Jezewski R H, D F Tucker. Large hail distribution on high plains[C]. Preprints, 16th conf. on WAF, 1988: 329-331
[5]
Polston K L. Synoptic patterns and environmental conditions associated with very large hail events[C].Preprints, 18th conf. on severe local storms. 1996: 349-356
[6]
Mitchell M J, R Arritt, K Labas. A climatology of the warm season Great plains low\|level jet using wing profiler observations[J]. Wea Forecasting, 1995, 10: 576-591
Koch S E, C O′Handely. Operational forecasting and detection of mesoscale gravity wave[J].Wea Forecasting, 1997,12(2):253-281
[13]
Browning K A, R J Donaldson. Airflow and structure of a tornadic storm[J]. J Atmos Sci, 1963, 20: 533-545
[14]
Browning K A. The evolution of tornadic storms[J]. J Atmos Sci, 1965, 22: 664-668
[15]
Browning K A, G B Foote. Airflow and hail growth in super cellstorms and some implication for hail suppression[J]. Quart J Roy Meteor Soc, 1976, 102: 499-533
Sun Jisong, Wang Hua, Wang Ling, et al. The role of urban boundary layer in local convective torrential rain happening in Beijingon 10 July 2004[J]. ChineseJ Atmos Sci, 2006, 30(4): 383-400
Koch S E, E G Robert, B D Paul. A mesoscale gravity wave event observed during CCOPE. Part Ⅱ: Interactions between mesoscale convective systems and the antecedent waves[J]. Mon Wea Rev, 1998, 116(12): 2545-2569
[29]
Koch S E, P B Dorian.A mesoscale gravity wave event observed during CCOPE. Part Ⅲ: Wave environment and probable sourcemechanism[J]. Mon Wea Rev, 1998, 116(12): 2570-2592
[30]
Rauber R M, Yang Muquan, M K Ramamurthy, et al. Origin, evolution, and finescale structure of the St. Valentine's Day mesoscale gravity wave observed during STORM-FEST. Part I: Origin and evolution[J].Mon Wea Rev, 2001, 129(2): 198-217