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Analysis and Ensemble Numerical Simulation of a Springtime Bow-Echo Event in South China
Analysis and Ensemble Numerical Simulation of a Springtime Bow-Echo Event in South China
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Analysis and Ensemble Numerical Simulation of a Springtime Bow-Echo Event in South China
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Analysis and Ensemble Numerical Simulation of a Springtime Bow-Echo Event in South China
Analysis and Ensemble Numerical Simulation of a Springtime Bow-Echo Event in South China

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Analysis and Ensemble Numerical Simulation of a Springtime Bow-Echo Event in South China
Analysis and Ensemble Numerical Simulation of a Springtime Bow-Echo Event in South China
Journal Article

Analysis and Ensemble Numerical Simulation of a Springtime Bow-Echo Event in South China

2026
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Overview
The present work examines a severe, long-lived bow echo in South China during 12–13 April 2016 and investigates the favorable factors for its strength and longevity using a series of 20 cloud-resolving ensemble experiments. Analysis of observational data indicated that this system developed near a surface front under unstable and favorable conditions with dynamic uplifting by approaching troughs at 500–700 hPa. After formation, it propagated rapidly toward the east–southeast across South China and made landfall in Southern Taiwan. The ensemble used four different datasets as initial and boundary conditions and started at five different initial times, whereby comparing the better-performing members with worse ones, four key factors promoting its strength and longevity were identified: (1) A stronger and moister low-level southwesterly flow to the south of the front to enhance convergence and moisture flux at the leading edge—where a stronger inflow with higher equivalent potential temperature (θe) values could feed into the bow echo—leading to a stronger and taller updraft and overall more abundant hydrometeors and rainfall; (2) stronger northwesterly to westerly winds near 700 hPa and thus stronger low-level vertical wind shear, resulting in a stronger rear inflow jet (RIJ), bookend vortices behind the bow apex, and, eventually, a faster propagation speed; (3) a deeper low to the northeast of the bow echo near 850 hPa, where its circulation also helped to bring in low-θe air from farther away and enhance the RIJ and cold pool; and (4) a convective initiation location farther to the east in a more favorable environment, with higher θe and a faster speed to remain in such a better environment. Helped by the above factors, the bow echo in the present case could reach the observed severity and long duration (~15 h) through interactions and reinforcement among its structural components, including the tilted updraft/downdraft, the low-level inflow and stratiform region, the RIJ and bookend vortices, and the cold pool and gust front.