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Case Studies of Mass Concentration Variation in the Central-Southern Korean Peninsula Caused by Synoptic Scale Transport of Dust Storms

  • Kim, Hak-Sung (Department of Earth Science Education, Korean National University of Education) ;
  • Cho, Jae-Hee (Department of Earth Science Education, Korean National University of Education)
  • Received : 2019.08.07
  • Accepted : 2019.08.20
  • Published : 2019.08.31

Abstract

In East Asia, the long-range transport of dust storms originating from Mongolia and northern China affects airborne dust loadings over downwind areas in the southern Korean Peninsula. Since 1997, dust loading cases caused by dust storms have been observed using the thresholds of total suspended particles (TSP, ${\geq}250{\mu}g\;m^{-3}\;hr^{-1}$) and particulate matter less than $10{\mu}g$ ($PM_{10}$, ${\geq}190{\mu}g\;m^{-3}\;hr^{-1}$) in the central-southern Korean Peninsula. There were two dust loading cases that exceeded these thresholds in 2016 and three in 2017, which reflects the downward trend of the last twenty-one years in the central-southern Korean Peninsula. Furthermore, five other dust loading cases with mass concentrations lower than the thresholds were observed from 2016 to 2017. In the moderate dust loading cases exceeding the thresholds, a descending motion of cut-off lows below $45^{\circ}N$ and a southward trough at 500 hPa gpm isopleths intensified at the western ridge, and largely extended the surface high-pressure system over southeast China. Airborne dust loadings following pronounced north-westerlies in the forward side of the high-pressure system were transported to the surface of the central-southern Korean Peninsula. However, in slight dust loading cases lower than the thresholds, the restricted descending motion of cut-off lows over $45^{\circ}N$ and the southwestward trough at 500 hPa gpm isopleths intensified the zonal flow over the Korean Peninsula. Surface high- and low-pressure systems moved eastward from the source compared to moderate dust loading cases. Due to the zonal movement of dust storms traversing eastern China, slight dust loading cases were observed with relatively higher ratios of $PM_{2.5}/TSP$ and carbon monoxide (CO) in the central-southern Korean Peninsula.

