Zhang, A. Q., W. B. Li, S. M. Chen, Y. L. Chen, and Y. F. Fu, 2021: Satellite observations of reflectivity maxima above the freezing level induced by terrain. Adv. Atmos. Sci., 38(4), 627−640, https://doi.org/10.1007/s00376-020-0221-5.
Citation: Zhang, A. Q., W. B. Li, S. M. Chen, Y. L. Chen, and Y. F. Fu, 2021: Satellite observations of reflectivity maxima above the freezing level induced by terrain. Adv. Atmos. Sci., 38(4), 627−640, https://doi.org/10.1007/s00376-020-0221-5.

Satellite Observations of Reflectivity Maxima above the Freezing Level Induced by Terrain

  • Previous studies have recognized reflectivity maxima above the freezing level (RMAF) within stratiform precipitation over mountain slopes, however, quantitative studies are limited due to the lack of adequate identification criteria. Here, we establish an identification method for RMAF precipitation and apply it to the Tropical Rainfall Measuring Mission (TRMM) Precipitation Radar (PR) observations. Using the TRMM 2A25 product from 1998 to 2013, we show that the RMAF structure in reflectivity profiles can be effectively identified. RMAF exists not only in stratiform precipitation but also in convective precipitation. RMAF frequency is positively correlated with elevation, which is thought to be caused by enhanced updrafts in the middle layers of stratiform precipitation, or in the low to middle layers of convective precipitation over mountains. The average RMAF heights in stratiform and convective precipitation were 1.35 and 2.01 km above the freezing level, respectively, which is lower than previous results. In addition, our results indicate that the RMAF structure increased the echo top height and enhanced precipitation processes above the RMAF height, but it suppressed the downward propagation of ice particles and the near-surface rain rate. Future studies of orographic precipitation should take into account the impact of the RMAF structure and its relevant dynamic triggers.
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