COMPUTATIONAL FLUID DYNAMICS SIMULATION OF FLOW OF EXHALED PARTICLES FROM POWERED-AIR PURIFYING RESPIRATORS

Susan S Xu1, Zhipeng Lei2, Ziqing Zhuang1

  • 1National Institute for Occupational Safety and Health, Centers for Disease Control and Prevention, Pittsburgh, Pennsylvania.

Proceedings of the ... ASME Design Engineering Technical Conferences. ASME Design Engineering Technical Conferences
|May 22, 2023
PubMed

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Powered air-purifying respirators (PAPRs) may expel infectious particles, risking healthcare-associated infections. This study used computational fluid dynamics (CFD) to simulate particle leakage from PAPRs, finding leakage is influenced by particle size, breathing effort, and airflow.

Area of Science:

  • Biomedical Engineering
  • Infectious Disease Prevention
  • Computational Fluid Dynamics

Background:

  • Post-operative infections are often caused by wound contamination with infectious particles.
  • Powered air-purifying respirators (PAPRs) are crucial for healthcare worker protection against infectious aerosols.
  • Concerns exist regarding potential infectious particle expulsion from PAPR exhalation channels, posing a risk in sterile environments.

Purpose of the Study:

  • To simulate and visualize the distribution of exhaled particles from PAPR wearers using computational fluid dynamics (CFD).
  • To quantify the outward leakage of exhaled particles from PAPRs.
  • To evaluate the impact of particle size, airflow rate, and breathing workload on particle leakage.

Main Methods:

  • Developed a 3D geometrical model of a headform wearing a loose-fitting PAPR.
  • Defined mathematical models for the headform and PAPR system.
  • Conducted 24 CFD simulations varying particle size, breathing workload, and supplied air flow rates.
  • Analyzed simulation results to determine particle concentration inside and outside the PAPR.

Main Results:

  • Outward particle leakage from PAPRs is influenced by particle size, breathing workload, and supplied air flow rate.
  • Leakage was approximately 9% for 0.1-1 micrometer particles at light breathing and 205 L/min airflow.
  • Leakage ratio ranged from 7.6% to 49%, increasing with smaller particle size, higher workload, and lower airflow.

Conclusions:

  • Supplied air flow rates and work rates significantly impact outward particle leakage from PAPRs.
  • Understanding these factors is crucial for optimizing PAPR use and mitigating infection risks in healthcare settings.
  • Simulation results provide a basis for future clinical studies on PAPR-related infection prevention.

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