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WRF Numerical Study on the Convergent Cloud Band and Its Neighbouring Convective Clouds

겨울철 동해상의 대상수렴운과 그 주위의 대류운에 관한 WRF 수치모의 연구

  • Kim, Yu-Jin (Department of Atmospheric and Environmental Sciences, Gangneung-Wonju National University) ;
  • Lee, Jae Gyoo (Department of Atmospheric and Environmental Sciences, Gangneung-Wonju National University)
  • 김유진 (강릉원주대학교 대기환경과학과) ;
  • 이재규 (강릉원주대학교 대기환경과학과)
  • Received : 2013.11.16
  • Accepted : 2014.01.21
  • Published : 2014.03.31

Abstract

This study analyzed atmospheric conditions for the convergent cloud band (Cu-Cb line) in developing stage and its neighbouring convections formed over the East Sea on 1 February 2012, by using synoptic, satellites data, and WRF numerical simulation output of high resolution. In both satellite images and the WRF numerical simulation outputs, the Cu-Cb line that stretched out toward northwest-southeast was shown in the East Sea, and cloud lines of the L mode were aligned in accordance with the prevailing surface wind direction. However, those of the T mode were aligned in the direction of NE-SW, which was nearly perpendicular direction to the surface winds. The directions of the wind shear vectors connecting top winds and bottom winds of the moist layers of the L mode and the T mode were identical with those of the cloud lines of L mode and T mode, respectively. From the WRF simulation convection circulations with a convergence in the lower layer of atmosphere and a divergence above 1.5 km ASL (Above Sea Level) were identified in the Cu-Cb line. A series of small sized vortexes (maximum vortex: $320{\times}10^{-5}s^{-1}$) of meso-${\gamma}$-scale formed by convergences was found along the Cu-Cb lines, suggesting that Cu-Cb lines, consisting of numerous convective clouds, were closely associated with a series of the small vortexes. There was an absolute unstable layer (${\partial}{\theta}/{\partial}z$ < 0) between sfc and ~0.3 km ASL, and a stable layer (${\partial}{\theta}/{\partial}z$ > 0) above ~2 km ASL over the Cu-Cb line and cloud zones. Not only convectively unstable layers (${\partial}{\theta}_e/{\partial}z$ < 0) but also neutral layers (${\partial}{\theta}_e/{\partial}z{\approx}=0$) in the lower atmosphere (sfc~1.5 km ASL) were scattered around over the cloud zones. Particularly, for the Cu-Cb line there were convectively unstable layers in the surface layer, and neutral layers (${\partial}{\theta}_e/{\partial}z{\approx}=0$) between 0.2 and ~1.5 km ASL over near the center of the Cu-Cb line, and the neutralization of unstable layers came from the release of convective instability.

