Eine Plattform für die Wissenschaft: Bauingenieurwesen, Architektur und Urbanistik
Numerical investigation of the lower airway exposure to indoor particulate contaminants
Inhalation exposure to indoor particulate contaminants contributes as one of the leading threats to public health. Most existing airway morphometry models are either theoretical or semi-empirical; these are developed for predicting deposition fractions for an averaged general population subgroup. It is difficult to customize a fast and accurate prediction on individual basis. This study aims to analyse the regional particle deposition along an anatomically correct airway model, which is developed from a healthy volunteer’s computer tomography images. Computational fluid dynamics simulation results show that the majority of particles are deposited in the bronchi. Accumulation particles (0.1–2.0 μm) have the smallest deposition fraction in the lower airways. An increase in the aerodynamic diameter >2.0 μm of the particles elevated the deposition fraction. These findings inspire future investigations into control methods that minimize the negative health impact of indoor emissions.
Numerical investigation of the lower airway exposure to indoor particulate contaminants
Inhalation exposure to indoor particulate contaminants contributes as one of the leading threats to public health. Most existing airway morphometry models are either theoretical or semi-empirical; these are developed for predicting deposition fractions for an averaged general population subgroup. It is difficult to customize a fast and accurate prediction on individual basis. This study aims to analyse the regional particle deposition along an anatomically correct airway model, which is developed from a healthy volunteer’s computer tomography images. Computational fluid dynamics simulation results show that the majority of particles are deposited in the bronchi. Accumulation particles (0.1–2.0 μm) have the smallest deposition fraction in the lower airways. An increase in the aerodynamic diameter >2.0 μm of the particles elevated the deposition fraction. These findings inspire future investigations into control methods that minimize the negative health impact of indoor emissions.
Numerical investigation of the lower airway exposure to indoor particulate contaminants
Hvelplund, Malthe H. (Autor:in) / Liu, Li (Autor:in) / Frandsen, Kirstine M. (Autor:in) / Qian, Hua (Autor:in) / Nielsen, Peter V. (Autor:in) / Dai, Yuan (Autor:in) / Wen, Leitao (Autor:in) / Zhang, Yingqi (Autor:in)
Indoor and Built Environment ; 29 ; 575-586
01.04.2020
12 pages
Aufsatz (Zeitschrift)
Elektronische Ressource
Englisch
Human airway organoids and microplastic fibers: A new exposure model for emerging contaminants
Elsevier | 2022
|Human airway organoids and microplastic fibers: A new exposure model for emerging contaminants
DOAJ | 2022
|Integrated evaluation of indoor particulate exposure. The viepi project
BASE | 2020
|