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Published on: May 13, 2020
N95 and p100 respirator filter efficiency under high constant and cyclic flow
Jonathan P Eshbaugh1, Paul D Gardner, Aaron W Richardson
1Battelle Memorial Institute, Columbus, Ohio, USA. eshbaughj@battelle.org
High flow conditions increase aerosol penetration in respirators, but the most penetrating particle size remains largely unaffected. Constant flow conditions mimicking peak inhalation best predicted cyclic flow penetration.
Area of Science:
- Occupational Health and Safety
- Aerosol Science and Technology
- Respiratory Protection
Background:
- Respirator performance is crucial for protecting workers from airborne hazards.
- Understanding aerosol penetration under various airflow conditions is essential for accurate respirator selection and use.
- National Institute for Occupational Safety and Health (NIOSH)-approved respirators are widely used in occupational settings.
Purpose of the Study:
- To investigate the impact of high flow rates on aerosol penetration through N95 and P100 respirators.
- To determine the relationship between aerosol penetration under constant and cyclic flow conditions.
- To identify the most penetrating particle size (MPPS) for different respirator types and flow conditions.
Main Methods:
- Tested N95 and P100 filtering facepiece respirators and cartridges using inert solid and oil aerosols.
- Employed monodisperse aerosol generation and size-specific particle measurement for particles from 0.02 to 2.9 microm.
- Evaluated penetration under three constant flow rates (85, 270, 360 L/min) and four cyclic flow rates (40, 85, 115, 135 L/min).
Main Results:
- Aerosol penetration increased with higher constant and cyclic flow rates for both N95 and P100 filters.
- The MPPS was generally between 0.05-0.2 microm for P100 and around 0.05 microm for N95, largely independent of flow rate.
- Constant flow rates simulating mean and peak inhalation flows provided the best approximation of penetration observed under corresponding cyclic flow conditions.
Conclusions:
- Increased airflow significantly enhances aerosol penetration in N95 and P100 respirators.
- Respirator performance evaluation should consider dynamic, cyclic flow conditions representative of actual breathing patterns.
- Constant flow testing at levels equivalent to peak inhalation can serve as a valuable surrogate for assessing respirator performance under cyclic conditions.
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