用于去除室内空气中挥发性有机化合物的静电分离器设计的计算分析。

IF 2.1 4区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL Journal of the Air & Waste Management Association Pub Date : 2023-12-01 Epub Date: 2023-11-27 DOI:10.1080/10962247.2023.2265329
Osmo Anttalainen, Elie Lattouf, Paula Vanninen, Hanna Hakulinen, Tapio Kotiaho, Gary Eiceman
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引用次数: 0

摘要

空气中挥发性有机化合物(VOCs)的浓度可以在静电分离器中降低,其中VOCs通过离子分子反应电离,使用电场提取,并在废物流中消除。尽管在没有吸附性过滤器的情况下纯化可能具有优势,但仅在少数研究中探索了这种分离器技术的实施方案。在一种设计中,基于以水合质子作为反应离子的正极性挥发性有机物的电离,去除效率测量为30%至40%。将结果拟合到一维对流扩散模型中,该模型需要出乎意料的高反应离子产生速率来匹配模型和数据。在有限元法模拟(COMSOL)中使用了真实的反应物离子产生速率,并证明低去除效率可能归因于样品流动的不均匀模式以及挥发性有机物与反应物离子的不完全混合。在分析复杂系统(如该模型)时,即使是有限的计算建模也可以优于纯分析方法,并深入了解限制因素或系统瓶颈。启示:在这项工作中,我们应用现代计算方法来了解基于静电和电离挥发性有机化合物(VOC)的空气净化器的性能。Ito等人在2000年代初对此进行了描述。35-37 Ito等人提出的模型是一维的,没有考虑流动的影响。该模型与实验数据相吻合,使用了出乎意料的高反应离子生产率。在我们的多物理有限元模型中,流动模式和流动对电场中离子分布的影响可以更好地解释过滤器的效率和操作。至关重要的是,我们没有关于技术的新实验数据,只是对现有数据集有了新的理解。在此基础上,我们还提出了一个改进纯化方法的计算模型。我们相信,对于那些致力于空气净化技术与VOC去除(对室内空气质量越来越感兴趣)的人来说,我们建模研究的结果应该是有趣的。其他人可能对我们如何应用COMSOL模拟大气压下的气体电离和电场中的离子感兴趣。总的来说,这项工作有助于使用和应用计算建模来理解和改善空气净化系统设计中的性能瓶颈。
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Computational analysis of an electrostatic separator design for removal of volatile organic compounds from indoor air.

Concentrations of volatile organic compounds (VOCs) in air can be reduced in electrostatic separators where VOCs are ionized using ion-molecule reactions, extracted using electric fields, and eliminated in a waste flow. Embodiments for such separator technology have been explored in only a few studies, despite the possible advantage of purification without adsorbent filters. In one design, based on ionization of VOCs in positive polarity with hydrated protons as reactant ions, efficiencies for removal were measured as 30-40% . The results were fitted to a one-dimensional convective diffusion model requiring an unexpectedly high production rate of reactant ions to match both the model and data. A realistic rate of reactant ion production was used in finite element method simulations (COMSOL) and demonstrated that low removal efficiency could be attributed to non-uniform patterns of sample flow and to incomplete mixing of VOCs with reactant ions. In analysis of complex systems, such as this model, even limited computational modeling can outperform a pure analytical approach and bring insights into limiting factors or system bottlenecks.Implications: In this work, we applied modern computational methods to understand the performance of an air purifier based on electrostatics and ionized volatile organic compounds (VOCs). These were described in the publication early 2000s. The model presented was one-dimensional and did not account for the effects of flow. In our multiphysics finite element models, the efficiency and operation of the filter is better explained by the patterns of flow and flow influences on ion distributions in electric fields. In general, this work helps using and applying computational modelling to understand and improve the performance bottlenecks in air purification system designs.

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来源期刊
Journal of the Air & Waste Management Association
Journal of the Air & Waste Management Association ENGINEERING, ENVIRONMENTAL-ENVIRONMENTAL SCIENCES
CiteScore
5.00
自引率
3.70%
发文量
95
审稿时长
3 months
期刊介绍: The Journal of the Air & Waste Management Association (J&AWMA) is one of the oldest continuously published, peer-reviewed, technical environmental journals in the world. First published in 1951 under the name Air Repair, J&AWMA is intended to serve those occupationally involved in air pollution control and waste management through the publication of timely and reliable information.
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