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PMID: 30739977 Published · ppublish English Journal Article

Design and Evaluation of an Aerodynamic Focusing Micro-Well Aerosol Collector.

He J, Novosselov IV

Abstract

Aerosol sampling and identification is vital for the assessment and control of particulate matter pollution, airborne pathogens, allergens, and toxins and their effect on air quality, human health, and climate change. In-situ analysis of chemical and biological airborne components of aerosols on a conventional filter is challenging due to dilute samples in a large collection region. We present the design and evaluation of a micro-well (µ-well) aerosol collector for the assessment of airborne particulate matter (PM) in the 0.5-3 micron size range. The design minimizes particle collection areas allowing for in-situ optical analysis and provides an increased limit of detection for liquid-based assays due to the high concentrations of analytes in the elution/analysis volume. The design of the collector is guided by computational fluid dynamics (CFD) modeling; it combines an aerodynamic concentrator inlet that focuses the aspirated aerosol into a narrow beam and a µ-well collector that limits the particle collection area to the µ-well volume. The optimization of the collector geometry and the operational conditions result in high concentrations of collected PM in the submillimeter region inside the µ-well. Collection efficiency experiments are performed in the aerosol chamber using fluorescent polystyrene microspheres to determine the performance of the collector as a function of particle size and sampling flow rate. The collector has the maximum collection efficiency of about 75% for 1 micron particles for the flow rate of 1 slpm. Particles bigger than 1 micron have lower collection efficiencies because of particle bounce and particle loss in the aerodynamic focusing inlet. Collected samples can be eluted from the device using standard pipettes, with an elution volume of 10-20 microliters. The transparent collection substrate and the distinct collection region, independent of particle size, allows for in-situ optical analysis of the collected PM.

作者与单位
共 2 位作者,点击展开单位 / ORCID
He Jiayang
University of Washington, Mechanical Engineering, Box 352600, Seattle, WA 98195.
Novosselov Igor V
University of Washington, Mechanical Engineering, Box 352600, Seattle, WA 98195.
Article Info
Journal
Aerosol science and technology : the journal of the American Association for Aerosol Research
Abbr.
Aerosol Sci Technol
ISSN
0278-6826
Published
2017-00-00
电子出版
2017-00-24
页码
1016-1026
Language
English
Country/Region
United States
NLM ID
9886760
基金资助
NIEHS NIH HHS · R21 ES024715 · United States
NIEHS NIH HHS · R33 ES024715 · United States
NIBIB NIH HHS · U01 EB021923 · United States
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