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全球50km分辨率SNU-AGCM模式模拟热带气旋活动

Simulation of global tropical cyclone activity by 50 km resolution SNU-AGCM
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摘要 为了验证50 km分辨率的SNU-AGCM模式(Seoul National University Atmospheric General Circulation Model)模拟TC活动的能力,利用Hadley中心月平均海温资料驱动模式,模拟了1980—2009年全球热带气旋的活动特征。与观测资料对比分析,两组利用不同对流参数化方案的试验,都能够模拟与观测类似的TC结构以及全球TC活动的主要特点,包括全球生成总频数、各海区路径分布和TC活动的季节变化。但是各个海域TC生成的年平均频数与观测还存在明显差异。模式中西北太平洋和南太平洋两组试验平均的TC频数较观测分别偏多21.5%和31.3%;而北大西洋、南北印度洋分别偏少11.4%、41.1%和50%。模拟的东北太平洋TC比观测少了将近88%,而观测中TC极少的南大西洋在两组试验中平均每年却有1.5个TC生成。模拟的TC频数较观测的差异主要与模拟的北印度洋季风、西北太平洋季风槽、垂直风切变、850 h Pa相对涡度与观测的差异有关。 To assess the ability of Seoul National Atmospheric General Circulation Model( SNUAGCM) AGCM in simulating the characteristics of tropical cyclones( TC1),the driven model of the observed monthly mean sea surface temperature data from Hadley Centre during 1980-2009 is used to simulate the characteristics of global TCs. Comparison with observations shows that the model with two different convective parametric schemes is capable in reproducing the basic features of the observed tropical cyclone such as TC structure,number of total cyclones,track locations and seasonality. However,differences exist in different oceans. The mean yearly TC frequency in two different experiments is 21. 5% and31. 3% more than that in the observations in the Northwest Pacific and the southern Pacific,while11. 4%,41. 1% and 50% less in the northern Atlantic,the southern and the northern Indian Ocean,respectively. Furthermore,the genesis of TC in the eastern Pacific in model is 88% less than in the observation while nearly 1. 5 unexpected cyclones per year happen in the southern Atlantic. Further researchshows that the differences of TC frequency between simulation and observation are mainly associated with the differences of Indian monsoon,the Northwest Pacific monsoon trough,vertical wind shear and 850 h Pa relative vorticity.
出处 《气象科学》 北大核心 2015年第3期258-267,共10页 Journal of the Meteorological Sciences
基金 国家自然科学基金资助项目(41275093)
关键词 热带气旋 活动特征 全球气候模式 大尺度环境场 模拟试验 Tropical cyclone Activity features Global climate model Large-scale environmental fields Simulation experiments
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参考文献36

  • 1Manabe S, Holloway J L, Stone H M. Tropical circulation in a time-integration of a global model of the atmosphere. J. Atmos. Sci., 1970, 27(4): 580-613.
  • 2Vitart F, Stockdale T N. Seasonal forecasting of trupical storms u- sing coupled GCM integrations. Mon. Wea. Rev., 2001, 129 (10) : 2521-2537.
  • 3Yoshimura J, Sugi M. Tropical cyclone climatolo' in a high-reso- lution AGCM-lmpacts of SST wanning and CO_, increase. SOLA, 2005, 1: 133-136.
  • 4Murakami H, WANG Yuqing, Yoshimura H, et al. Future chan- ges in tropical cyclone activity projected by the new high-resolution MRI-AGCM. J. Climate, 2012, 25(9): 3237-3260.
  • 5ZHAO Ming, Held I M LIN S, et al. Simulations of global hurri-cane climatology, interannual variability, and response to global warming using a 50 km resolution GCM. J. Climate, 2009, 22 (24) : 6653-6678.
  • 6Kang l S, LIU Fei, Ahn M S, et al. The rote of SST structure in convectively coupled Kelvia-Rossby waves and its implications for MJO formation. J. Climate, 2013, 26(16) : 5915-5930.
  • 7Sohn S J, Min Y M, Lee J Y, et al. Assessment of the long-lead pt'obabilistic prediction for the Asian summer monsoon precipitati- on ( 1983-2011 ) based on the APCC multimodel system and a sta- tistical model. Journal of Geophysical Researeh, 2011: 117. D04102, doi: 10.1029/2011JD016308.
  • 8Ham Y G, Kang I S, Kim D, et al. EI-Nino Southern Oscillation simulated and predicted in SNU coupled GCMs. Climate Dyn., 2012, 38( 11-12): 2227-2242.
  • 9Bonan G B. A land surface model (LSM version 1.0) for ecologi- cal, hydrological, and atmospheric studies: Technical descriptian and user's guide. NCAR Tech Note NCAR/TN-4171STR, Natl. Cent. For Atmos. Res., Boulder Colo., 1996: 150.
  • 10Arakawa A, Schubert W H. Interaction of a cumulus cloud ensem- ble with tle large scale environment, part 1. J. Atmos. Sci., 1974, 31(3) : 674-701.

二级参考文献42

  • 1陈玉林,周军,马奋华.登陆我国台风研究概述[J].气象科学,2005,25(3):319-329. 被引量:78
  • 2杨慧娟,李宁,雷飏.我国沿海地区近54a台风灾害风险特征分析[J].气象科学,2007,27(4):413-418. 被引量:58
  • 3黄新晴,罗哲贤,滕代高.台风形成过程中三维结构变化的初步分析[J].南京气象学院学报,2007,30(5):648-656. 被引量:12
  • 4朱乾根;林锦瑞;寿绍文.天气学原理和方法[M]北京:气象出版社,2000507-510.
  • 5Aiyyer A,Molinari J. MJO and tropical cyclogenesis in the Gulf of Mexico and Eastern Pacific : Case study and idealized numerical modeling[J].Journal of the Atmospheric Sciences,2008.2691-2704.
  • 6Bengtsson L,Botzet M,Esh M. Hurricane-type vortices in a gen- eral circulation model[M].Tellus,1995.175-,196.
  • 7Bister M,Emanuel K A. The genesis of Hurricane Guillermo: TEXMEX-analyses and a modeling study[J].Monthly Weather Review,1997.2662-2682.
  • 8Camargo S J,Zebiak S E. Improving the detection and tracking of tropical cyclones in atmospheric general circulation models[J].Weather and Forecasting,2002.1152-1162.
  • 9Camargo S J,Barnston A G,Zebiak S E. A statistical assessment of tropical cyclones in atmospheric general circulation models[M].Tellus,2005.589-604.
  • 10Camargo S J,Li H,Sun L. Feasibility study for downscaling sea- sonal tropical cyclone activity Using the NCEP Regional Spectral Model[J].International Journal of Climatology,2007.311-325.

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