Spatiotemporal characteristics of atmospheric turbulence over China estimated using operational high-resolution soundings

Large-scale in situ observations are sorely lacking, leading to poor understanding of nationwide atmospheric turbulence over China. Nevertheless, high-resolution soundings have become available starting in 2011, providing a unique opportunity to investigate turbulence across China. Here, we calculat...

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Main Authors: Yanmin Lv, Jianping Guo, Jian Li, Lijuan Cao, Tianmeng Chen, Ding Wang, Dandan Chen, Yi Han, Xiaoran Guo, Hui Xu, Lin Liu, Raman Solanki, Gang Huang
Format: Article
Language:English
Published: IOP Publishing 2021-01-01
Series:Environmental Research Letters
Subjects:
Online Access:https://doi.org/10.1088/1748-9326/abf461
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author Yanmin Lv
Jianping Guo
Jian Li
Lijuan Cao
Tianmeng Chen
Ding Wang
Dandan Chen
Yi Han
Xiaoran Guo
Hui Xu
Lin Liu
Raman Solanki
Gang Huang
author_facet Yanmin Lv
Jianping Guo
Jian Li
Lijuan Cao
Tianmeng Chen
Ding Wang
Dandan Chen
Yi Han
Xiaoran Guo
Hui Xu
Lin Liu
Raman Solanki
Gang Huang
author_sort Yanmin Lv
collection DOAJ
description Large-scale in situ observations are sorely lacking, leading to poor understanding of nationwide atmospheric turbulence over China. Nevertheless, high-resolution soundings have become available starting in 2011, providing a unique opportunity to investigate turbulence across China. Here, we calculated the mean turbulence dissipation rate ( ϵ ) from radiosonde measurements across China for the period 2011–2018 using Thorpe analysis. The atmospheric layers that had stronger turbulence indicated by larger ϵ generally came with larger Thorpe length but with smaller Brunt–Väisälä frequency. Overall, the clear-air ϵ in the free atmosphere exhibited large spatial variability with a ‘south-high north-low’ pattern. Large clear-air ϵ values were observed in both the lower stratosphere (LS) and upper troposphere (UT), especially over the Tibetan Plateau (TP) and its neighboring regions with complex terrain likely due to large-amplitude mountain waves. Particularly, less frequent but more intense clear-air turbulence was observed in both lower troposphere (LT) and UT over the TP, while more frequent, less intense clear-air turbulence was found in northern China. The all-sky turbulence considering the moist-saturation effects was much stronger in the troposphere, notably in southern China where convective clouds and precipitation oftentimes dominated. In the vertical direction, the altitude of peak clear-air ϵ in the troposphere was found to decrease poleward, broadly consistent with the meridional gradient of tropopause height in the Northern Hemisphere. A double-peak mode stood out for the profiles of clear-air ϵ at midlatitudes to the north of 30° N in winter: one peak was at altitudes of 15–18 km, and another at altitudes of 5–8 km. The strong shear instabilities around the westerly jet stream could account for the vertical bimodal structures. The seasonality of ϵ was also pronounced, reaching maxima in summer and minima in winter. Our results may help understand and avoid clear-air turbulence, as related to aviation safety among other issues.
