Katharos Labs LLC., Boston, Massachusetts, United States of America.
Harvard Medical School, Boston, Massachusetts, United States of America.
PLoS One. 2023 Mar 15;18(3):e0281050. doi: 10.1371/journal.pone.0281050. eCollection 2023.
Effective masking policies to prevent the spread of airborne infections depend on public access to masks with high filtration efficacy. However, poor face-fit is almost universally present in pleated multilayer disposable face masks, severely limiting both individual and community respiratory protection. We developed a set of simple mask modifications to mass-manufactured disposable masks, the most common type of mask used by the public, that dramatically improves both their personalized fit and performance in a low-cost and scalable manner. These modifications comprise a user-moldable full mask periphery wire, integrated earloop tension adjusters, and an inner flange to trap respiratory droplets. We demonstrate that these simple design changes improve quantitative fit factor by 320%, triples the level of protection against aerosolized droplets, and approaches the model efficacy of N95 respirators in preventing the community spread of COVID-19, for an estimated additional cost of less than 5 cents per mask with automated production.
有效的掩蔽政策以防止空气传播感染取决于公众能否获得过滤效果高的口罩。然而,褶皱多层一次性口罩几乎普遍存在面部贴合不良的情况,这严重限制了个人和社区的呼吸防护。我们对大众最常使用的一次性口罩进行了一系列简单的口罩改进,以显著提高其个性化贴合度和性能,同时以低成本和可扩展的方式实现这一点。这些改进包括用户可塑形的全口罩周边金属丝、集成耳带张力调节器和内部凸缘以捕获呼吸飞沫。我们证明这些简单的设计更改可将定量贴合因子提高 320%,将对气溶胶化飞沫的防护水平提高三倍,并接近 N95 呼吸器模型在预防 COVID-19 社区传播方面的功效,而自动化生产的每个口罩的额外成本估计不到 5 美分。