Message Board

Respected readers, authors and reviewers, you can add comments to this page on any questions about the contribution, review, editing and publication of this journal. We will give you an answer as soon as possible. Thank you for your support!

Full name
E-mail
Phone number
Title
Message
Verification Code
Volume 43 Issue 1
Feb.  2021
Turn off MathJax
Article Contents
Zhou Qun,Wei Lixin. Impacts of the late spring Arctic Oscillation on the summer tropical cyclone frequency over the western North Pacific[J]. Haiyang Xuebao,2021, 43(1):82–92 doi: 10.12284/hyxb2021007
Citation: Zhou Qun,Wei Lixin. Impacts of the late spring Arctic Oscillation on the summer tropical cyclone frequency over the western North Pacific[J]. Haiyang Xuebao,2021, 43(1):82–92 doi: 10.12284/hyxb2021007

Impacts of the late spring Arctic Oscillation on the summer tropical cyclone frequency over the western North Pacific

doi: 10.12284/hyxb2021007
  • Received Date: 2019-06-04
  • Rev Recd Date: 2020-05-07
  • Available Online: 2021-01-06
  • Publish Date: 2021-01-25
  • In the present study, the connection between the Arctic Oscillation (AO) in May and the following summer (June to September) western North Pacific tropical cyclone genesis frequency is investigated based on NCEP/NCAR reanalysis data and tropical cyclone data from China Meteorological Administration for the period 1950–2018. A statistically significant positive correlation is found between the late spring AO and summer tropical cyclone genesis frequency. The diagnosis results show that the low-level relative vorticity, high-level divergence, vertical wind shear and the mid-low level relative humidity are all beneficial for the genesis of the western North Pacific tropical cyclones during the positive AO years. Moreover, the western Pacific subtropical high shifts eastward and northward and tends to be much weaker. On the contrary, during the negative AO years, the tropical cyclone formation is reduced because of the strengthened western Pacific subtropical high combined with an anticyclonic vorticity in the lower troposphere. The possible mechanism involved the variations of the storm track in the North Pacific. It is showed that during the positive (negative) AO years the storm track is moving northward (southward) and there is a cyclonic (an anticyclonic) vorticity anomaly in the lower troposphere in the western North Pacific in the subsequent summer through the interaction between the synoptic-scale eddies and low-frequency mean flow. The resulting anomalous local Hadley circulation could lead to the change of the western Pacific subtropical high and further contribute to the western North Pacific tropical cyclogenesis.
  • loading
  • [1]
    Chen Guanghua, Tam C Y. Different impacts of two kinds of Pacific Ocean warming on tropical cyclone frequency over the western North Pacific[J]. Geophysical Research Letters, 2010, 37(1): L01803.
    [2]
    Zhan Ruifen, Wang Yuqing, Lei Xiaotu. Contributions of ENSO and east Indian Ocean SSTA to the interannual variability of Northwest Pacific tropical cyclone frequency[J]. Journal of Climate, 2011, 24(2): 509−521.
    [3]
    Cao Xi, Chen Shangfeng, Chen Guanghua, et al. Intensified impact of northern tropical Atlantic SST on tropical cyclogenesis frequency over the western North Pacific after the late 1980s[J]. Advances in Atmospheric Sciences, 2016, 33(8): 919−930.
    [4]
    吴胜安, 李涛, 孔海江. 夏季西北太平洋台风生成数的敏感性因子[J]. 热带气象学报, 2011, 27(6): 797−804. doi: 10.3969/j.issn.1004-4965.2011.06.002

    Wu Sheng’an, Li Tao, Kong Haijiang. Sensitivity factors for typhoon genesis over the western North Pacific during July−September[J]. Journal of Tropical Meteorology, 2011, 27(6): 797−804. doi: 10.3969/j.issn.1004-4965.2011.06.002
    [5]
    Wang Huijun, Sun Jianqi, Fan Ke. Relationships between the North Pacific Oscillation and the typhoon/hurricane frequencies[J]. Science in China Series D: Earth Sciences, 2007, 50(9): 1409−1416.
    [6]
    崔绚, 周波涛, 范可. 卑尔根气候模式中亚洲−太平洋涛动和影响西北太平洋热带气旋频数的环流背景的关系[J]. 气候与环境研究, 2010, 15(2): 120−128.

