4.6 Article

A modeling study of the impact of photolysis on indoor air quality

期刊

INDOOR AIR
卷 32, 期 6, 页码 -

出版社

WILEY
DOI: 10.1111/ina.13054

关键词

artificial lights; attenuated sunlight; hydroxyl radicals; indoor air chemistry; indoor air model; indoor photolysis

资金

  1. Canada Research Chairs
  2. Alfred P. Sloan Foundation [G-2018-10083, G-2018-11062]

向作者/读者索取更多资源

This paper investigates the impacts of various factors on indoor photolysis rates and indoor air chemistry using a detailed chemical model. It found that glass type, artificial indoor lighting, cloudiness, time of year, and latitude all have significant effects on indoor photolysis rates and the production of potentially harmful species.
The importance of photolysis as an initiator of air chemistry outdoors is widely recognized, but its role in chemical processing indoors is often ignored. This paper uses recent experimental data to modify a detailed chemical model, using it to investigate the impacts of glass type, artificial indoor lighting, cloudiness, time of year and latitude on indoor photolysis rates and hence indoor air chemistry. Switching from an LED to an uncovered fluorescent tube light increased predicted indoor hydroxyl radical concentrations by similar to 13%. However, moving from glass that transmitted outdoor light at wavelengths above 380 nm to one that transmitted sunlight above 315 nm led to an increase in predicted hydroxyl radicals of more than 400%. For our studied species, including ozone, nitrogen oxides, nitrous acid, formaldehyde, and hydroxyl radicals, the latter were most sensitive to changes in indoor photolysis rates. Concentrations of nitrogen dioxide and formaldehyde were largely invariant, with exchange with outdoors and internal deposition controlling their indoor concentrations. Modern lights such as LEDs, together with low transmission glasses, will likely reduce the effects of photolysis indoors and the production of potentially harmful species. Research is needed on the health effects of different indoor air mixtures to confirm this conclusion.

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