Spatiotemporal Characteristics of Drought in Northwest China Based on SPEI Analysis
Abstract
:1. Introduction
2. Overview and Explanation of Data
2.1. Overview of the Study Area
2.2. Data Sources
2.3. Research Methods
2.3.1. Standardized Precipitation Evapotranspiration Index (SPEI)
2.3.2. Interpolation Calculation of P and ET0
- (1)
- If less data was missing, two conditions existed. When the missing sequencing column was less than 5d, the linear interpolation of recent days’ data was used to interpolate. When 5d < missing sequencing column < 30d, the multi-year average of the same day was used to interpolate [23]. Here, the Penman–Monteith formula (ET0PM) was also used to calculate the ET0 [24].
- (2)
- If longer series data were missing, the Penman–Monteith formula cannot be used. By this time, the ET0 can be calculated using the formula ET0D provided by FAO56 based on the absence of sunshine hours, relative humidity, and/or wind speed [24]. Firstly, the ET0PM and ET0D sequences were obtained by using the two formulas. Then, Equation (7) was obtained by linear fitting, and the ET0 was calculated accordingly.
- (3)
- According to the geographical similarity hypothesis, the closer the geographical distance, the more similar the meteorological conditions of the stations. The interpolation processing of the data was carried out in our study.
2.3.3. Spatiotemporal Analysis of Drought Index
Climate Tendency Rate
Drought Evaluation Index Calculation
- (1)
- The Pi was used to evaluate the frequency of drought in a station during the years with available data, which was calculated by the following equation:
- (2)
- The Sij was used to evaluate the severity of drought occurring in a region, which was calculated as follows:
- (3)
- The Pj was used to evaluate the size of the influence area of drought, which was calculated by the proportion of the number of drought stations in the total number of stations.
Mann–Kendall Mutation Test
Wavelet Analysis
Spatial Interpolation Method
3. Results and Discussion
3.1. Spatial Distribution of Climate Tendency Rate of SPEI in Northwest China
3.2. Spatial Analysis of Drought Frequency at SPEI Annual Scale in Northwest China
3.3. SPEI and Drought Temporal Pattern in Northwest China
3.3.1. Analysis of Annual SPEI and Drought Time Pattern
3.3.2. Periodicity of Annual SPEI and Drought
3.4. Shortage and Prospect of the Present Study
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Drought Intensity (Sij) | Drought Station Proportion (Pj) | ||
---|---|---|---|
Sij | Drought grade | Pj | Drought range |
2 ≤ Sij | Extreme drought | 50% ≤ Pj | Pan-regional drought |
1.5 ≤ Sij ≤ 2 | Severe drought | 33% ≤ Pj ≤ 50% | Regional drought |
1 ≤ Sij ≤ 1.5 | Moderate drought | 25% ≤ Pj ≤ 33% | Partial regional drought |
0.5 ≤ Sij ≤ 1 | Light drought | 10% ≤ Pj ≤ 25% | Local drought |
0.5 ≤ Sij | No drought | 10% ≤ Pj | Non-obvious drought |
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Peng, Y.; Peng, T.; Li, Y. Spatiotemporal Characteristics of Drought in Northwest China Based on SPEI Analysis. Atmosphere 2023, 14, 1188. https://doi.org/10.3390/atmos14071188
Peng Y, Peng T, Li Y. Spatiotemporal Characteristics of Drought in Northwest China Based on SPEI Analysis. Atmosphere. 2023; 14(7):1188. https://doi.org/10.3390/atmos14071188
Chicago/Turabian StylePeng, Yongqin, Tao Peng, and Yan Li. 2023. "Spatiotemporal Characteristics of Drought in Northwest China Based on SPEI Analysis" Atmosphere 14, no. 7: 1188. https://doi.org/10.3390/atmos14071188
APA StylePeng, Y., Peng, T., & Li, Y. (2023). Spatiotemporal Characteristics of Drought in Northwest China Based on SPEI Analysis. Atmosphere, 14(7), 1188. https://doi.org/10.3390/atmos14071188