Literature DB >> 32218907

Investigating a safe ventilation rate for the prevention of indoor SARS transmission: An attempt based on a simulation approach.

Yi Jiang1, Bin Zhao1, Xiaofeng Li1, Xudong Yang1, Zhiqin Zhang1, Yufeng Zhang1.   

Abstract

This paper identifies the "safe ventilation rate" for eliminating airborne viral infection and preventing cross-infection of severe acute respiratory syndrome (SARS) in a hospital-based setting. We used simulation approaches to reproduce three actual cases where groups of hospital occupants reported to be either infected or not infected when SARS patients were hospitalized in nearby rooms. Simulations using both computational fluid dynamics (CFD) and multi-zone models were carried out to understand the dilution level of SARS virus-laden aerosols during these scenarios. We also conducted a series of measurements to validate the simulations. The ventilation rates (dilution level) for infection and non-infection were determined based on these scenarios. The safe ventilation rate for eliminating airborne viral infection is to dilute the air emitted from a SARS patient by 10000 times with clean air. Dilution at lower volumes, specifically 1000 times, is insufficient for protecting non-infected people from SARS exposure and the risk of infection is very high. This study provides a methodology for investigating the necessary ventilation rate from an engineering viewpoint. © Tsinghua University Press and Springer Berlin Heidelberg 2009.

Entities:  

Keywords:  SARS; infection; simulation; ventilation rate

Year:  2009        PMID: 32218907      PMCID: PMC7091190          DOI: 10.1007/s12273-009-9325-7

Source DB:  PubMed          Journal:  Build Simul        ISSN: 1996-3599            Impact factor:   3.751


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