Analysis of Spatiotemporal Heterogeneity of Glacier Mass Balance on the Northern and Southern Slopes of the Central Tianshan Mountains, China
Abstract
:1. Introduction
2. Study Area
3. Data and Methods
3.1. Simulated Glacier Mass Balance
3.2. Attribution of Glacier Mass Balance Change
4. Results
4.1. Analysis of Glacier Area in the Central Tianshan Mountains
4.2. Comparison of Glacier Mass Balance between Both Basins in the Central Tianshan Mountains
4.3. The Attribution of Glacier Mass Balance Change in the North–South Slope Basin in the Central Tianshan Mountains
5. Discussion
5.1. Contribution Analysis of Influencing Factors Based on Positive and Negative Mass Balance Area
5.2. Attribution Comparison of Both Basins Based on Positive and Negative Balance Area
6. Conclusions
- (1)
- In terms of glacier distribution, the glaciers in both basins are mainly distributed in the altitude range of 3500–4800 m. Most glaciers are distributed in 3900–4300 m, and the total area in this altitude range accounts for 85.71%. Due to the altitude and mountain trend, the glaciers in Kaidu are mainly concentrated in the southwest and northeast, which are mainly concentrated in the south of Manas. In terms of glacier scale, the number of less than 1 km2 glaciers is the most, and the number of glaciers over 10 km2 is rare; in terms of glacier quantity and scale, the Manas river basin is more than the Kaidu river basin.
- (2)
- During the study period, the glaciers in both basins were continuously melting. They were in negative balance (−465.95 mm w.e.), and the interannual change rate was −28.36 mm w.e./a. among them, the glacier melting was the most obvious in 2010. The melting trend can be divided into two stages: the persistence increased from 2000 to 2010a, and the volatility decreased from 2010 to 2016a. Compared with both basins, the amount of glacier melting in Kaidu is 3.79% higher than that in Manas, but the change rate of glacier mass balance in Manas (−28.85 mm w.e./a) is slightly higher than that in Kaidu (−26.34 mm w.e./a).
- (3)
- In the attribution of mass balance, the factors affecting glacier mass balance can be divided into climate and topography. The total contribution rate of topographic factors is 44.87%, which is slightly lower than that of climatic factors (51.27%). Therefore, climatic factors are still the dominant factors affecting the difference in glacier mass balance between both basins; however, in Kaidu, the contribution rate of climatic factors is nearly 20% higher than that of topographic factors. The contribution rate of climate factors in Manas is only 7.3% higher, so the change of glacier mass balance in Kaidu is more driven by climate factors, while the glacier mass balance in Manas is more affected by the combination of climate and topographic factors.
- (4)
- The factors affecting the positive/negative mass balance of glaciers in both basins are dominated by climate factors (69.37%, 52.2%). Still, the contribution gap between climate and terrain factors in the ablation area is smaller. In terms of accumulation area, the positive mass balance in Kaidu is dominated by topographic factors (55.2%), while that in Manas is dominated by climatic factors (69.37%). For the ablation area, climate factors are dominated in Kaidu (70.85%), and topographic factors are dominated in Manas (54.11%). The driving forces of climate and terrain factors and the different coupling modes lead to the spatiotemporal heterogeneity of glacier mass balance in the north and south slope basins in the central Tianshan Mountain.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Type of Data | Resolution | Data Sources (Accessed on 17 November 2021) |
