Personalized displacement ventilation as an energy-efficient solution for airborne disease transmission control in offices

IF 4.7 2区 工程技术 Q1 ENGINEERING, MECHANICAL Frontiers of Mechanical Engineering Pub Date : 2023-03-06 DOI:10.3389/fmech.2023.1148276
Lars La Heij, S. Gkantonas, E. Mastorakos
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Abstract

There is evidence to suggest that airborne droplets play an important role in the transmission of respiratory diseases. The highest risk of exposure to these pathogens is in indoor environments, where airflow control has been recognized as one of the most effective engineering means to combat its spread. However, this can contribute to a significant increase in energy costs, as conventional ventilation is often not designed to remove contaminants efficiently. In this study, Computational Fluid Dynamics simulations were used to analyze how a novel ventilation approach, called Personalized Displacement Ventilation (PerDiVent), can simultaneously reduce both pathogenic airborne transmission and reduce energy costs in an open office. In addition, thermal comfort and noise were investigated to assess the practicality of the concept. PerDiVent was found to reduce the risk of cross infection by a factor of 1.08–2.0 compared to mixing ventilation in the worst and best case scenarios analyzed, and lead to savings in mechanical power of at least 30%. Furthermore, there is great potential to further improve the system and to increase the stated numbers substantially with relatively simple alterations to the design. Tools that can be used to great advantage for such optimization are also proposed in this work. These include a simple integral model and analytical metrics to estimate the reduction in cross-infection risk and energy savings as a function of PerDiVent’s effectiveness in removing contaminants. Finally, the system has a modular and highly flexible arrangement, which makes it suitable for retrofitting purposes in various indoor environments and integration with current ventilation systems. The concept shows great promise for the future, where ventilation is required to create healthier and more sustainable environments.
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个性化置换通风作为办公室空气传播控制的节能解决方案
有证据表明,空气中的飞沫在呼吸道疾病的传播中起着重要作用。接触这些病原体的风险最高的是室内环境,在室内环境中,气流控制被认为是对抗其传播的最有效的工程手段之一。然而,这可能会导致能源成本的显著增加,因为传统的通风往往不是为了有效地去除污染物而设计的。在这项研究中,使用计算流体动力学模拟来分析一种名为个性化置换通风(PerDiVent)的新型通风方法如何在开放式办公室中同时减少致病性空气传播和降低能源成本。此外,还对热舒适性和噪音进行了调查,以评估该概念的实用性。在分析的最坏和最佳情况下,与混合通风相比,PerDiVent可将交叉感染的风险降低1.08-2.0倍,并可节省至少30%的机械功率。此外,通过对设计进行相对简单的修改,进一步改进系统并大幅增加所述数量的潜力很大。在这项工作中,还提出了可以用于这种优化的工具。其中包括一个简单的积分模型和分析指标,以估计交叉感染风险的降低和作为PerDiVent去除污染物有效性函数的能源节约。最后,该系统具有模块化和高度灵活的布置,适合在各种室内环境中进行改造,并与当前的通风系统集成。这一概念显示出对未来的巨大希望,需要通风来创造更健康、更可持续的环境。
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来源期刊
Frontiers of Mechanical Engineering
Frontiers of Mechanical Engineering Engineering-Mechanical Engineering
CiteScore
7.20
自引率
6.70%
发文量
731
期刊介绍: Frontiers of Mechanical Engineering is an international peer-reviewed academic journal sponsored by the Ministry of Education of China. The journal seeks to provide a forum for a broad blend of high-quality academic papers in order to promote rapid communication and exchange between researchers, scientists, and engineers in the field of mechanical engineering. The journal publishes original research articles, review articles and feature articles.
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