Beckman Laser Institute & Medical Clinic, 218537University of California - Irvine, Irvine, CA, USA.
Department of Otolaryngology - Head and Neck Surgery, Medstar Georgetown University Hospital, Washington, DC, USA.
Surg Innov. 2022 Apr;29(2):278-281. doi: 10.1177/15533506211065845. Epub 2021 Dec 28.
Droplet simulation often requires expensive and inaccessible equipment. Herein, we develop and assess a low-cost droplet simulation model using easily accessible materials, open-source software, and a smartphone-based cobalt blue light. The simulation model was developed using commercial-grade materials and fluorescein dye. A clear face shield was assessed ten times following a simulated cough using fluorescein dye. A conventional ultraviolet Woods lamp was compared to a smartphone-based cobalt blue light to detect fluorescein illumination. The simulation platform and smartphone-based cobalt blue light cost $20.18. A Wilcoxon signed rank test revealed that the median droplet area of fluorescence under the UV Wood's lamp was not significantly different than that of the smartphone-based cobalt blue light (2.89 vs 2.94, P = .386). This simulation model is inexpensive and easily reproducible. The smartphone application may be a convenient alternative to standard ultraviolet lights. This model has great potential for use in financially restricted academic centers during the COVID-19 pandemic and beyond.
液滴模拟通常需要昂贵且难以获得的设备。在此,我们使用易于获得的材料、开源软件和基于智能手机的钴蓝光开发并评估了一种低成本的液滴模拟模型。该模拟模型使用商业级材料和荧光素染料开发。使用荧光素染料对透明面罩进行了十次模拟咳嗽测试。比较了基于智能手机的钴蓝光与传统紫外线伍兹灯来检测荧光素照明。模拟平台和基于智能手机的钴蓝光的成本为 20.18 美元。Wilcoxon 符号秩检验显示,在 UV Wood 灯下荧光的液滴面积中位数与基于智能手机的钴蓝光下的荧光面积中位数没有显著差异(2.89 与 2.94,P =.386)。该模拟模型价格低廉且易于复制。智能手机应用程序可能是标准紫外线灯的便捷替代方案。在 COVID-19 大流行期间及以后,该模型非常适合在经济受限的学术中心使用。