Keywords

References

  1. Asai, T., 1972: Thermal instability of a shear flow turning the direction with height. J. Japan Meteor. Soc., 50, 525-532. https://doi.org/10.2151/jmsj1965.50.6_525
  2. Asai, T., 1988: Meso-scale features of heavy snowfalls in Japan Sea coastal regions of Japan. Tenki, 35, 156-161 (in Japanese).
  3. Cho, K.-H., 2008: The statistical forecasting of topographic precipitation at wintertime for the Yeongdong region : A conceptual model approach. Kangnung National University, 143 pp (in Korea with English abstract).
  4. Choi, W., J.-G. Lee, and Y.-J. Kim, 2013: The impact of data assimilation on WRF simulation using surface data and radar data : Case study. Atmosphere, 23, 143-160 (in Korea with English abstract). https://doi.org/10.14191/Atmos.2013.23.2.143
  5. Chung, K.-B., J.-Y. Kim, and T.-Y. Kwon, 2004: Characteristics of lower-tropospheric wind related with winter precipitation in the Yeongdong region. J. Korean Meteor. Soc., 40, 369-380 (in Korea with English abstract).
  6. Eito, H., M. Murakami, C. Muroi, T. Kato, S. Hayashi, H. Kuroiwa, and M. Yoshizaki, 2010: The structure and formation mechanism of transversal cloud bands associated with the Japan-Sea polar-airmass convergence zone. J. Japan Meteor. Soc., 88, 625-648. https://doi.org/10.2151/jmsj.2010-402
  7. Hong, S.-Y., and J.-O. J. Lim, 2006: The WRF singlemoment 6-class microphysics scheme (WSM6). J. Korean Meteor. Soc., 42, 129-151.
  8. Hozumi, K., and M. Choji, 1984: The cloud structure of convergent cloud bands over the Japan Sea in winter monsoon period. J. Japan Meteor. Soc., 62, 522-533. https://doi.org/10.2151/jmsj1965.62.3_522
  9. Kain, J. S., 2004: The Kain-Fritsch convective parameterization: An update. J. Appl. Meteor., 43, 170-181. https://doi.org/10.1175/1520-0450(2004)043<0170:TKCPAU>2.0.CO;2
  10. Kim, J.-E., T.-Y. Kwon, and B.-Y., Lee, 2005: Characteristics of sensible heat and latent heat fluxes over the East Sea related with Yeongdong heavy snowfall events. Ocean and Polar Research, 27, 237-250 (in Korea with English abstract). https://doi.org/10.4217/OPR.2005.27.3.237
  11. Lee, H., and T.-Y. Lee, 1994: The governing factors heavy snowfalls in Yeongdong area. J. Korean Meteor. Soc., 30, 197-218 (in Korea with English abstract).
  12. Lee, J.-G., 1999: Synoptic structure causing the difference in observed snowfall amount at Taegwallyong and Kangnung: Case study. J. Korean Meteor. Soc., 35, 319-334 (in Korea with English abstract).
  13. Lee, J.-G., and J.-S., Lee, 2003: A numerical study of Yeongdong heavy snowfall events associated with easterly. J. Korean Meteor. Soc., 39, 475-490 (in Korea with English abstract).
  14. Lee, J.-G., and Y.-J., Kim, 2008: A numerical case study examining the orographic effect of the Taebaek Mountains on snowfall distribution over the Yeongdong area. Atmoshpere, 18, 143-160 (in Korea with English abstract).
  15. Lee, J.-G., 2009: A numerical case study examining the orographic effect of the northern mountain complex on snowfall distribution over the Yeongdong region. Atmoshpere, 19, 345-370 (in Korea with English abstract).
  16. Lee, J.-G., S.-D. Kim, and Y.-J. Kim, 2011: A trajectory study on the heavy snowfall phenomenon in Yeongdong region of Korea. Asia-Pac. J. Atmos. Sci., 47, 45-62. https://doi.org/10.1007/s13143-011-1004-9
  17. Lee, J.-W., and S.-Y. Hong, 2006: A numerical simulation study of orographic effects for a heavy rainfall event over Korea using the WRF model. Atmoshpere, 16, 319-332 (in Korea with English abstract).
  18. Lee, T.-Y., and Y.-Y. Park, 1996: Formation of a mesoscale trough over the Korean peninsula during an excursion of Siberian high. J. Meteor. Soc. Japan, 74, 299-323. https://doi.org/10.2151/jmsj1965.74.3_299
  19. Lee, T.-Y., Y.-Y. Park, and T.-L., Lin, 1998: A numerical modeling study of mesoscale cyclogenesis to the East of the Korean peninsula. Mon. Wea. Rev., 126, 2305-2329. https://doi.org/10.1175/1520-0493(1998)126<2305:ANMSOM>2.0.CO;2
  20. Nagata, M., M. Ikawa, S. Yoshizumi, and T. Yoshida,1986: On the formation of a convergent cloud bandover the Japan Sea in winter; A numerical experiments.J. Japan Meteor. Soc., 64, 841-855. https://doi.org/10.2151/jmsj1965.64.6_841
  21. Nagata, M., 1987: On the structure of a convergent cloud band over the Japan Sea in winter; A prediction experiments. J. Japan Meteor. Soc., 65, 871-883. https://doi.org/10.2151/jmsj1965.65.6_871
  22. Nagata, M., 1992: Modeling case study of the Japan-Sea convergent cloud band in a varying large-scale environment: evolution and upscale effect. J. Japan Meteor. Soc., 70, 649-671. https://doi.org/10.2151/jmsj1965.70.1B_649
  23. Ohtake, H., M. Kawashima, and Y. Fujiyoshi, 2009: The formation mechanism of a thick cloud band over the northern part of the Sea of Japan during cold air outbreaks. J. Japan Meteor. Soc., 87, 289-306. https://doi.org/10.2151/jmsj.87.289
  24. Park, S.-Y., and T.-Y. Lee, 2003: A case study on the dependence of simulated cumulus convection on horizontal grid size. J. Korean Meteor. Soc., 39, 379-396 (in Korea with English abstract).
  25. Park, Y.-Y., 2002: Role of parameterized convection in the simulation of heavy rain over the Korean Peninsula. Ph. D. thesis, yonsei university, 200 pp (in Korea with English abstract).
  26. Skamarock, W. C., J. B. Klemp, J. Dudhia, D. O. Gill, D. M. Barker, M. Duda, X.-Y. Huang, W. Wang, and J. G. Powers, 2008: A description of the advancedresearch WRF version 3. NCAR Technical Note TN-475+STR, 125 pp.
  27. Stoelinga, M. T., 2009: A users' guide to RIP version 4: A program for visualizing mesoscale model output. [Available online at http://www.mmm.ucar.edu/wrf/users/ docs/ripug.htm], 82 pp.
  28. Yagi, S., and T. Uchiyama, 1980: Analysis of large-scale cloud pattern with transverse mode and condideration on mechanism of it formation. Extended abstract, Tech. Conf. C.A.W.P.A. Guangzhou 15-20, Dec. 1980, 57-60.
  29. Yagi, S., 1985: Large scale snow clouds with roll axesroughly perpenduclar to the direction of winter monsoonburst: Observational studies of convective cloudroll axes and some theoretical consideration. Tenki,32, 27-39 (in Japanese).
  30. Yagi, S., T. Muramatsu, T. Uchiyama, and N. Kurokawa, 1986: Convergent and cloud' and 'Cb-Cu line' over Japan Sea affected by topographic features in the coast of the Asian continent. J. Japan Meteor. Soc., 33, 453-465 (in Japanese).
  31. Yoshizaki, M., T. Kato, H. Eito, and S. Hayashi, 2004: An overview of the field experiment "Winter Mesoscale Convective Systems (MCSs) over the Japan Sea in 2001", and comparisons of the cold-air outbreak case (14 January) between analysis and a non-hydrostatic cloud-resolving model. J. Japan Meteor. Soc., 82, 1365-1387. https://doi.org/10.2151/jmsj.2004.1365