Characteristics of Atmospheric Diabatic Heating of the Southwest China Vortex That Induces Extreme Rainstorms in Sichuan
Abstract
:1. Introduction
2. Data and Methods
2.1. Data
2.2. Calculation Methods
2.3. Dynamic Synthesis Method
2.4. Case Selection
- (1)
- The daily rainfall (12–12 or 00–00 h) at one station in 156 countries is ≥250 mm, i.e., an extreme rainstorm case. When it occurs at the same time at 12–12 and 00–00 h, the maximum rainfall period is counted as an individual case, and this condition represents an extreme rainstorm case.
- (2)
- The SWCV appeared before the extreme rainstorm, and, during the period of the extreme rainstorm, the SWCV appeared more than 12 consecutive times in the reanalysis data at 1 h intervals. Moreover, at least one station with more than 250 mm of precipitation was within 200 km of the center of the SWCV.
3. Statistical Characteristics of SWCV
3.1. Analysis of Rainfall Characteristics
3.2. Analysis of Circulation Background Characteristics
4. Distribution Characteristics of Diabatic Heating
4.1. Evolution of Diabatic Heating
4.2. Horizontal Distribution of Diabatic Heating
4.3. Vertical Distribution of Diabatic Heating Rate
4.4. Diabatic Heating Rate Components
5. Effect of Non-Uniform Heating for the SWCV
5.1. Effect of Spatially Non-Uniform Heating
5.2. Effect of Vertically Non-Uniform Heating
5.3. Effect of Horizontally Non-Uniform Heating
6. Conclusions and Discussion
- (1)
- The maximum precipitation centers were all within 150 km of the SWCV’s center; 50% were located in the southeastern quadrant and 31% were located in the northeastern quadrant. The eastern half of the SWCV was the primary area of maximum precipitation in terms of the extreme rainstorm weather caused by the SWCV; this demonstrates the asymmetry in the distribution of the extreme precipitation caused by the SWCV.
- (2)
- The variation in atmospheric diabatic heating was consistent with the intensity of the SWCV and precipitation; however, the sharp increase (decrease) in diabatic heating was faster than the increase (decrease) in the positive vorticity. The vertically integrated diabatic heating was the strongest in the vital stage of the extreme rainstorms caused by the SWCV. The large-value area of the “western type” was located in the center and northeast of the SWCV, and the large-value area of the “eastern type” was located in the southwestern airflow to the east of the Southwest China vortex.
- (3)
- In the vital stage, the SWCV developed vertically with the height, and its center showed a vertical structure that tilted towards the northwest with the height. The diabatic heating rates above the two types of SWCV were positive, with the highest heating rate in the vital stage. The range, intensity, and height of the heating rate of the “western type” were greater than those of the “eastern type”. The variation in the diabatic heating rate was mainly due to vertical transportation.
- (4)
- The spatially non-uniform heating effects had similarities and were the strongest heating effects in the vital stage. The heating effect resulted in a high-value area in the “western type” located to the southeast of the SWCV, showing an asymmetric distribution on both the southeastern and northwestern sides. The heating effect resulted in a high-value area in the “eastern type” located to the northeast of the SWCV, showing an asymmetric distribution on both the northeastern and southwestern sides. The heating effect’s positive value area corresponded to the heavy precipitation area.
- (5)
- The vertically non-uniform heating term plays a decisive role in the distribution and evolution of the spatially non-uniform heating term. The vertically non-uniform heating effect affects the intensity evolution of the SWCV, the horizontally non-uniform heating effect was weaker than the vertically non-uniform heating effect, and the effect was the opposite.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Initiation Stage (UTC) | Vital Stage (UTC) | End Stage (UTC) | Initiation Stage (UTC) | Vital Stage (UTC) | End Stage (UTC) | ||
---|---|---|---|---|---|---|---|
Western type | 1981071212 | 1981071300 | 1981071312 | Eastern type | 1989060600 | 1989060621 | 1989060700 |
1984062312 | 1981062318 | 1984062412 | 1989070800 | 1989070812 | 1989070900 | ||
1984070112 | 1984070117 | 1984070212 | 1991062912 | 1991062917 | 1991063012 | ||
1987070900 | 1987070906 | 1987071000 | 2004090312 | 2004090318 | 2004090412 | ||
1998070500 | 1998070502 | 1998070600 | 2010071612 | 2010071616 | 2010071712 | ||
2013070812 | 2013070819 | 2013070912 | 2014080812 | 2014080817 | 2014080612 | ||
2020081512 | 2020081518 | 2020081612 | 2014091212 | 2014091301 | 2014091312 | ||
2017070512 | 2017070517 | 2017070612 | |||||
2021080712 | 2021080719 | 2021080812 |
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Zhou, C.; Li, Y. Characteristics of Atmospheric Diabatic Heating of the Southwest China Vortex That Induces Extreme Rainstorms in Sichuan. Atmosphere 2024, 15, 861. https://doi.org/10.3390/atmos15070861
Zhou C, Li Y. Characteristics of Atmospheric Diabatic Heating of the Southwest China Vortex That Induces Extreme Rainstorms in Sichuan. Atmosphere. 2024; 15(7):861. https://doi.org/10.3390/atmos15070861
Chicago/Turabian StyleZhou, Chunhua, and Yueqing Li. 2024. "Characteristics of Atmospheric Diabatic Heating of the Southwest China Vortex That Induces Extreme Rainstorms in Sichuan" Atmosphere 15, no. 7: 861. https://doi.org/10.3390/atmos15070861
APA StyleZhou, C., & Li, Y. (2024). Characteristics of Atmospheric Diabatic Heating of the Southwest China Vortex That Induces Extreme Rainstorms in Sichuan. Atmosphere, 15(7), 861. https://doi.org/10.3390/atmos15070861