Characteristics of the vertical structure of the atmospheric turbulence in the Tibetan Plateau

被引:0
作者
Kun Zhang
Yang Wu
Feifei Wang
Xuebin Li
Shengcheng Cui
Zihan Zhang
Xiaoqing Wu
Ningquan Weng
Tao Luo
Yinbo Huang
机构
[1] University of Science and Technology of China,School of Environmental Science and Optoeclectronic Technology
[2] Chinese Academy of Sciences,Key Laboratory of Atmospheric Optics, Anhui Institute of Optics and Fine Mechanics (AIOFM)
[3] University of Science and Technology of China,Science Island Branch of Graduate School
[4] Advanced Laser Technology Laboratory of Anhui Province,undefined
来源
Science China Earth Sciences | 2022年 / 65卷
关键词
Tibetan Plateau; Strong turbulent band; Thermal forcing; Stratosphere-troposphere exchange; Tropopause;
D O I
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中图分类号
学科分类号
摘要
The Tibetan Plateau (TP) has unique atmospheric dynamics and thermal structures that originate from its giant terrain and complex climate. High vertical-resolution thermal radiosondes were launched near the central (Lhasa, 91°06′E, 29°36′N, 3670 m above sea level (ASL)) and marginal (Da Qaidam, 95°21′E, 37°51′N, 3180 m ASL) areas of the TP during the summers of 2018 and 2020, respectively. Atmospheric turbulence parameters were calculated, and the characteristics of the atmospheric turbulent vertical structure at sunset in these two areas were analyzed and compared. Affected by TP thermal forcing and stably controlled by the summer monsoon anticyclone, the atmospheric refractive index structure constant (Cn2) tended to increase and then decrease with increasing height, reaching a maximum at the tropopause (∼18 km ASL) at the Lhasa site. Although Cn2 at the Da Qaidam site also tended to increase at the tropopause, the position of the strong turbulent band (STB) (5–7 km ASL) was below the tropopause height corresponding to the potential temperature lapse rate minimum. The vertical distribution of Cn2 at the two sites, particularly regarding the position of the STB, was highly correlated with the atmospheric stability (Ri) and the thermal mixing scale (LT). The significant correlations among the three parameters (STB, Ri, and LT) indicated that the strong fluctuations in temperature caused by thermal mixing were the dominant factor causing the Ri to be less than its critical value of 0.25. Moreover, the suppression strength involving the upward transport of the heat sources was the main reason for the different turbulent vertical structures and STB positions at the two sites. The zonal mean thermodynamic and dynamical fields derived from the reanalysis data also showed a height difference in the heat sources transported to the troposphere at the two sites. In the marginal TP, the material and energy in the lower troposphere were transported by the turbulent atmosphere upward along the slope of the mountain and converged at the central TP (28°N–35°N) with strong thermal forcing up to the tropopause. In the STB of the Lhasa site, the turbulent dissipation rate and eddy diffusion coefficient increased sharply, indicating that the turbulent atmosphere in this central site was highly diffused, and the small-scale turbulence transported the material and energy upward.
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页码:1368 / 1378
页数:10
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共 191 条
[1]  
Alappattu D P(2010)First observations of turbulence parameters in the troposphere over the Bay of Bengal and the Arabian Sea using radiosonde J Geophys Res 115 D06105-495
[2]  
Kunhikrishnan P K(1988)Estimating J Opt Soc Am A 5 481-533
[3]  
Andreas E L(2012) over snow and sea ice from meteorological data J Geophys Res 117 D05302-435
[4]  
Bergman J W(2020)Seasonal differences of vertical-transport efficiency in the tropical tropopause layer: On the interplay between tropical deep convection, large-scale vertical ascent, and horizontal circulations Natl Sci Rev 7 516-51
[5]  
Jensen E J(2012)Transport of Asian surface pollutants to the global stratosphere from the Tibetan Plateau region during the Asian summer monsoon Theor Appl Climatol 110 423-852
[6]  
Pfister L(2021)On the origin and destination of atmospheric moisture and air mass over the Tibetan Plateau Sci China Earth Sci 64 37-3164
[7]  
Yang Q(2008)Ergodicity of turbulence measurements upon complex terrain in Loess Plateau J Atmos Ocean Tech 25 833-5669
[8]  
Bian J(2008)On turbulence and mixing in the free atmosphere inferred from high-resolution soundings J Clim 21 3149-924
[9]  
Li D(2006)Weakening trend in the atmospheric heat source over the Tibetan Plateau during recent decades. Part I: Observations Proc Natl Acad Sci USA 103 5664-1604
[10]  
Bai Z(2003)Short circuit of water vapor and polluted air to the global stratosphere by convective transport over the Tibetan Plateau Geophys Res Lett 30 1171-1340