    Cui Xuan, Zhou Botao, Fan Ke. Linkage between Asian-Pacific oscillation and the large-scale atmospheric circulations related to the tropical cyclone frequency over the western North Pacific in Bergen climate model[J]. Climatic and Environmental Research, 2010, 15(2): 120−128.
    [7]
    Choi K S, Cha Yumi, Kang S D, et al. Influence of the Arctic Oscillation on the TC activity around Taiwan[J]. Theoretical and Applied Climatology, 2014, 116(3/4): 695−706.
    [8]
    周群, 张润宇. 2017年7月西北太平洋热带气旋活动特征及其与北极涛动的联系[J]. 海洋预报, 2018, 35(4): 1−7. doi: 10.11737/j.issn.1003-0239.2018.04.001

    Zhou Qun, Zhang Runyu. Characteristic of tropical cyclone activity over the western North Pacific in July 2017 and its link to the arctic oscillation[J]. Marine Forecasts, 2018, 35(4): 1−7. doi: 10.11737/j.issn.1003-0239.2018.04.001
    [9]
    Zhou Botao, Cui Xuan. Interdecadal change of the linkage between the North Atlantic Oscillation and the tropical cyclone frequency over the western North Pacific[J]. Science China Earth Sciences, 2014, 57(9): 2148−2155.
    [10]
    高建芸, 吕心艳, 张秀芝, 等. 南海−西北太平洋季风槽中热带气旋群发的研究Ⅱ. 影响机制研究[J]. 海洋学报, 2011, 33(3): 28−37.

    Gao Jianyun, Lü Xinyan, Zhang Xiuzhi, et al. Research on the cluster of tropical cyclogenesis in the South China Sea−western North Pacific monsoon trough[J]. Haiyang Xuebao, 2011, 33(3): 28−37.
    [11]
    于玉斌. 冷空气影响热带气旋发生发展的研究进展[J]. 海洋学报, 2012, 34(3): 173−178.

    Yu Yubin. Research advances of cold air impacts on the tropical cyclone genesis and development[J]. Haiyang Xuebao, 2012, 34(3): 173−178.
    [12]
    Thompson D W J, Wallace J M. The Arctic Oscillation signature in the wintertime geopotential height and temperature fields[J]. Geophysical Research Letters, 1998, 25(9): 1297−1300.
    [13]
    Gong Daoyi, Wang Shaowu, Zhu Jinhong. East Asian winter monsoon and Arctic Oscillation[J]. Geophysical Research Letters, 2001, 28(10): 2073−2076.
    [14]
    Chen Wen, Yang Song, Huang Ronghui. Relationship between stationary planetary wave activity and the East Asian winter monsoon[J]. Journal of Geophysical Research, 2005, 110(14): D14110.
    [15]
    Chen Wen, Zhou Qun. Modulation of the Arctic Oscillation and the East Asian winter climate relationships by the 11-year solar cycle[J]. Advances in Atmospheric Sciences, 2012, 29(2): 217−226.
    [16]
    Gong Daoyi, Yang Jing, Kim S J, et al. Spring Arctic Oscillation-East Asian summer monsoon connection through circulation changes over the western North Pacific[J]. Climate Dynamics, 2011, 37(11): 2199−2216.
    [17]
    Wu Zhiwei, Wang Bin, Li Jianping, et al. An empirical seasonal prediction model of the East Asian summer monsoon using ENSO and NAO[J]. Journal of Geophysical Research Atmospheres, 2009, 114(D18): D18120.
    [18]
    Gu Wei, Li Chongyin, Li Weijing, et al. Interdecadal unstationary relationship between NAO and East China’s summer precipitation patterns[J]. Geophysical Research Letters, 2009, 36(13): L13702.
    [19]
    Tian Baoqiang, Fan Ke. Relationship between the late spring NAO and summer extreme precipitation frequency in the middle and lower reaches of the Yangtze River[J]. Atmospheric and Oceanic Science Letters, 2012, 5(6): 455−460.
    [20]
    龚道溢. 北极涛动对东亚夏季降水的预测意义[J]. 气象, 2003, 29(6): 3−6. doi: 10.3969/j.issn.1000-0526.2003.06.001

    Gong Daoyi. Arctic Oscillations’s significance for prediction of East Asian summer monsoon rainfall[J]. Meteorological Monthly, 2003, 29(6): 3−6. doi: 10.3969/j.issn.1000-0526.2003.06.001
    [21]
    Gong Daoyi, Ho C H. Arctic Oscillation signals in the East Asian summer monsoon[J]. Journal of Geophysical Research: Atmospheres, 2003, 108(D2): 4066.
    [22]
    Choi K S, Kang S D, Kim H D. Possible relationship between North Korean total rainfall and Arctic Oscillation in May[J]. Theoretical and Applied Climatology, 2013, 112(3/4): 483−494.
    [23]
    张乐英, 徐海明, 施宁. 春季北极涛动对盛夏长江流域地表气温的影响[J]. 大气科学, 2015, 39(5): 1049−1058.

