纳米吸收剂吸收CO2的气泡行为和传质的三维模拟

Lirong Li, Y. Kang
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引用次数: 0

摘要

纳米颗粒对气液体系的CO2吸收性能有影响。所涉及的增强机制已受到广泛关注。本文阐明了CO2气泡的行为和纳米粒子的运动特征。采用等效取代法,将含有纳米颗粒的液体视为物理性质发生变化的连续项,即纳米流体。因此,采用流体体积(VOF)方法可以很好地预测纳米流体中的气泡行为和传质系数。研究发现,Al2O3纳米颗粒可以显著提高CO2吸收气液体系的传质系数。随着纳米颗粒体积浓度的增加,表面更新频率急剧增加。采用离散粒子法(DPM)跟踪纳米粒子的运动。通过这种方式,气泡的变形和纳米颗粒的运动被很好地捕捉到。结果表明,气-液-纳米颗粒体系中传质系数的增强不仅与颗粒的布朗运动有关,还与纳米颗粒在液体场中推导出的湍流有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Three-Dimensional Simulation of Bubble Behavior and Mass Transfer for CO2 Absorption in Nanoabsorbents
CO2 absorption performance in gas-liquid system is affected by nanoparticles. The enhancement mechanisms involved have been extensively paid attention. The CO2 gas bubble behaviors and the characteristics of the nanoparticle motion have been clarified in the present study. The equivalent substitution method is used to regard the liquid with nanoparticles as a continuous term with changed physical properties, that is, nanofluid. Therefore, the volume-of-fluid (VOF) method is employed to well predict the gas bubble behaviors and mass transfer coefficient in nanofluid. It is found that the mass transfer coefficient in the gas-liquid system for CO2 absorption can be significantly enhanced by Al2O3 nanoparticles. With the increase of nanoparticles volume concentration, the surface renewal frequency increases dramatically. The discrete-particle-method (DPM) is adopted to track the motion of nanoparticles. In this way, the deformation of the bubbles and the motion of the nanoparticle are well captured. It is concluded that the enhanced mass transfer coefficient in gas-liquid-nanoparticle system is not only related to the Brownian motion of the particles, but also related to the nanoparticle deduced turbulence in the liquid field.
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