 m、内径90 mm的液固环形反应器中进行。分别研究了沿回路下行、上行和弯曲段压力梯度的变化规律。利用所建立的模型可以预测下、上两段的压力梯度。轴向相位保持率沿回路均匀分布。在测试的操作范围内,反应器内的液体和固体速度几乎相同。用示踪剂注入响应法测定了液、固两相的轴向分散系数,固、液相的轴向分散系数基本一致。这些特性使液固体系表现为准均匀体系,使高速环路反应器易于规模化。一种常用的轴向色散相关性大大低估了轴向色散系数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Flow characteristics and mixing properties in a high velocity liquid—solid loop reactor

Experiments were performed in liquid—solid loop reactor with a loop length of 14.45 m and an inner diameter of 90 mm under high velocity conditions. The variations in pressure gradient along the downflow, upflow and bend sections of the loop were investigated respectively. Pressure gradient in the downflow and upflow sections can be predicted with the model developed. The axial phase holdups are uniformly distributed along the loop. The liquid and solids velocities in the reactor are almost the same in the operating range tested. The axial dispersion coefficients of the liquid and solid phases were measured with the tracer injection response method and the dispersion coefficients of the solid and liquid phases are nearly the same. These characteristics make the liquid—solid system behave as a pseudo-homogeneous sytem and make the high velocity loop reactor easy to scale up. A commonly used correlation for axial dispersion substantially underestimated the axial dispersion coefficients.

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