The Synoptic Characteristics of Icing Events on Transmission Lines in Southern China
Abstract
:1. Introduction
2. Data and Methods
2.1. Data
2.2. Methods
3. Classifications of Synoptic Patterns
3.1. Synoptic Patterns
3.2. Relationships between Synoptic Patterns and Icing Events
3.3. Cold Air and Moisture Transport Paths
4. Case Study
4.1. Trend of the Ice Thickness
4.2. Atmospheric Circulation Patterns
4.3. Atmospheric Stratification
5. Discussion
6. Conclusions
- (1)
- Large-scale circulation patterns: the results of the objective synoptic pattern classification reveal that there are four primary winter synoptic patterns in southern China. By comparing these patterns with power transmission line icing thickness data from 2014 to 2021 and the atmospheric circulation pattern during the February 19th to 21st, 2022, icing event, it was determined that the type 1 synoptic pattern is the dominant icing synoptic pattern for southern China. In this pattern, southern China is influenced by a high-pressure system at 850 hPa, centered in western Inner Mongolia, with a substantial southward extension. During this period, a robust northwesterly flow in the 500 hPa level brings cold air to southern China. Furthermore, the westward expansion of the enhanced subtropical high-pressure system in the western Pacific directs warm and humid airflow from the ocean to southwestern China. Under these conditions, the likelihood of power transmission line icing in southern China is heightened.
- (2)
- Temperature and humidity vertical structures: during the initial stages of icing, a strong upward flow of warm and humid air occurs in the upper boundary layer, while cold air descends near the surface, leading to the formation of an inversion layer. The vertical structure over the icing area exhibits a “cold–warm–cold” pattern, characterized by a prominent inversion layer. This vertical arrangement is indicative of freezing rain weather and provides the necessary conditions for the icing events on power transmission lines in southern China.
- (3)
- Cold air and moisture transport pathways: under the dominant icing synoptic pattern, the intensification of the Northeast China Vortex results in a potent northwesterly airflow that carries cold air from Central Siberia through northeastern China. Simultaneously, two primary lower-level moisture transport routes are active. One involves a southwest low-level jet transporting moisture from the Bay of Bengal toward mainland China, while the other originates from the South China Sea. These moisture transport pathways contribute to abundant moisture conditions, which are crucial for the icing events on power transmission lines in southern China.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Synoptic Pattern | Percentage | High-/Low- Pressure Type | High-/Low-Pressure Center Location | High/Low Pressure Range and Intensity |
---|---|---|---|---|
1 | 35.7% | High pressure to the northwest | Western Inner Mongolia | The high-pressure ridge extends southward to the southern China, with a large range and strong intensity |
2 | 36.6% | High pressure to the east | Western Pacific | Extends westward to the southeastern coastal areas of China, with a large range and weak intensity |
3 | 18.8% | Low pressure to the west | Southwest China | With a small range and weak intensity |
4 | 8.9% | High pressure to the northeast | Eastern China | The ridge of high pressure extends westward into southern China, its range is larger and its intensity is stronger |
Tower Number | Time (UTC) | Maximum Ice Thickness (mm) | Temperature (°C) |
---|---|---|---|
Line A | 2022-02-21T01:13 | 30.06 | −2.1 |
Line B | 2022-02-21T01:31 | 6.5 | −0.1 |
Line C | 2022-02-21T00:51 | 14.96 | −0.5 |
Line D | 2022-02-21T00:46 | 9.22 | −0.4 |
Line E | 2022-02-21T00:46 | 32.68 | −0.4 |
Line F | 2022-02-20T23:31 | 28.79 | −0.6 |
Line G | 2022-02-19T18:51 | 33.92 | −0.8 |
2022-02-21T01:01 | 25.26 | −0.5 |
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Shen, H.; Wan, B.; Zhou, S.; Kang, J.; Chen, H.; Gao, Z. The Synoptic Characteristics of Icing Events on Transmission Lines in Southern China. Atmosphere 2023, 14, 1789. https://doi.org/10.3390/atmos14121789
Shen H, Wan B, Zhou S, Kang J, Chen H, Gao Z. The Synoptic Characteristics of Icing Events on Transmission Lines in Southern China. Atmosphere. 2023; 14(12):1789. https://doi.org/10.3390/atmos14121789
Chicago/Turabian StyleShen, Huan, Bingcheng Wan, Shaohui Zhou, Jia Kang, Huansang Chen, and Zhiqiu Gao. 2023. "The Synoptic Characteristics of Icing Events on Transmission Lines in Southern China" Atmosphere 14, no. 12: 1789. https://doi.org/10.3390/atmos14121789
APA StyleShen, H., Wan, B., Zhou, S., Kang, J., Chen, H., & Gao, Z. (2023). The Synoptic Characteristics of Icing Events on Transmission Lines in Southern China. Atmosphere, 14(12), 1789. https://doi.org/10.3390/atmos14121789