两个云解析模型中导致对流自聚集路径不同的对流变化

IF 3 3区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES Journal of the Atmospheric Sciences Pub Date : 2023-05-26 DOI:10.1175/jas-d-22-0250.1
Jin-De Huang, Ching-Shu Hung, Chien‐Ming Wu, H. Miura
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引用次数: 0

摘要

在使用两个云解析模型SCALE和VVM的辐射对流平衡模拟中,对流可变性用于诊断对流自聚集(CSA)的不同途径。结果表明,对流在SCALE中经历逐渐增长,在VVM中经历快速转变,这与两个模型之间的不同机制有关。在SCALE中,与干燥环境相关的强辐射冷却驱动了来自干燥区域的环流,而干燥环境是由强沉降和地表通量供应不足造成的。辐射冷却驱动的循环推动对流聚集,这就是干辐射路径。在VVM中,CSA是由于潮湿地区对流系统驱动的循环快速增强而发展起来的,这是对流升级的途径。CSA发展的不同途径可归因于云大小谱确定的对流结构的升级过程。大尺度对流系统的升级可以增强VVM中潮湿区域的环流。在SCALE中,大型对流系统的罕见出现不足以产生环流,因为即使在没有对流系统的情况下,潮湿区域也可能发生补偿沉降。这项研究表明,模型之间的对流变化可能导致CSA的不同途径,机制否认实验也支持我们的分析。
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Convective Variabilities Leading to Different Pathways of Convective Self-aggregation in Two Cloud-resolving Models
Convective variability is used to diagnose different pathways towards convective self-aggregation (CSA) in radiative-convective equilibrium simulations with two cloud-resolving models, SCALE and VVM. The results show that convection undergoes gradual growth in SCALE and fast transition in VVM, which is associated with different mechanisms between the two models. In SCALE, strong radiative cooling associated with a dry environment drives the circulation from the dry region, and the dry environment results from strong subsidence and insufficient surface flux supply. The circulation driven by the radiative cooling then pushes convection aggregating, which is the dry-radiation pathway. In VVM, CSA develops due to the rapid strengthening of circulation driven by convective systems in the moist region, which is the convection-upscaling pathway. The different pathways of CSA development can be attributed to the upscale process of convective structures identified by the cloud size spectrum. The upscaling of large-size convective systems can enhance circulation from the moist region in VVM. In SCALE, the infrequent appearance of large convective systems is insufficient to generate circulation, as compensating subsidence can occur within the moist region even in the absence of convective systems. This study shows that the convective variabilities between models can lead to different pathways of CSA, and mechanism-denial experiments also support our analyses.
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来源期刊
Journal of the Atmospheric Sciences
Journal of the Atmospheric Sciences 地学-气象与大气科学
CiteScore
0.20
自引率
22.60%
发文量
196
审稿时长
3-6 weeks
期刊介绍: The Journal of the Atmospheric Sciences (JAS) publishes basic research related to the physics, dynamics, and chemistry of the atmosphere of Earth and other planets, with emphasis on the quantitative and deductive aspects of the subject. The links provide detailed information for readers, authors, reviewers, and those who wish to submit a manuscript for consideration.
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