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Long-term evaluation of air sensor technology under ambient conditions in Denver, Colorado

Air pollution sensors are quickly proliferating for use in a wide variety of applications, with a low price point that supports use in high-density networks, citizen science, and individual consumer use. This emerging technology motivates the assessment under real-world conditions, including varying...

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Autores principales: Feinberg, Stephen, Williams, Ron, Hagler, Gayle S. W., Rickard, Joshua, Brown, Ryan, Garver, Daniel, Harshfield, Greg, Stauffer, Phillip, Mattson, Erick, Judge, Robert, Garvey, Sam
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6781239/
https://www.ncbi.nlm.nih.gov/pubmed/31595175
http://dx.doi.org/10.5194/amt-11-4605-2018
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author Feinberg, Stephen
Williams, Ron
Hagler, Gayle S. W.
Rickard, Joshua
Brown, Ryan
Garver, Daniel
Harshfield, Greg
Stauffer, Phillip
Mattson, Erick
Judge, Robert
Garvey, Sam
author_facet Feinberg, Stephen
Williams, Ron
Hagler, Gayle S. W.
Rickard, Joshua
Brown, Ryan
Garver, Daniel
Harshfield, Greg
Stauffer, Phillip
Mattson, Erick
Judge, Robert
Garvey, Sam
author_sort Feinberg, Stephen
collection PubMed
description Air pollution sensors are quickly proliferating for use in a wide variety of applications, with a low price point that supports use in high-density networks, citizen science, and individual consumer use. This emerging technology motivates the assessment under real-world conditions, including varying pollution levels and environmental conditions. A seven-month, systematic field evaluation of low-cost air pollution sensors was performed in Denver, Colorado, over 2015–2016; the location was chosen to evaluate the sensors in a high-altitude, cool, and dry climate. A suite of particulate matter (PM), ozone (O(3)), and nitrogen dioxide (NO(2)) sensors were deployed in triplicate and were collocated with federal equivalent method (FEM) monitors at an urban regulatory site. Sensors were evaluated for their data completeness, correlation with reference monitors, and ability to reproduce trends in pollution data, such as daily concentration values and wind-direction patterns. Most sensors showed high data completeness when data loggers were functioning properly. The sensors displayed a range of correlations with reference instruments, from poor to very high (e.g., hourly-average PM Pearson correlations with reference measurements varied from 0.01 to 0.86). Some sensors showed a change in response to laboratory audits/testing from before the sampling campaign to afterwards, such as Aeroqual, where the O(3) response slope changed from about 1.2 to 0.6. Some PM sensors measured wind-direction and time-of-day trends similar to those measured by reference monitors, while others did not. This study showed different results for sensor performance than previous studies performed by the U.S. EPA and others, which could be due to different geographic location, meteorology, and aerosol properties. These results imply that continued field testing is necessary to understand emerging air sensing technology.
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spelling pubmed-67812392019-10-08 Long-term evaluation of air sensor technology under ambient conditions in Denver, Colorado Feinberg, Stephen Williams, Ron Hagler, Gayle S. W. Rickard, Joshua Brown, Ryan Garver, Daniel Harshfield, Greg Stauffer, Phillip Mattson, Erick Judge, Robert Garvey, Sam Atmos Meas Tech Article Air pollution sensors are quickly proliferating for use in a wide variety of applications, with a low price point that supports use in high-density networks, citizen science, and individual consumer use. This emerging technology motivates the assessment under real-world conditions, including varying pollution levels and environmental conditions. A seven-month, systematic field evaluation of low-cost air pollution sensors was performed in Denver, Colorado, over 2015–2016; the location was chosen to evaluate the sensors in a high-altitude, cool, and dry climate. A suite of particulate matter (PM), ozone (O(3)), and nitrogen dioxide (NO(2)) sensors were deployed in triplicate and were collocated with federal equivalent method (FEM) monitors at an urban regulatory site. Sensors were evaluated for their data completeness, correlation with reference monitors, and ability to reproduce trends in pollution data, such as daily concentration values and wind-direction patterns. Most sensors showed high data completeness when data loggers were functioning properly. The sensors displayed a range of correlations with reference instruments, from poor to very high (e.g., hourly-average PM Pearson correlations with reference measurements varied from 0.01 to 0.86). Some sensors showed a change in response to laboratory audits/testing from before the sampling campaign to afterwards, such as Aeroqual, where the O(3) response slope changed from about 1.2 to 0.6. Some PM sensors measured wind-direction and time-of-day trends similar to those measured by reference monitors, while others did not. This study showed different results for sensor performance than previous studies performed by the U.S. EPA and others, which could be due to different geographic location, meteorology, and aerosol properties. These results imply that continued field testing is necessary to understand emerging air sensing technology. 2018 /pmc/articles/PMC6781239/ /pubmed/31595175 http://dx.doi.org/10.5194/amt-11-4605-2018 Text en http://creativecommons.org/licenses/by/4.0/ This work is distributed under the Creative Commons Attribution 4.0 License.
spellingShingle Article
Feinberg, Stephen
Williams, Ron
Hagler, Gayle S. W.
Rickard, Joshua
Brown, Ryan
Garver, Daniel
Harshfield, Greg
Stauffer, Phillip
Mattson, Erick
Judge, Robert
Garvey, Sam
Long-term evaluation of air sensor technology under ambient conditions in Denver, Colorado
title Long-term evaluation of air sensor technology under ambient conditions in Denver, Colorado
title_full Long-term evaluation of air sensor technology under ambient conditions in Denver, Colorado
title_fullStr Long-term evaluation of air sensor technology under ambient conditions in Denver, Colorado
title_full_unstemmed Long-term evaluation of air sensor technology under ambient conditions in Denver, Colorado
title_short Long-term evaluation of air sensor technology under ambient conditions in Denver, Colorado
title_sort long-term evaluation of air sensor technology under ambient conditions in denver, colorado
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6781239/
https://www.ncbi.nlm.nih.gov/pubmed/31595175
http://dx.doi.org/10.5194/amt-11-4605-2018
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