Extreme hydroxyl amounts generated by thunderstorm-induced corona on grounded metal objects

Author:

Brune William H.1ORCID,Jenkins Jena M.1ORCID,Olson Gabrielle A.1,McFarland Patrick J.1ORCID,Miller David O.1ORCID,Mao Jingqiu23,Ren Xinrong45

Affiliation:

1. Department of Meteorology and Atmospheric Science, Pennsylvania State University, University Park, PA 16802

2. Department of Chemistry and Biochemistry, University of Alaska, Fairbanks, AK 99775

3. Geophysical Institute, University of Alaska, Fairbanks, AK 99775

4. Department of Atmospheric and Oceanic Science, University of Maryland, College Park, MD 20740

5. Air Resources Laboratory, National Oceanic and Atmospheric Administration, College Park, MD 20740

Abstract

Atmospheric electrical discharges are now known to generate unexpectedly large amounts of the atmosphere’s primary oxidant, hydroxyl (OH), in thunderstorm anvils, where electrical discharges are caused by atmospheric charge separation. The question is “Do other electrical discharges also generate large amounts of oxidants?” In this paper, we demonstrate that corona formed on grounded metal objects under thunderstorms produce extreme amounts of OH, hydroperoxyl (HO2), and ozone (O3). Hundreds of parts per trillion to parts per billion of OH and HO2were measured during seven thunderstorms that passed over the rooftop site during an air quality study in Houston, TX in summer 2006. A combination of analysis of these field results and laboratory experiments shows that these extreme oxidant amounts were generated by corona on the inlet of the OH-measuring instrument and that corona are easier to generate on lightning rods than on the inlet. In the laboratory, increasing the electric field increased OH, HO2, and O3, with 14 times more O3generated than OH and HO2, which were equal. Calculations show that corona on lightning rods can annually generate OH that is 10–100 times ambient amounts within centimeters of the lightning rod and on high-voltage electrical power lines can generate OH that is 500 times ambient a meter away from the corona. Contrary to current thinking, previously unrecognized corona-generated OH, not corona-generated UV radiation, mostly likely initiates premature degradation of high-voltage polymer insulators.

Funder

Texas Commission on Environmental Quality

National Science Foundation

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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