颗粒堆积结构对固定床湍流传质过程的影响:基于多尺度策略的RTD和吸附数值研究

IF 3.9 3区 工程技术 Q2 ENGINEERING, CHEMICAL
Qiaona Hu, , , Yingqian Wang, , , Wenbin Li*, , , Zhongli Tang, , and , Donghui Zhang, 
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引用次数: 0

摘要

精确预测和控制固定床的传质过程是化工中固定床精确设计和优化的基础。然而,非均匀颗粒堆积结构引入了湍流扩散和传质速率的非线性特性。因此,经典的多孔介质-计算传质(PM-CMT)模型依赖于经验关联,过于简化了颗粒堆积结构的影响,往往不能准确地模拟传质过程。为了解决这一挑战,本研究提出了一种多尺度策略来数值研究固定床中的湍流传质过程。多尺度策略包括两个步骤:(1)利用最近发展的粒子解析-计算传质(PR-CMT)模型阐明不同管-颗粒直径比(N)和颗粒形状对湍流扩散的影响;(2)从颗粒尺度的PR-CMT模拟中计算基于结构的传质速率系数,并将其纳入基于结构的PM-CMT框架中进行吸附尺度的模拟。该策略的应用充分考虑了粒子堆积结构对传质的非线性影响。结果表明,吸附尺度模拟与实验数据吻合较好,平均相对误差为7.93%,分别比经典PM-CMT模型低38.82%和10.55%。这种多尺度策略为消除湍流扩散和传质速率的不确定性提供了有价值的方法,为固定床的设计和优化提供了更可靠的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Influences of the Particle-Stacking Structure on the Turbulent Mass Transfer Process in Fixed Beds: Numerical Studies on RTD and Adsorption Using a Multiscale Strategy

Influences of the Particle-Stacking Structure on the Turbulent Mass Transfer Process in Fixed Beds: Numerical Studies on RTD and Adsorption Using a Multiscale Strategy

Influences of the Particle-Stacking Structure on the Turbulent Mass Transfer Process in Fixed Beds: Numerical Studies on RTD and Adsorption Using a Multiscale Strategy

Precise prediction and control of the mass transfer process in fixed beds are essential for their exact design and optimization in chemical engineering. However, the nonuniform particle-stacking structure introduces nonlinear characteristics in turbulent diffusion and mass transfer rate. Consequently, classical porous media-computational mass transfer (PM-CMT) models, which rely on empirical correlations and oversimplify the effects of the particle-stacking structure, often fail to accurately simulate mass transfer processes. To address this challenge, this study proposes a multiscale strategy to numerically investigate a turbulent mass transfer process in fixed beds. The multiscale strategy includes two steps: (1) elucidating the effects of different tube-to-particle diameter ratios (N) and particle shapes on turbulent diffusion using the recently developed particle resolved-computational mass transfer (PR-CMT) model; and (2) calculating the structure-based mass transfer rate coefficient from the particle-scale PR-CMT simulations and incorporating them into the structure-based PM-CMT framework for an adsorber-scale simulation. By application of this strategy, the nonlinear effects of particle-stacking structures on mass transfer are fully considered. As a result, the adsorber-scale simulation achieves better agreement with experimental data, with an average relative error of 7.93%, which is 38.82% and 10.55% lower than those of the classical PM-CMT models. This multiscale strategy offers a valuable approach for eliminating uncertainty over turbulent diffusion and mass transfer rates, providing a more reliable foundation for the design and optimization of fixed beds.

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来源期刊
Industrial & Engineering Chemistry Research
Industrial & Engineering Chemistry Research 工程技术-工程:化工
CiteScore
7.40
自引率
7.10%
发文量
1467
审稿时长
2.8 months
期刊介绍: ndustrial & Engineering Chemistry, with variations in title and format, has been published since 1909 by the American Chemical Society. Industrial & Engineering Chemistry Research is a weekly publication that reports industrial and academic research in the broad fields of applied chemistry and chemical engineering with special focus on fundamentals, processes, and products.
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