William P. Mahoney III.Gust front characteristics and the kinematics associated with interacting thunderstorm outflows[J]. Mon Wea Rev, 1988, 116(7): 1474-1491.
[2]
Peter T M. Thermodynamic and vertical velocity structure of two gust fronts observed with a wind profiler/RASS during MCTEX[J]. Mon Wea Rev, 1999, 127(8): 1796-1807.
[3]
Brooks E, Martner. Vertical Velocities in a Thunderstorm Gust Front and Outflow[J]. J Appl Meteor, 1997, 36(5): 615-622.
Caniaus G, Lafore J P, Redelsperger J L. A numerical study of the stratiform region of a fast-moving squall line. Part II: Relation between mass, pressure, and momentum fields [J]. J Atmos Sci, 1995, 52(3): 331-352.
[12]
David E Kingsmill. Convection initiation associated with a sea-breeze front, a gust front, and their collision[J]. Mon Wea Rev, 1995, 123(10): 2913-2933.
[13]
Andrew C, John D, Tuttle. Numerical simulations initialized with radar-derived winds. Part II: Forecasts of three gust front cases[J]. Mon Wea Rev, 1994, 122(6): 1204-1217.
[14]
Andrew NC. Sun Juanzhen.Analysis and forecasting of the low-level wind during the sydney 2000 forecast demonstration project[J]. Weather Foresting, 2004, 19(1): 151-167.
Hu Ming, Ming Xue, et al. 3DVAR and cloud analysis with WSR-88D level-II data for the prediction of the fort worth, Texas, tornadic thunderstorms. Part I: Cloud analysis and its impact[J]. Mon Wea Rev, 2006, 134(2): 675 698.
[17]
Hu Ming, Ming Xue, et al.3DVAR and cloud analysis with WSR-88D level-II data for the prediction of the fort worth, Texas, Tornadic thunderstorms. Part II: Impact of radial velocity analysis via 3DVAR[J]. Mon Wea Rev, 2006, 134(2): 699-721.