---|---|---|
DEM | 30 m × 30 m | RESDC (https://www.resdc.cn/data.aspx?DATAID=217) |
MOD11C3 | 0.05° × 0.05° | NASA (https://lpdaac.usgs.gov/products/mod11c3v006/) |
TRMM3B43 | 0.25° × 0.25° | NASA (https://disc.gsfc.nasa.gov/datasets/TRMM_3B43_7/) |
Solar radiation | 10 km × 10 km | TPDC (https://data.tpdc.ac.cn/) |
≥0 °C accumulated temperature | 0.5 km × 0.5 km | RESDC (https://www.resdc.cn/DOI/doi.aspx?DOIid=39) |
Air temperature | ||
Precipitation | ||
The Second China Glacier Catalog Dataset | — | NCDC (http://www.ncdc.ac.cn/) |
Basins | Elevation | Topographic Relief | Slope | Aspect | Solar Radiation | Air Temperature | Precipitation | >0 °C Accumulated Temperature |
---|---|---|---|---|---|---|---|---|
Both Basins | 42.75 | 1.06 | 1.07 | 3.85 | 11.08 | 14.41 | 10.14 | 15.64 |
Kaidu | 30.88 | 0.77 | 0.79 | 2.09 | 14.73 | 11.31 | 26.90 | 12.53 |
Manas | 40.44 | 1.02 | 1.02 | 3.85 | 11.00 | 14.70 | 8.02 | 19.95 |
Area | GMB (mm/w.e.) | Elevation (m) | Topographic Relief (°) | Slope (°) | Aspect (°) | Solar Radiation (W/m2) | Air Temperature (°C) | Precipitation (mm) | >0 °C Accumulated Temperature (°C) |
---|---|---|---|---|---|---|---|---|---|
Accumulation | 30.21 | 4502.18 | 60.19 | 37.67 | 128.92 | 157.41 | −14.16 | 241.94 | 128.84 |
Ablation | −718.97 | 3980.93 | 37.64 | 25.34 | 187.71 | 175.67 | −11.45 | 254.88 | 260.91 |
Basins | GMB (mm/w.e.) | Elevation (m) | Topographic Relief (°) | Slope (°) | Aspect (°) | Solar Radiation (W/m2) | Temperature (°C) | Precipitation (mm) | >0 °C Accumulated Temperature (°C) |
---|---|---|---|---|---|---|---|---|---|
Accumulation Area | |||||||||
Kaidu | 20.37 | 4346.73 | 52.94 | 33.90 | 135.01 | 170.08 | −9.16 | 138.38 | 400.76 |
Manas | 31.18 | 4517.40 | 60.90 | 38.04 | 128.33 | 167.11 | −14.65 | 252.08 | 102.21 |
Ablation Area | |||||||||
Kaidu | −591.73 | 3944.43 | 36.80 | 24.79 | 184.22 | 178.11 | −9.78 | 219.20 | 333.47 |
Manas | −769.77 | 4006.34 | 38.06 | 25.62 | 189.70 | 174.71 | −12.12 | 268.97 | 231.87 |
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Liu, L.; Tian, H.; Zhang, X.; Chen, H.; Zhang, Z.; Zhao, G.; Kang, Z.; Wang, T.; Gao, Y.; Yu, F.; et al. Analysis of Spatiotemporal Heterogeneity of Glacier Mass Balance on the Northern and Southern Slopes of the Central Tianshan Mountains, China. Water 2022, 14, 1601. https://doi.org/10.3390/w14101601
Liu L, Tian H, Zhang X, Chen H, Zhang Z, Zhao G, Kang Z, Wang T, Gao Y, Yu F, et al. Analysis of Spatiotemporal Heterogeneity of Glacier Mass Balance on the Northern and Southern Slopes of the Central Tianshan Mountains, China. Water. 2022; 14(10):1601. https://doi.org/10.3390/w14101601
Chicago/Turabian StyleLiu, Lin, Hao Tian, Xueying Zhang, Hongjin Chen, Zhengyong Zhang, Guining Zhao, Ziwei Kang, Tongxia Wang, Yu Gao, Fengchen Yu, and et al. 2022. "Analysis of Spatiotemporal Heterogeneity of Glacier Mass Balance on the Northern and Southern Slopes of the Central Tianshan Mountains, China" Water 14, no. 10: 1601. https://doi.org/10.3390/w14101601
APA StyleLiu, L., Tian, H., Zhang, X., Chen, H., Zhang, Z., Zhao, G., Kang, Z., Wang, T., Gao, Y., Yu, F., Zhang, M., Yi, X., & Cao, Y. (2022). Analysis of Spatiotemporal Heterogeneity of Glacier Mass Balance on the Northern and Southern Slopes of the Central Tianshan Mountains, China. Water, 14(10), 1601. https://doi.org/10.3390/w14101601