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采用喷雾系统对污染物进行消毒:一种计算多物理场框架。

Fomite disinfection using spray systems: A computational multi-physics framework.

机构信息

Shiraz University, Shiraz 71936-16548, Iran.

Eindhoven University of Technology, De Zaale, 5612 AJ Eindhoven, the Netherlands.

出版信息

Environ Int. 2024 Sep;191:108908. doi: 10.1016/j.envint.2024.108908. Epub 2024 Jul 25.

Abstract

Disinfecting inanimate objects or materials carrying infectious agents, i.e., fomites, using spray systems reduces healthcare-associated infections in medical settings and community-acquired infections in non-medical environments. However, an accurate prediction of such systems is challenging as these systems embrace multi-physics phenomena depending on several parameters. Therefore, this paper presents a computational modeling-based multi-physics framework to evaluate the performance and effectiveness of spray systems employed in disinfecting fomites with non-porous hydrophilic surfaces. The framework includes four key phases: (i) atomizing the liquid disinfectant jet into the disinfectant droplets; (ii) interactions between disinfectant droplets and the surrounding air; (iii) impingements created by the disinfectant droplets on the fomite surface; (iv) interactions between the disinfectant depositions and pathogens causing fomite disinfection. The accuracy of the framework is evaluated using two sets of experimental data on the reduction of viable Bacillus atrophaeus spores over an 1800-second period. The results show that the framework can predict fomite disinfection via spray systems, with the deviations from the measured data being 2.73% and 2.38%. By presenting a detailed perception of the dynamics involved in fomite disinfection, this framework has the potential to improve public health practices and lead to the development of more effective and targeted disinfection strategies in diverse settings.

摘要

使用喷雾系统对携带感染因子的无生命物体或材料(即污染物)进行消毒,可以降低医疗机构中的医源性感染和非医疗环境中的社区获得性感染。然而,由于这些系统涉及多个参数的多物理现象,因此准确预测这些系统具有挑战性。因此,本文提出了一种基于计算建模的多物理框架,用于评估用于对非多孔亲水性表面的污染物进行消毒的喷雾系统的性能和效果。该框架包括四个关键阶段:(i)将液体消毒剂射流雾化成消毒剂液滴;(ii)消毒剂液滴与周围空气的相互作用;(iii)消毒剂液滴对污染物表面造成的冲击;(iv)消毒剂沉积物与导致污染物消毒的病原体之间的相互作用。该框架的准确性通过两组在 1800 秒内减少活芽孢杆菌孢子的实验数据进行评估。结果表明,该框架可以通过喷雾系统预测污染物的消毒效果,其与实测数据的偏差分别为 2.73%和 2.38%。通过详细了解污染物消毒过程中的动力学,该框架有可能改善公共卫生实践,并在不同环境中开发出更有效和有针对性的消毒策略。

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