Impact of 21 June 2020 Annular Solar Eclipse on Meteorological Parameters, O3 and CO at a High Mountain Site in Taiwan

被引:4
作者
Babu, Saginela Ravindra [1 ]
Pani, Shantanu Kumar [1 ]
Ou-Yang, Chang-Feng [1 ]
Lin, Neng-Huei [1 ,2 ]
机构
[1] Natl Cent Univ, Dept Atmospher Sci, Taoyuan 32001, Taiwan
[2] Natl Cent Univ, Ctr Environm Monitoring & Technol, Taoyuan 32001, Taiwan
关键词
Solar eclipse; Lulin Atmospheric Background Station; Trace gases; Solar radiation; 15; JANUARY; 2010; 29; MARCH; 2006; BOUNDARY-LAYER; OZONE; TEMPERATURE; THUMBA; GREECE; STATION; ATHENS;
D O I
10.4209/aaqr.220248
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The annular solar eclipse observed on 21 June 2020 over Taiwan provided a rare opportunity to follow the responses of various meteorological parameters and trace gases to the solar eclipse. For the first time, the impact of the solar eclipse on solar radiation, air temperature (T), relative humidity (RH), atmospheric pressure (P), wind speed (WS), and trace gases (ozone and carbon monoxide) is delineated at the Lulin Atmospheric Background Station (LABS; 23.47 degrees N, 120.87 degrees E; 2,862 m MSL) in Taiwan. Over the Taiwan region, the solar eclipse began at 14:49 local time (LT; UTC+8), reached maximum obscuration at 16:13 LT, and finished at 17:24 LT. Compared to the control period (average of 13-20 June 2020), the weather parameters and trace gases show pronounced changes on the day of the eclipse (21 June 2020). A significant decrease in UV-B and solar irradiance at LABS was observed during the peak phase of the solar eclipse due to the occultation of the Sun by the Moon. On the eclipse day, the T decreased significantly (similar to 4 degrees C) after 17 minutes of maximum solar darkening. Due to the cloudiness and low temperatures on the day of the eclipse, 100% RH was apparent during the period of the eclipse at LABS. We also noticed a steady decline in WS just after the onset of the eclipse at LABS. Interestingly, a marked decline in ozone and carbon monoxide was seen during the eclipse day at LABS. Ozone was reduced by about 10 ppb (40%), with a delay of about 2 hours from the peak phase of the eclipse. Overall, our results show the impact of the solar eclipse on high altitude measurements for the first time, and further this work provides a useful new contribution to the literature examining solar eclipse-induced atmospheric changes.
引用
收藏
页数:11
相关论文
共 33 条
[1]   Hydroxyl radical and ozone measurements in England during the solar eclipse of 11 August 1999 [J].
Abram, JP ;
Creasey, DJ ;
Heard, DE ;
Lee, JD ;
Pilling, MJ .
GEOPHYSICAL RESEARCH LETTERS, 2000, 27 (21) :3437-3440
[2]   Aerosol lidar observations and model calculations of the planetary boundary layer evolution over greece, during the march 2006 total solar eclipse [J].
Amiridis, V. ;
Melas, D. ;
Balis, D. S. ;
Papayannis, A. ;
Founda, D. ;
Katragkou, E. ;
Giannakaki, E. ;
Mamouri, R. E. ;
Gerasopoulos, E. ;
Zerefos, C. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2007, 7 (24) :6181-6189
[3]  
Anderson J., 1999, WEATHER, V54, P207, DOI [10.1002/j.1477-8696.1999.tb06465.x, DOI 10.1002/J.1477-8696.1999.TB06465.X]
[4]   Atmospheric changes from solar eclipses [J].
Aplin, K. L. ;
Scott, C. J. ;
Gray, S. L. .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2016, 374 (2077)
[5]   Meteorological effects of the eclipse of 11 August 1999 in cloudy and clear conditions [J].
Aplin, KL ;
Harrison, RG .
PROCEEDINGS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2003, 459 (2030) :353-371
[6]   Long-range transport of La Soufriere volcanic plume to the western North Pacific: Influence on atmospheric mercury and aerosol properties [J].
Babu, Saginela Ravindra ;
Ly Sy Phu Nguyen ;
Sheu, Guey-Rong ;
Griffith, Stephen M. ;
Pani, Shantanu Kumar ;
Huang, Hsiang-Yu ;
Lin, Neng-Huei .
ATMOSPHERIC ENVIRONMENT, 2022, 268
[7]   Effects of vernal equinox solar eclipse on temperature and wind direction in Switzerland [J].
Eugster, Werner ;
Emmel, Carmen ;
Wolf, Sebastian ;
Buchmann, Nina ;
McFadden, Joseph P. ;
Whiteman, Charles David .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2017, 17 (24) :14887-14904
[8]   Boundary layer photochemistry during a total solar eclipse [J].
Fabian, P ;
Rappenglück, B ;
Stohl, A ;
Werner, H ;
Winterhalter, M ;
Schlager, H ;
Stock, P ;
Berresheim, H ;
Kaminski, U ;
Koepke, P ;
Reuder, J ;
Birmili, W .
METEOROLOGISCHE ZEITSCHRIFT, 2001, 10 (03) :187-192
[9]   The effect of the total solar eclipse of 29 March 2006 on meteorological variables in Greece [J].
Founda, D. ;
Melas, D. ;
Lykoudis, S. ;
Lisaridis, I. ;
Gerasopoulos, E. ;
Kouvarakis, G. ;
Petrakis, M. ;
Zerefos, C. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2007, 7 (21) :5543-5553
[10]   The changes in near-surface ozone and precursors at two nearby tropical sites during annular solar eclipse of 15 January 2010 [J].
Girach, I. A. ;
Nair, Prabha R. ;
David, Liji Mary ;
Hegde, Prashant ;
Mishra, Manoj Kumar ;
Kumar, G. Mohan ;
Das, S. Murali ;
Ojha, N. ;
Naja, M. .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2012, 117