Keywords

References

  1. Chung, Y.S., 1992, On the observations of yellow sand in Korea. Atmospheric Environment, 26(15), 2743-2749. https://doi.org/10.1016/0960-1686(92)90010-I
  2. Chun, Y., Boo, K.O., Kim, J., Park, S.U., and Lee, M., 2001, Synopis, transport, and physical characteristics of Asian dust in Korea. Journal of Geophysical Research, 106(D16), 18461-18469. https://doi.org/10.1029/2001JD900184
  3. Chung, Y.S., Kim, H.S., Han, K.Y., and Jugder. D., 2003a, On East Asian sand and duststorms and associated significant dustfall observed from January to May 2001. Water, Air, & Soil Pollution: Focus, 3(2), 259-277. https://doi.org/10.1023/A:1023259011271
  4. Chung, Y.S., Kim, H.S., Dulam, J., and Harris, J., 2003b, On heavy dustfall observed with explosive sandstorms in Chongwon-Chongju, Korea in 2002. Atmospheric Environment, 37(24), 3425-3433. https://doi.org/10.1016/S1352-2310(03)00360-1
  5. Chung, Y.S., Kim, H.S., Jugder, D., Natsagdorj, L., and Chen, S.J., 2003c, On sand and dust storms and associated significant dustfall observed in Cheongju- Chongwon, Korea during 1997-2000. Water, Air, & Soil Pollution: Focus, 3, 5-19.
  6. Chung, Y.S. and Le, H.V., 1984, Detection of forest-fire smoke plumes by satellite image. Atmospheric Environment, 18(10), 2143-2151. https://doi.org/10.1016/0004-6981(84)90201-4
  7. Gao, T., Yu, X., Ma, Q., Li, H., Li, X., and Si, Y., 2003, Climatology and trends of the temporal and spatial distribution of sandstorms in Inner Mongolia. Water, Air, & Soil Pollution: Focus, 3(2), 51-66. https://doi.org/10.1023/A:1023265818114
  8. Gao, T., Xu, Y., Bo, Y., and Yu, X., 2006, Synoptic characteristics of dust storms observed in Inner Mongolia and their influence on the downwind area (the Beijing-Tianjin Region). Meteorological Applications, 13(4), 393-403. https://doi.org/10.1017/S1350482706002404
  9. Hara, Y., Uno, I., and Wang, Z., 2006, Long-term variation of Asian dust and related climate factors. Atmospheric Environment, 40(35), 6730-6740. https://doi.org/10.1016/j.atmosenv.2006.05.080
  10. Huang, X.X., Wang, T.J., Jing, F., Liao, J.B., Cai, Y.F., Yin, C.Q., Zhu, J.L., and Han, Y., 2013, Studies on a severe dust storm in East Asian and its impact on the air quality of Nanjing, China. Aerosol and Air Quality Research, 13(1), 179-193. https://doi.org/10.4209/aaqr.2012.05.0108
  11. Hulme, M., Zhao, Z.C., and Jiang, T., 1994, Recent and future climate change in East Asia. International Journal of Climatology, 14(6), 637-658. https://doi.org/10.1002/joc.3370140604
  12. Kim, H.C., Kim, S.T., Son, S.W., Lee, P., Jin, C.S., Kim, E.H., Kim, B.U., Ngan, F., Bae, C.H., Song, C.K., and Stein, A., 2016, Synoptic perspectives on pollutant transport patterns observed by satellites over East Asia: Cases studies with a conceptual model. Atmospheric chemistry and physics, Discussions, doi:10.5194/acp-2016-673.
  13. Kim, H.S. and Chung, Y.S., 2010, Characteristics of mass concentrations depending on synoptic feature during airborne dustfall episodes observed at Cheongwon in Korea in 2005. Asia-Pacific Journal of Atmospheric Sciences, 46(2), 209-216. https://doi.org/10.1007/s13143-010-0020-5
  14. Kim, H.S., Chung, Y.S., and Cho, J.H., 2017, Long-term variations of dust storms and associated dustfall and related climate factors in Korea during 1997-2016. Air Quality, Atmosphere & Health, 10(10), 1269-1280. https://doi.org/10.1007/s11869-017-0513-9
  15. Kim, H.S., Chung, Y.S., and Yoon, M.B., 2016, An analysis on the impact of large-scale transports of dust pollution on air quality in East Asia as observed in central Korea in 2014. Air Quality, Atmosphere & Health, 9(1), 83-93. https://doi.org/10.1007/s11869-014-0312-5
  16. Kim, J., 2008, Transport routes and source regions of Asian dust observed in Korea during the past 40 years (1965-2004). Atmospheric Environment, 42(19), 4778-4789. https://doi.org/10.1016/j.atmosenv.2008.01.040
  17. Kim, Y.K., Song, S.K., Lee, H.W., Kim, C.H., and Oh, I.B., 2006, Characteristics of Asian dust transport based on synoptic meteorological analysis over Korea. Journal of the Air & Waste Management Association, 56(3), 306-316. https://doi.org/10.1080/10473289.2006.10464724
  18. Laurent, B., Marticorena, B., Bergametti, G., Chazette, P., Maignan, F., and Schmechtig, C., 2005, Simulation of the mineral dust emission frequencies from desert areas of China and Mongolia using an aerodynamic roughness length map derived from the POLDER/ADEOS 1 surface products. Journal of Geophysical Research, 110(D18), doi: 10.1029/2004JD005013.
  19. Liang, D., Wang, Y.Q., Ma, C., and Wang, Y.J., 2016, Variability in transport pathways and source areas of PM10 in Beijing during 2009-2012. Aerosol and Air Quality Research, 16(12), 3130-3141. https://doi.org/10.4209/aaqr.2016.02.0090
  20. Natsagdorj, L., Jugder, D., Chung, Y.S., 2003, Analysis of duststorms observed in Mongolia during 1937-1999. Atmospheric Environment, 37(9-10), 1401-1411. https://doi.org/10.1016/S1352-2310(02)01023-3
  21. Park, M.E., Cho, J.H., Kim, S., Lee, S.S., Kim, J.E., Lee, H.C., Cha, J.W., and Ryoo, S.B., 2016, Case study of the heavy Asian dust observed in late February 2015. Atmosphere, Korean Meteorological Society, 26(2), 257-275.
  22. Rolph, G., Stein, A., and Stunder, B., 2017, Real-time Environmental Applications and Display sYstem: READY. Environmental Modelling & Software, 95, 210-228. https://doi.org/10.1016/j.envsoft.2017.06.025
  23. Seinfeld, J.H., Carmichael, G.R., Arimoto, R., Conant, W.C., Brechtel, F.J., Bates, T.S., Cahill, T.A., Clarke, A.D., Doherty, S.J., Flatau, P.J., Huebert, B.J., Kim, J., Markowicz, K.M., Quinn, P.K., Russell, L.M., Russell, P.B., Shimizu, A., Shinozuka, Y., Song, C.H., Tang, Y., Uno, I., Vogelmann, A.M., Weber, R.J., Woo, J.H., and Zhang, X.Y., 2004, ACE-ASIA: regional climatic and atmospheric chemical effects of Asian dust and pollution. Bulletin of the American Meteorological Society, 85(3), 367-380. https://doi.org/10.1175/BAMS-85-3-367
  24. Tan, S.C., Shi, G.Y., and Wang, H., 2012, Long-range transport of spring dust storms in Inner Mongolia and impact on the China seas. Atmospheric Environment, 46, 299-308. https://doi.org/10.1016/j.atmosenv.2011.09.058
  25. Tsai, F. and Chen, W.N., 2014, Comparison of the synoptic environments conducive to eastward versus southeastward transport of Asian dust events. Advances in Meteorology, doi:10.1155/2014/467659.
  26. Wang, W. and Fang, Z.Y., 2006, Numerical simulation and synoptic analysis of dust emission and transport in East Asia. Global and Planetary Change, 52(1-4), 57-70. https://doi.org/10.1016/j.gloplacha.2006.02.004
  27. Wang, X., Huang, J.P., Ji, M.X., and Higuchi, K., 2008, Variability of East Asia dust events and their long-term trend. Atmospheric Environment, 42(13), 3156-3165. https://doi.org/10.1016/j.atmosenv.2007.07.046