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干旱区科学  2015, Vol. 7 Issue (5): 590-598    DOI: 10.1007/s40333-015-0128-7
  学术论文 本期目录 | 过刊浏览 | 高级检索 |
Interactions between wind and water erosion change sediment yield and particle distribution under simulated conditions
TUO Dengfeng1, XU Mingxiang1,2, ZHAO Yunge2, GAO Liqian2
1 State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Institute of Soil and Water Conservation, Northwest A&F University, Yangling 712100, China;
2 Institute of Soil and Water Conservation, Chinese Academy of Sciences and Ministry of Water Resources, Yangling 712100, China
Interactions between wind and water erosion change sediment yield and particle distribution under simulated conditions
TUO Dengfeng1, XU Mingxiang1,2, ZHAO Yunge2, GAO Liqian2
1 State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Institute of Soil and Water Conservation, Northwest A&F University, Yangling 712100, China;
2 Institute of Soil and Water Conservation, Chinese Academy of Sciences and Ministry of Water Resources, Yangling 712100, China
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摘要 Wind and water erosion are among the most important causes of soil loss, and understanding their interactions is important for estimating soil quality and environmental impacts in regions where both types of erosion occur. We used a wind tunnel and simulated rainfall to study sediment yield, particle-size distribution and the fractal dimension of the sediment particles under wind and water erosion. The experiment was conducted with wind erosion firstly and water erosion thereafter, under three wind speeds (0, 11 and 14 m/s) and three rainfall intensities (60, 80 and 100 mm/h). The results showed that the sediment yield was positively correlated with wind speed and rainfall intensity (P<0.01). Wind erosion exacerbated water erosion and increased sediment yield by 7.25%–38.97% relative to the absence of wind erosion. Wind erosion changed the sediment particle distribution by influencing the micro-topography of the sloping land surface. The clay, silt and sand contents of eroded sediment were also positively correlated with wind speed and rainfall intensity (P<0.01). Wind erosion increased clay and silt contents by 0.35%–19.60% and 5.80%–21.10%, respectively, and decreased sand content by 2.40%–8.33%, relative to the absence of wind erosion. The effect of wind erosion on sediment particles became weaker with increasing rainfall intensities, which was consistent with the variation in sediment yield. However, particle-size distribution was not closely correlated with sediment yield (P>0.05). The fractal dimension of the sediment particles was significantly different under different intensities of water erosion (P<0.05), but no significant difference was found under wind and water erosion. The findings reported in this study implicated that both water and wind erosion should be controlled to reduce their intensifying effects, and the controlling of wind erosion could significantly reduce water erosion in this wind-water erosion crisscross region.
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TUO Dengfeng
XU Mingxiang
ZHAO Yunge
GAO Liqian
关键词:  rangeland degradation  enclosures  microbial biomass  rehabilitation  reseeding  soil quality  Kenya    
Abstract: Wind and water erosion are among the most important causes of soil loss, and understanding their interactions is important for estimating soil quality and environmental impacts in regions where both types of erosion occur. We used a wind tunnel and simulated rainfall to study sediment yield, particle-size distribution and the fractal dimension of the sediment particles under wind and water erosion. The experiment was conducted with wind erosion firstly and water erosion thereafter, under three wind speeds (0, 11 and 14 m/s) and three rainfall intensities (60, 80 and 100 mm/h). The results showed that the sediment yield was positively correlated with wind speed and rainfall intensity (P<0.01). Wind erosion exacerbated water erosion and increased sediment yield by 7.25%–38.97% relative to the absence of wind erosion. Wind erosion changed the sediment particle distribution by influencing the micro-topography of the sloping land surface. The clay, silt and sand contents of eroded sediment were also positively correlated with wind speed and rainfall intensity (P<0.01). Wind erosion increased clay and silt contents by 0.35%–19.60% and 5.80%–21.10%, respectively, and decreased sand content by 2.40%–8.33%, relative to the absence of wind erosion. The effect of wind erosion on sediment particles became weaker with increasing rainfall intensities, which was consistent with the variation in sediment yield. However, particle-size distribution was not closely correlated with sediment yield (P>0.05). The fractal dimension of the sediment particles was significantly different under different intensities of water erosion (P<0.05), but no significant difference was found under wind and water erosion. The findings reported in this study implicated that both water and wind erosion should be controlled to reduce their intensifying effects, and the controlling of wind erosion could significantly reduce water erosion in this wind-water erosion crisscross region.
Key words:  rangeland degradation    enclosures    microbial biomass    rehabilitation    reseeding    soil quality    Kenya
收稿日期:  2014-11-20      修回日期:  2015-01-20           出版日期:  2015-10-05      发布日期:  2015-06-23      期的出版日期:  2015-10-05
基金资助: 

Special Program for Basic Research of the Ministry of Science and Technology, China (2014FY210100), the National Natural Science Foundation of China (41171422, 41271298) and the West Light Foundation of the Chinese Academy of Sciences.

通讯作者:  XU Mingxiang    E-mail:  xumx@nwsuaf.edu.cn
引用本文:    
TUO Dengfeng, XU Mingxiang, ZHAO Yunge, GAO Liqian. Interactions between wind and water erosion change sediment yield and particle distribution under simulated conditions[J]. 干旱区科学, 2015, 7(5): 590-598.
TUO Dengfeng, XU Mingxiang, ZHAO Yunge, GAO Liqian. Interactions between wind and water erosion change sediment yield and particle distribution under simulated conditions. Journal of Arid Land, 2015, 7(5): 590-598.
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