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spelling doaj.art-1ff4de8b7df44e3ab70abb02147f7c462023-08-09T14:57:32ZengIOP PublishingEnvironmental Research Letters1748-93262021-01-0116505405010.1088/1748-9326/abf461Spatiotemporal characteristics of atmospheric turbulence over China estimated using operational high-resolution soundingsYanmin Lv0Jianping Guo1https://orcid.org/0000-0001-8530-8976Jian Li2Lijuan Cao3Tianmeng Chen4Ding Wang5Dandan Chen6Yi Han7Xiaoran Guo8Hui Xu9Lin Liu10Raman Solanki11Gang Huang12State Key Laboratory of Severe Weather, Chinese Academy of Meteorological Sciences , Beijing 100081, People’s Republic of ChinaState Key Laboratory of Severe Weather, Chinese Academy of Meteorological Sciences , Beijing 100081, People’s Republic of ChinaState Key Laboratory of Severe Weather, Chinese Academy of Meteorological Sciences , Beijing 100081, People’s Republic of ChinaNational Meteorological Information Center, China Meteorological Administration , Beijing 100081, People’s Republic of ChinaState Key Laboratory of Severe Weather, Chinese Academy of Meteorological Sciences , Beijing 100081, People’s Republic of ChinaState Key Laboratory of Severe Weather, Chinese Academy of Meteorological Sciences , Beijing 100081, People’s Republic of ChinaState Key Laboratory of Severe Weather, Chinese Academy of Meteorological Sciences , Beijing 100081, People’s Republic of ChinaState Key Laboratory of Severe Weather, Chinese Academy of Meteorological Sciences , Beijing 100081, People’s Republic of ChinaState Key Laboratory of Severe Weather, Chinese Academy of Meteorological Sciences , Beijing 100081, People’s Republic of ChinaState Key Laboratory of Severe Weather, Chinese Academy of Meteorological Sciences , Beijing 100081, People’s Republic of ChinaState Key Laboratory of Severe Weather, Chinese Academy of Meteorological Sciences , Beijing 100081, People’s Republic of ChinaState Key Laboratory of Severe Weather, Chinese Academy of Meteorological Sciences , Beijing 100081, People’s Republic of ChinaState Key Laboratory of Numerical Modeling for Atmospheric Sciences and Geophysical Fluid Dynamics, Institute of Atmospheric Physics, Chinese Academy of Sciences , Beijing 100029, People’s Republic of ChinaLarge-scale in situ observations are sorely lacking, leading to poor understanding of nationwide atmospheric turbulence over China. Nevertheless, high-resolution soundings have become available starting in 2011, providing a unique opportunity to investigate turbulence across China. Here, we calculated the mean turbulence dissipation rate ( ϵ ) from radiosonde measurements across China for the period 2011–2018 using Thorpe analysis. The atmospheric layers that had stronger turbulence indicated by larger ϵ generally came with larger Thorpe length but with smaller Brunt–Väisälä frequency. Overall, the clear-air ϵ in the free atmosphere exhibited large spatial variability with a ‘south-high north-low’ pattern. Large clear-air ϵ values were observed in both the lower stratosphere (LS) and upper troposphere (UT), especially over the Tibetan Plateau (TP) and its neighboring regions with complex terrain likely due to large-amplitude mountain waves. Particularly, less frequent but more intense clear-air turbulence was observed in both lower troposphere (LT) and UT over the TP, while more frequent, less intense clear-air turbulence was found in northern China. The all-sky turbulence considering the moist-saturation effects was much stronger in the troposphere, notably in southern China where convective clouds and precipitation oftentimes dominated. In the vertical direction, the altitude of peak clear-air ϵ in the troposphere was found to decrease poleward, broadly consistent with the meridional gradient of tropopause height in the Northern Hemisphere. A double-peak mode stood out for the profiles of clear-air ϵ at midlatitudes to the north of 30° N in winter: one peak was at altitudes of 15–18 km, and another at altitudes of 5–8 km. The strong shear instabilities around the westerly jet stream could account for the vertical bimodal structures. The seasonality of ϵ was also pronounced, reaching maxima in summer and minima in winter. Our results may help understand and avoid clear-air turbulence, as related to aviation safety among other issues.https://doi.org/10.1088/1748-9326/abf461radiosondeturbulenceChinaThorpe analysisconvectionorographic gravity wave
spellingShingle Yanmin Lv
Jianping Guo
Jian Li
Lijuan Cao
Tianmeng Chen
Ding Wang
Dandan Chen
Yi Han
Xiaoran Guo
Hui Xu
Lin Liu
Raman Solanki
Gang Huang
Spatiotemporal characteristics of atmospheric turbulence over China estimated using operational high-resolution soundings
Environmental Research Letters
radiosonde
turbulence
China
Thorpe analysis
convection
orographic gravity wave
title Spatiotemporal characteristics of atmospheric turbulence over China estimated using operational high-resolution soundings
title_full Spatiotemporal characteristics of atmospheric turbulence over China estimated using operational high-resolution soundings
title_fullStr Spatiotemporal characteristics of atmospheric turbulence over China estimated using operational high-resolution soundings
title_full_unstemmed Spatiotemporal characteristics of atmospheric turbulence over China estimated using operational high-resolution soundings
title_short Spatiotemporal characteristics of atmospheric turbulence over China estimated using operational high-resolution soundings
title_sort spatiotemporal characteristics of atmospheric turbulence over china estimated using operational high resolution soundings
topic radiosonde
turbulence
China
Thorpe analysis
convection
orographic gravity wave
url https://doi.org/10.1088/1748-9326/abf461
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