The Unreasonable Efficiency of Total Rain Evaporation Removal in Triggering Convective Self-Aggregation

被引:0
|
作者
Hwong, Y. -L. [1 ]
Muller, C. J. [1 ]
机构
[1] IST Austria, Klosterneuburg, Austria
基金
欧洲研究理事会;
关键词
convective self-aggregation; radiative-convective equilibrium; rain evaporation; cloud-resolving modeling; VERTICAL WIND SHEARS; TROPICAL CONVECTION; DIABATIC PROCESSES; COLD POOLS; CIRCULATION; EQUILIBRIUM; ORGANIZATION; SENSITIVITY; ENERGY; MODEL;
D O I
10.1029/2023GL106523
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
The elimination of rain evaporation in the planetary boundary layer (PBL) has been found to lead to convective self-aggregation (CSA) even without radiative feedback, but the precise mechanisms underlying this phenomenon remain unclear. We conducted cloud-resolving simulations with two domain sizes and progressively reduced rain evaporation in the PBL. Surprisingly, CSA only occurred when rain evaporation was almost completely removed. The additional convective heating resulting from the reduction of evaporative cooling in the moist patch was found to be the trigger, thereafter a dry subsidence intrusion into the PBL in the dry patch takes over and sets CSA in motion. Temperature and moisture anomalies oppose each other in their buoyancy effects, hence explaining the need for almost total rain evaporation removal. We also found radiative cooling and not cold pools to be the leading cause for the comparative ease of CSA to take place in the larger domain. Convective clouds are not randomly scattered across the sky but tend to clump together, a phenomenon known as convective self-aggregation (CSA). The interaction between clouds and radiation is a key mechanism for CSA to occur. Curiously, CSA can still take place without this radiative feedback, provided that rain is prohibited from evaporating in the lowest layers of the atmosphere (similar to 1 km), called the planetary boundary layer (PBL). To investigate the physical processes behind this type of CSA (no-evaporation CSA, or "NE-CSA"), we ran high resolution atmospheric model simulations and reduced rain evaporation in steps in the PBL. We found that the additional heat resulting from the reduction of evaporative cooling is crucial in triggering NE-CSA, thereafter the invasion of dry air into the PBL in the dry region takes over and intensifies aggregation. Surprisingly, allowing even a minuscule amount of rain to evaporate prevents NE-CSA from taking place. This is because removing rain evaporation has two opposing effects on convection: heating and drying. The former aids convection while the latter hinders it. Only when rain evaporation is almost completely eliminated can the heating effect be powerful enough to overcome the drying effect and kick-start NE-CSA. When rain evaporation is removed in the PBL, convective self-aggregation (CSA) is triggered by convective heating of the moist regions Surprisingly, CSA only occurs when rain evaporation is almost totally removed in the PBL, due to opposing temperature and moisture effects CSA occurs more easily in a larger domain due to stronger radiatively induced subsidence, while cold pools play a less significant role
引用
收藏
页数:10
相关论文
共 46 条
  • [41] SELF-AGGREGATION OF BOVINE SKIN PROTEODERMATAN SULFATE PROMOTED BY REMOVAL OF THE 3 N-LINKED OLIGOSACCHARIDES
    SCOTT, PG
    DODD, CM
    CONNECTIVE TISSUE RESEARCH, 1990, 24 (3-4) : 225 - 236
  • [42] The Initiation of Dry Patches in Cloud-Resolving Convective Self-Aggregation Simulations: Boundary Layer Dry-Subsidence Feedback
    Yang, Bolei
    Tan, Zhe-Min
    JOURNAL OF THE ATMOSPHERIC SCIENCES, 2020, 77 (12) : 4129 - 4141
  • [43] Modulation of Tropical Convection-Circulation Interaction by Aerosol Indirect Effects in Convective Self-Aggregation Simulations of a Gray Zone Global Model
    Su, Chun-Yian
    Wu, Chien-Ming
    Chen, Wei-Ting
    Peters, John M.
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2024, 129 (06)
  • [44] Efficiency improvement of polymer solar cells with random micro-nanostructured back electrode formed by active layer self-aggregation
    Li, Xiong
    Hu, Yufeng
    Deng, Zhenbo
    Xu, Denghui
    Hou, Yanbing
    Lou, Zhidong
    Teng, Feng
    ORGANIC ELECTRONICS, 2017, 41 : 362 - 368
  • [45] Strategic synthesis of [Cu2], [Cu4] and [Cu5] complexes: inhibition and triggering of ligand arm hydrolysis and self-aggregation by chosen ancillary bridges
    Das, Manisha
    Canaj, Angelos B.
    Bertolasi, Valerio
    Murrie, Mark
    Ray, Debashis
    DALTON TRANSACTIONS, 2018, 47 (47) : 17160 - 17176
  • [46] Exploring the potential of Aspergillus terreus 2021, WLL-ISO: A dual-functional agent for heavy metal removal and self-aggregation in wastewater treatment
    Wang, Ling -ling
    Zhang, Kai-ming
    Yin, Zheng-yan
    Yu, Lei
    Qiu, Xu-hai
    Zhou, Shao-hua
    Chen, Rong-ping
    Wang, Quan
    SEPARATION AND PURIFICATION TECHNOLOGY, 2024, 350