Vertical Structures of Convective and Stratiform Clouds in Boreal Summer over the Tibetan Plateau and Its Neighboring Regions
Creators
- 1. Chinese Academy of Sciences, State Key Laboratory of Numerical Modeling for Atmospheric Sciences and Geophysical Fluid Dynamics, Institute of Atmospheric Physics (China)
Description
Cloud is essential in the atmosphere, condensing water vapor and generating strong convective or large-scale persistent precipitation. In this work, the relationships between cloud vertical macro- or microphysical properties, radiative heating rate, and precipitation for convective and stratiform clouds in boreal summer over the Tibetan Plateau (TP) are analyzed and compared with its neighboring land and tropical oceans based on CloudSat/CALIPSO satellite measurements and TRMM precipitation data. The precipitation intensity caused by convective clouds is twofold stronger than that by stratiform clouds. The vertical macrophysics of both cloud types show similar features over the TP, with the region weakening the precipitation intensity and compressing the cloud vertical expansion and variation in cloud top height, but having an uplift effect on the average cloud top height. The vertical microphysics of both cloud types under conditions of no rain over the TP are characterized by lower-level ice water, ice particles with a relatively larger range of sizes, and a relatively lower occurrence of denser ice particles. The features are similar to other regions when precipitation enhances, but convective clouds gather denser and larger ice particles than stratiform clouds over the TP. The atmospheric shortwave (longwave) heating (cooling) rate strengthens with increased precipitation for both cloud types. The longwave cooling layer is thicker when the rainfall rate is less than 100 mm d−1, but the net heating layer is typically compressed for the profiles of both cloud types over the TP. This study provides insights into the associations between clouds and precipitation, and an observational basis for improving the simulation of convective and stratiform clouds over the TP in climate models.
Abstract (Chinese)
摘要
云通过凝结水汽形成强对流性降水或大范围持续性降水在大气中扮演着重要的角色. 本文采用CloudSat/CALIPSO卫星资料和TRMM降水资料, 对比研究了夏季青藏高原与其临近陆地和海洋地区对流云和层状云宏, 微观垂直结构, 云辐射加热和降水的关系. 研究发现对流云造成的平均降水强度是层状云的两倍. 青藏高原对流云和层状云的宏观垂直结构具有相似的特征, 高原大地形的存在削弱了降水强度, 压缩了云体垂直扩张范围, 但是抬升了平均云顶高度. 与其它地区相比, 当无降水发生时, 青藏高原对流云和层状云的微观垂直结构都具有云中固态水分布高度低, 固态粒子尺寸丰富, 数浓度较大的固态粒子群更不容易出现等特点. 随着降水增强, 青藏高原上对流云和层状云的微观垂直结构均表现出与其它地区相似的特征, 但是与层状云相比, 青藏高原上的对流云具有更密集, 更大尺寸的粒子群. 两种类型云出现时, 大气短波(长波)加热(冷却)率均随着降水增强而增强. 当两种类型云的降水强度小于100 mm d−1时, 与其它地区相比, 高原上的长波辐射冷却层较厚, 净辐射加热层被显著压缩. 本研究提供了云和降水之间关系的新视角, 为气候模式中青藏高原地区对流云和层状云的参数化改进提供了观测基础.Additional details
Identifiers
Publishing Information
- Journal Title
- Advances in Atmospheric Sciences (Internet)
- Journal Volume
- 36
- Journal Issue
- 10
- Journal Page Range
- p. 1089-1102
- ISSN
- 1861-9533
INIS
- Country of Publication
- China
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 54072323
- Subject category
- S54: ENVIRONMENTAL SCIENCES; S58: GEOSCIENCES;
- Descriptors DEI
- CLIMATE MODELS; COMPUTERIZED SIMULATION; COOLING; EARTH ATMOSPHERE; ENVIRONMENT; HEATING RATE; ICE; RAIN; SATELLITES; SEAS; WATER VAPOR
- Descriptors DEC
- ATMOSPHERIC PRECIPITATIONS; FLUIDS; GASES; MATHEMATICAL MODELS; SIMULATION; SURFACE WATERS; VAPORS
Optional Information
- Copyright
- Copyright (c) 2019 Institute of Atmospheric Physics/Chinese Academy of Sciences, and Science Press and Springer-Verlag GmbH Germany, part of Springer Nature