Mukherjee Debanjan, Wadhwa Gauri
Paul M Rady Department of Mechanical Engineering, University of Colorado Boulder, Boulder, CO, USA.
Department of Aerospace Engineering, Indian Institute of Technology, Kharagpur, India.
Comput Methods Appl Mech Eng. 2022 Nov 1;401:115485. doi: 10.1016/j.cma.2022.115485. Epub 2022 Aug 19.
The ongoing Covid-19 pandemic, and its associated public health and socioeconomic burden, has reaffirmed the necessity for a comprehensive understanding of flow-mediated infection transmission in occupied indoor spaces. This is an inherently multiscale problem, and suitable investigation approaches that can enable evidence-based decision-making for infection control strategies, interventions, and policies; will need to account for flow physics, and occupant behavior. Here, we present a mesoscale infection transmission model for human occupied indoor spaces, by integrating an agent-based human interaction model with a flow physics model for respiratory droplet dynamics and transport. We outline the mathematical and algorithmic details of the modeling framework, and demonstrate its validity using two simple simulation scenarios that verify each of the major sub-models. We then present a detailed case-study of infection transmission in a model indoor space with 60 human occupants; using a systematic set of simulations representing various flow scenarios. Data from the simulations illustrate the utility and efficacy of the devised mesoscale model in resolving flow-mediated infection transmission; and elucidate key trends in infection transmission dynamics amongst the human occupants.
持续的新冠疫情及其相关的公共卫生和社会经济负担,再次凸显了全面了解在有人占用的室内空间中流动介导的感染传播的必要性。这本质上是一个多尺度问题,而能够为感染控制策略、干预措施和政策提供循证决策依据的合适调查方法,需要考虑流动物理学和居住者行为。在此,我们通过将基于智能体的人际互动模型与用于呼吸道飞沫动力学和传输的流动物理学模型相结合,提出了一种用于有人占用的室内空间的中尺度感染传播模型。我们概述了建模框架的数学和算法细节,并使用两个简单的模拟场景验证每个主要子模型,从而证明其有效性。然后,我们给出了一个在有60名居住者的室内模型空间中感染传播的详细案例研究;使用一组系统的模拟来代表各种流动场景。模拟数据说明了所设计的中尺度模型在解决流动介导的感染传播方面的实用性和有效性;并阐明了居住者之间感染传播动态的关键趋势。