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增强医疗程序中的气溶胶缓解效果:一种基于计算流体动力学的呼吸屏障罩

Enhancing Aerosol Mitigation in Medical Procedures: A CFD-Informed Respiratory Barrier Enclosure.

作者信息

Hong Ju Young, Ko Seungcheol, Sung Ki Sub, Oh Min Jae, Kim Min Ji, Lee Jung Woo, Park Yoo Seok, Kim Yong Hyun, Lee Joon Sang

机构信息

Emergency Medicine, Yonsei University College of Medicine, Seoul 03722, Republic of Korea.

School of Mechanical Engineering, Yonsei University, Seoul 03722, Republic of Korea.

出版信息

Bioengineering (Basel). 2024 Nov 1;11(11):1104. doi: 10.3390/bioengineering11111104.

Abstract

The COVID-19 pandemic has highlighted the significant infection risks posed by aerosol-generating procedures (AGPs), such as intubation and cardiopulmonary resuscitation (CPR). Despite existing protective measures, high-risk environments like these require more effective safety solutions. In response, our research team has focused on developing a novel respiratory barrier enclosure designed to enhance the safety of healthcare workers and patients during AGPs. We developed a hood that covers the patient's respiratory area, incorporating a negative pressure system to contain aerosols. Using computational fluid dynamics (CFD) analysis, we optimized the hood's design and adjusted the negative pressure levels based on simulations of droplet dispersion. To test the design, Polyalphaolefin (PAO) particles were generated inside the hood, and leakage was measured every 10 s for 90 s. The open side of the hood was divided into nine sections for consistent leakage measurements, and a standardized structure was implemented to ensure accuracy. Our target was to maintain a leakage rate of less than 0.3%, in line with established filter-testing criteria. Through iterative improvements based on leakage rates and intubation efficiency, we achieved significant results. Despite reducing the hood's size, the redesigned enclosure showed a 36.2% reduction in leakage rates and an approximately 3204.6% increase in aerosol extraction efficiency in simulations. The modified hood, even in an open configuration, maintained a droplet leakage rate of less than 0.3%. These findings demonstrate the potential of a CFD-guided design in developing respiratory barriers that effectively reduce aerosol transmission risks during high-risk medical procedures. This approach not only improves the safety of both patients and healthcare providers but also provides a scalable solution for safer execution of AGPs in various healthcare settings.

摘要

2019冠状病毒病(COVID-19)大流行凸显了诸如插管和心肺复苏(CPR)等产生气溶胶的操作(AGP)所带来的重大感染风险。尽管有现有的防护措施,但像这样的高风险环境仍需要更有效的安全解决方案。作为回应,我们的研究团队专注于开发一种新型呼吸屏障罩,旨在在实施AGP期间提高医护人员和患者的安全性。我们开发了一种覆盖患者呼吸区域的头罩,并入了一个负压系统以抑制气溶胶。使用计算流体动力学(CFD)分析,我们对头罩的设计进行了优化,并根据液滴扩散模拟调整了负压水平。为了测试该设计,在头罩内产生聚α烯烃(PAO)颗粒,并在90秒内每隔10秒测量一次泄漏情况。头罩的开口侧被分成九个部分以便进行一致的泄漏测量,并采用了标准化结构以确保准确性。我们的目标是保持低于0.3%的泄漏率,这符合既定的过滤器测试标准。通过基于泄漏率和插管效率的迭代改进,我们取得了显著成果。尽管减小了头罩的尺寸,但重新设计的罩体在模拟中显示泄漏率降低了36.2%,气溶胶提取效率提高了约3204.6%。经过改进的头罩,即使在开放配置下,液滴泄漏率仍保持在0.3%以下。这些发现证明了CFD引导设计在开发呼吸屏障方面的潜力,这种呼吸屏障可有效降低高风险医疗程序期间的气溶胶传播风险。这种方法不仅提高了患者和医护人员的安全性,还为在各种医疗环境中更安全地实施AGP提供了一种可扩展的解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/58a8/11591818/243654ec5c0e/bioengineering-11-01104-g001.jpg

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