Spatiotemporal Characteristics of Drought in Central Asia from 1981 to 2020
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Dataset
2.3. Methods
2.3.1. The Standardized Precipitation Evapotranspiration Index (SPEI)
2.3.2. EOF and REOF
2.3.3. Sen’s Slope and Modified Mann–Kendall Test
2.3.4. Run Theory
2.3.5. Continuous Wavelet Transform (CWT)
3. Results
3.1. Regionalization and Spatial Variability of Droughts
3.2. Characterization and Description of Droughts
3.2.1. Spatial Trends and Characteristics of Droughts
3.2.2. Drought Temporal Evolution
3.2.3. Drought Periodicity
4. Discussion
5. Conclusions
- (1)
- Based on REOF, Central Asia was divided into six subregions: north Kazakhstan (NK), the Hexi Corridor (HX), the southwest (SW), Tian Shan (TS), the southeast (SE), and the northeast (NE).
- (2)
- NK showed a wetting trend during the whole study period, but the wetting trend decreased after 2001. Most of the SW subregion, similar to western NK, became wetter from 1981 to 2001, with a wet/dry reversal after 2001. The subregions of NE and HX showed similar drought patterns. Both areas have large and concentrated areas of agricultural land and grassland with high ecological vulnerability. HX became wetter from 1981 to 2001 and drier after 2001. EOFs in the NE showed a different pattern from other regions, becoming drier from 1981 to 2001 and relatively wetter after 2001. TS showed a clear north–south difference in EOF5, becoming wetter from 1981 to 2001 and most of the region becoming drier after 2001. SE showed no significant overall trend and similar patterns to neighboring regions.
- (3)
- Central Asia regions experienced a wetting trend from 1981 to 2020, and a drying change in most of the area after 2001. The NK subregion experienced more drought events with lower severity, and east–west differences appeared after 2001, the west becoming drier and the east becoming wetter. Most of the SW subregion is similar to western NK, but the local areas near lakes in the SW, TS, and SE suffered from droughts of long duration and high severity. The TS region had a clear north–south difference, with more frequent droughts of shorter durations and higher severity on the northern slopes. HX and NE are similar to the southern slope of TS, with droughts of short duration, high drought peak, and drought intensity. The SE experienced more frequent and intense droughts, especially over the past two decades, gradually becoming drier.
- (4)
- Droughts in Central Asia between 1981 and 2001 were more widespread and of longer duration, especially during the 1981–1985 and 1993–1997 drought events. The drought trends in the NK, SW, TS, and HX subregions were similar, with larger areas being affected by the occurrence of droughts. After 2001, the severity and frequency of drought events increased relatively in each subregion, with shorter durations and reduced drought area. Severe drought events included the NE, SE, and HX from 1999 to 2003 and the NE, NK, TS, and SE from 2005 to 2009. In the past decade, most subregions, such as the NE, TS, HX, and SE, showed an increase in the area of drought.
- (5)
- Considerable variations were found between the power patterns in different subregions. The periodicity of drought change in the six different subregions was mainly concentrated between 2 and 16 years.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Methods | Component | PC1 | PC2 | PC3 | PC4 | PC5 | PC6 |
---|---|---|---|---|---|---|---|
EOF | Variance (%) | 21.59 | 8.02 | 7.64 | 5.55 | 4.22 | 3.78 |
Cumulative (%) | 21.59 | 29.61 | 37.25 | 42.8 | 47.02 | 50.8 | |
REOF | Variance (%) | 12.86 | 10.61 | 8.84 | 7.26 | 5.73 | 5.25 |
Cumulative (%) | 12.86 | 23.47 | 32.31 | 39.57 | 45.3 | 50.55 |
Results | NE | NK | TS | SE | HX | SW | |
---|---|---|---|---|---|---|---|
Spatial drought trends | 1981–2020 | Drying | Wetting | Mixed wet and dry trends | Mixed wet and dry trends | Wetting | Wetting |
1981–2001 | Drying | Wetting | Wetting | Mixed wet and dry trends | Wetting | Mixed wet and dry trends | |
2001–2020 | Drying | Mixed wet and dry trends | Drying (most area) Wetting (near lakes) | Drying (most area) Wetting (near lakes) | Drying (most area) | Drying (most area) Wetting (near lakes) | |
Spatial drought characteristics | DF | Moderate | High Value | North slopes are more frequent than south slopes | High Value (most area) Low Value (near lakes) | Moderate | High Value (most area) Low Value (near lakes) |
MDD | Low value | Low value | Low value | Low value (most area) High value (near lakes) | Low value | Low value (most area) High value (near lakes) | |
MDS | Low value | Low value | Low value | Low value (most area)high value (near lakes) | Low value | Low value (most area)high value (near lakes) | |
MDI | High value | High value | North slope values are more than south slope | High value (most area) Low value (near lakes) | High value | High value (most area) Low value (near lakes) | |
MDP | High value | High value | North slope values are more than south slope | High value (most area) Low value (near lakes) | High value | High value (most area) Low value (near lakes) | |
The trend of SPEI | linear | Drying | Wetting | Wetting | Slightly drying | Wetting | Wetting |
LOESS | A wet-to-dry trend during 1981–2001 | A trend of slight drought during 1981–2001, became wetting after 2001 | Overall trend similar to NK | A gradual drying trend became obvious after 2001 | A dry-to-wet trend during 1981–2001, fluctuated significantly after 2001 | Overall trend similar to NK | |
Percent change of drought area | In the past five years, showed an increase in the area of drought | Relatively high percentages of drought area and experienced severe drought more frequently | Overall trend similar to NK, and in the past five years, showed an increase in the area of drought | In the past five years, showed an increase in the area of drought | Overall trend similar to NK, and in the past five years, showed an increase in the area of drought | Overall trend similar to NK |
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Sun, Y.; Chen, X.; Yu, Y.; Qian, J.; Wang, M.; Huang, S.; Xing, X.; Song, S.; Sun, X. Spatiotemporal Characteristics of Drought in Central Asia from 1981 to 2020. Atmosphere 2022, 13, 1496. https://doi.org/10.3390/atmos13091496
Sun Y, Chen X, Yu Y, Qian J, Wang M, Huang S, Xing X, Song S, Sun X. Spatiotemporal Characteristics of Drought in Central Asia from 1981 to 2020. Atmosphere. 2022; 13(9):1496. https://doi.org/10.3390/atmos13091496
Chicago/Turabian StyleSun, Yu, Xi Chen, Yang Yu, Jing Qian, Min Wang, Shuangyan Huang, Xiuwei Xing, Shiran Song, and Xiaolin Sun. 2022. "Spatiotemporal Characteristics of Drought in Central Asia from 1981 to 2020" Atmosphere 13, no. 9: 1496. https://doi.org/10.3390/atmos13091496
APA StyleSun, Y., Chen, X., Yu, Y., Qian, J., Wang, M., Huang, S., Xing, X., Song, S., & Sun, X. (2022). Spatiotemporal Characteristics of Drought in Central Asia from 1981 to 2020. Atmosphere, 13(9), 1496. https://doi.org/10.3390/atmos13091496