    Zhang Leying, Xu Haiming, Shi Ning. Influence of the spring Arctic Oscillation on midsummer surface air temperature over the Yangtze River valley[J]. Chinese Journal of Atmospheric Sciences, 2015, 39(5): 1049−1058.
    [24]
    Chen Shangfeng, Yu Bin, Chen Wen. An analysis on the physical process of the influence of AO on ENSO[J]. Climate Dynamics, 2014, 42(3/4): 973−989.
    [25]
    Chen Shangfeng, Yu Bin, Chen Wen. An interdecadal change in the influence of the spring Arctic Oscillation on the subsequent ENSO around the early 1970s[J]. Climate Dynamics, 2015, 44(3/4): 1109−1126.
    [26]
    Zhou Shuntai, Miller A J. The interaction of the Madden–Julian oscillation and the Arctic oscillation[J]. Journal of Climate, 2005, 18(1): 143−159.
    [27]
    Choi K S, Byun H R. Possible relationship between western North Pacific tropical cyclone activity and Arctic Oscillation[J]. Theoretical and Applied Climatology, 2010, 100(3/4): 261−274.
    [28]
    Choi K S, Wu C C, Byun H R. Possible connection between summer tropical cyclone frequency and spring Arctic Oscillation over East Asia[J]. Climate Dynamics, 2012, 38(11/12): 2613−2629.
    [29]
    Cao Xi, Chen Shangfeng, Chen Guanghua, et al. On the weakened relationship between spring Arctic Oscillation and following summer tropical cyclone frequency over the western North Pacific: a comparison between 1968−1986 and 1989−2007[J]. Advances in Atmospheric Sciences, 2015, 32(10): 1319−1328.
    [30]
    黄荣辉, 皇甫静亮, 刘永, 等. 西太平洋暖池对西北太平洋季风槽和台风活动影响过程及其机理的最近研究进展[J]. 大气科学, 2016, 40(5): 877−896.

    Huang Ronghui, Huangfu Jingliang, Liu Yong, et al. Progress in recent research on the processes and physical mechanisms involved in the influence of the western Pacific warm pool on the monsoon trough and tropical cyclone activity over the western North Pacific[J]. Chinese Journal of Atmospheric Sciences, 2016, 40(5): 877−896.
    [31]
    张庆红, 郭春蕊. 热带气旋生成机制的研究进展[J]. 海洋学报, 2008, 30(4): 1−11.

    Zhang Qinghong, Guo Chunrui. Overview of the studies on tropical cyclone genesis[J]. Haiyang Xuebao, 2008, 30(4): 1−11.
    [32]
    Blackmon M L. A climatological spectral study of the 500 mb geopotential height of the Northern hemisphere[J]. Journal of the Atmospheric Sciences, 1976, 33(8): 1607−1623.
    [33]
    袁超, 徐海明. 春季北太平洋风暴轴的年际与年代际变化特征及其与太平洋海温异常的关系[J]. 气象学报, 2016, 74(6): 860−875.

    Yuan Chao, Xu Haiming. Inter-annual and inter-decadal variability of the spring storm track over the North Pacific and its association with SST anomalies[J]. Acta Meteorologica Sinica, 2016, 74(6): 860−875.
    [34]
    Zhan Ruifen, Wang Yuqing, Wen Min. The SST gradient between the southwestern Pacific and the western Pacific warm pool: a new factor controlling the northwestern Pacific tropical cyclone genesis frequency[J]. Journal of Climate, 2013, 26(7): 2408−2415.
    [35]
    Huo Liwei, Guo Pinwen, Hameed S N, et al. The role of tropical Atlantic SST anomalies in modulating western North Pacific tropical cyclone genesis[J]. Geophysical Research Letters, 2015, 42(7): 2378−2384.
    [36]
    Wang Lei. Contrasting two spring SST predictors for the number of western North Pacific tropical cyclones[J]. Atmospheric and Oceanic Science Letters, 2016, 9(6): 420−427.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Figures(8)

    Article views (401) PDF downloads(39) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return