Basset H A, Ali A M. Diagnostic of cyclogenesis using potential vorticity[J]. Atmósfera, 2006, 19(4): 213-234.
[2]
Madden R A, Julian P R. Detection of a 40-50 day oscillation in the zonal wind in the tropical Pacific[J]. J Atmos Sci, 1971, 28: 702-708. 2.0.CO;2 target="_blank">
[3]
Bracegirdle T J, Gray S L. The dynamics of a polar low assessed using potential vorticity inversion[J]. Quart J Roy Meteor Soc, 2009, 135: 880-893.
Murakami M. 30-40 day global atmospheric changes during the northern summer 1979[J]. GARP Special Report, 1984, 44: 113-116.
[7]
Wu C C, Emanuel K A. Potential vorticity diagnostics of hurricane movement. Part I: A case study of Hurricane Bob (1991)[J]. Mon Wea Rev, 1995, 123: 69-92. 2.0.CO;2 target="_blank">
[8]
Lau K M, Chan P H. Aspects of the 40-50 day oscillation during the northern winter as inferred from out going long-wave radiation[J]. Mon Wea Rev, 1985, 113: 1889-1909. 2.0.CO;2 target="_blank">
[9]
Li C Y. Intraseasonal (30-50 day) oscillation in the atmosphere[R]. Summer School on Large-Scale Dynamics of the Atmosphere, Beijing, 5-20 August 1988, 361-393.
[10]
Wu C C, Emanuel K A. Potential vorticity diagnostics of hurricane movement. Part II: Tropical storm Ana (1991) and hurricane Andrew (1992)[J]. Mon Wea Rev, 1995, 123: 93-109. 2.0.CO;2 target="_blank">
[11]
Chen L X, Xie A. Westward propagation low-frequency oscillation and its teleconnection in the eastern hemisphere[J]. Acta Meteor Sini, 1988, 3(2): 300-312.
Wang X B, Zhang D L. Potential vorticity diagnosis of a simulated hurricane. Part I: Formulation and quasi-balanced flow[J]. J Atmos Sci, 2003, 60: 1593-1607.
Zhang D L, Kieu C Q. Potential vorticity diagnosis of a simulated hurricane. Part II: Quasi-balanced contributions to forced secondary circulations[J]. J Atmos Sci, 2006, 63: 2898-2914.
[22]
Kieu C Q, Zhang D L. A piecewise potential vorticity inversion algorithm and its application to hurriance inner-core anomalies[J]. J Atmos Sci, 2010, 67: 2616-2631.
[23]
Yang Hui, Li Chongyin. The relation between atmospheric intraseasonal oscillation and summer severe flood and drought in the Changjiang-Huaihe River basin[J]. Adv Atmos Sci, 2003, 20(4): 540-553.
Charney J G. The use of the primitive equations of motion in numerical prediction[J]. Tellus, 1955, 7: 22-26.
[34]
Mann M E, Park J. Global-scale modes of surface temperature variability on interannual to century timescales[J]. J Geophys Res, 1994, 99(D12): 25819-25833.
[35]
Bretherton F P. Critical layer instability in baroclinic flows[J]. Quart J Roy Meteor Soc, 1966, 92: 325-334.
[36]
Mann M E, Park J. Joint spatio-temporal modes of surface temperature and sea level pressure variability in the Northern Hemisphere during the last century[J]. J Climate, 1996, 9: 2137-2162. 2.0.CO;2 target="_blank">
[37]
Rossby C G. Planetary flow patterns in the atmosphere[J]. Quart J Roy Meteor Soc, 1940, 66(Suppl): 68-87.
[38]
Ertel H. Ein neuer hydrodynamischer wirbelsatz[J]. Meteor Z, 1942, 59: 277-281.
[39]
Mann M E, Park J. Oscillatory spatiotemporal signal detection in climate studies: A multiple-taper spectral domain approach[J]. Advances in Geophysics, 1999, 41: 1-131.
[40]
Mundell D B. Prediction of tropical cyclone rapid intensification events[D]. Colorado: Department of Atmospheric Science, Colorado State University, 1990: 186.