亚微米粒子在静电捕获过程中的再夹带机理

IF 4.3 2区 工程技术 Q2 ENGINEERING, CHEMICAL Chemical Engineering Science Pub Date : 2025-04-01 Epub Date: 2025-02-23 DOI:10.1016/j.ces.2025.121417
Yong Zhu , Zhenpeng Huang , Shanlong Tao , Jitong Chen , Xiaoyong Yang , Wei Yin , Wenfeng Shangguan , Zhishan Bai
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引用次数: 0

摘要

本文首次在实验室层面建立了可控制的板-板结构电场,其板长与板间距之比可达65,可捕获大部分目标粒子,用于研究亚微米粒子的再夹带机制。采用计算流体力学和响应面法分析了多物理场的分布特征以及各参数对颗粒再夹带效应的影响。实验结果表明,颗粒浓度逐渐降低,颗粒运动经历了三个不同的阶段:加速阶段、直线运动阶段和再夹带阶段。气速是影响微粒再夹带最显著的因素,而充电器电流的影响相对较小。建立了一个可靠的理论收集长度回归模型,并根据实验数据进行了验证,为捕获大多数亚微米颗粒所需的收集长度提供了可靠的预测值
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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Re-entrainment mechanism of submicron particles during electrostatic capture process
In this work, a controllable electric field with plate-plate structure, whose ratio between plate length and plate-plate spacing can reach up to be 65 for mostly possible capture of targeted particles, is firstly established in laboratory level for investigating the re-entrainment mechanism of submicron particles. Computational fluid dynamic and response surface method are employed to analyze the distribution characteristics of multiple physical fields and the influence of various parameters on particle re-entrainment effect. Experimental results indicate that particle concentration decreases gradually, which follows three distinct stages of particle motion: the acceleration stage, linear motion stage, and re-entrainment stage. Gas velocity is identified as the most significant factor affecting particle re-entrainment, while charger current has a relatively minor effect. A reliable regression model for theoretical collection length has been developed and validated against experimental data, providing credible predictive values for the required collection length to capture most submicron particles.
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来源期刊
Chemical Engineering Science
Chemical Engineering Science 工程技术-工程:化工
CiteScore
7.50
自引率
8.50%
发文量
1025
审稿时长
50 days
期刊介绍: Chemical engineering enables the transformation of natural resources and energy into useful products for society. It draws on and applies natural sciences, mathematics and economics, and has developed fundamental engineering science that underpins the discipline. Chemical Engineering Science (CES) has been publishing papers on the fundamentals of chemical engineering since 1951. CES is the platform where the most significant advances in the discipline have ever since been published. Chemical Engineering Science has accompanied and sustained chemical engineering through its development into the vibrant and broad scientific discipline it is today.
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