Javascript must be enabled to continue!
Spatiotemporal Evolution and Driving Forces of Vegetation Cover in the Urumqi River Basin
View through CrossRef
It is important to determine long-term changes in vegetation cover, and the associated driving forces, to better understand the natural and human-induced factors affecting vegetation growth. We calculated the fractional vegetation coverage (FVC) of the Urumqi River basin and selected seven natural factors (the clay and sand contents of surface soils, elevation, aspect, slope, precipitation and temperature) and one human factor (land use type). We then used the Sen–Man–Kendall method to calculate the changing trend of the FVC from 2000 to 2020. We used the optimal parameters-based geographical detector (OPGD) model to quantitatively analyze the influence of each factor on the change in vegetation coverage in the basin. The FVC of the Urumqi River basin fluctuated from 2000 to 2020, with average values between 0.22 and 0.33. The areas with no and low vegetation coverage accounted for two-thirds of the total area, whereas the areas with a medium, medium–high and high FVC accounted for one-third of the total area. The upper reaches of the river basin are glacial and forest areas with no vegetation coverage and a high FVC. The middle reaches are concentrated in areas of urban construction with a medium FVC. The lower reaches are in unstable farmland with a medium and high FVC and deserts with a low FVC and no vegetation. From the perspective of the change trend, the areas with an improved FVC accounted for 62.54% of the basin, stable areas accounted for 5.66% and degraded areas accounted for 31.8%. The FVC showed an increasing trend in the study area. The improvement was mainly in the areas of urban construction and desert. Degradation occurred in the high-elevation areas, whereas the transitional zone was unchanged. The analysis of driving forces showed that the human factor explained more of the changes in the FVC than the natural factors in the order: land use type (0.244) > temperature (0.216) > elevation (0.205) > soil clay content (0.172) > precipitation (0.163) > soil sand content (0.138) > slope (0.059) > aspect (0.014). Apart from aspect, the explanatory power (Q value) of the interaction of each factor was higher than that of the single factor. Risk detection showed that each factor had an interval in which the change in the FVC was inhibited or promoted. The optimum elevation interval of the study area was 1300–2700 m and the greatest inhibition of the FVC was seen above 3540 m. Too much or too little precipitation inhibited vegetation coverage.
Title: Spatiotemporal Evolution and Driving Forces of Vegetation Cover in the Urumqi River Basin
Description:
It is important to determine long-term changes in vegetation cover, and the associated driving forces, to better understand the natural and human-induced factors affecting vegetation growth.
We calculated the fractional vegetation coverage (FVC) of the Urumqi River basin and selected seven natural factors (the clay and sand contents of surface soils, elevation, aspect, slope, precipitation and temperature) and one human factor (land use type).
We then used the Sen–Man–Kendall method to calculate the changing trend of the FVC from 2000 to 2020.
We used the optimal parameters-based geographical detector (OPGD) model to quantitatively analyze the influence of each factor on the change in vegetation coverage in the basin.
The FVC of the Urumqi River basin fluctuated from 2000 to 2020, with average values between 0.
22 and 0.
33.
The areas with no and low vegetation coverage accounted for two-thirds of the total area, whereas the areas with a medium, medium–high and high FVC accounted for one-third of the total area.
The upper reaches of the river basin are glacial and forest areas with no vegetation coverage and a high FVC.
The middle reaches are concentrated in areas of urban construction with a medium FVC.
The lower reaches are in unstable farmland with a medium and high FVC and deserts with a low FVC and no vegetation.
From the perspective of the change trend, the areas with an improved FVC accounted for 62.
54% of the basin, stable areas accounted for 5.
66% and degraded areas accounted for 31.
8%.
The FVC showed an increasing trend in the study area.
The improvement was mainly in the areas of urban construction and desert.
Degradation occurred in the high-elevation areas, whereas the transitional zone was unchanged.
The analysis of driving forces showed that the human factor explained more of the changes in the FVC than the natural factors in the order: land use type (0.
244) > temperature (0.
216) > elevation (0.
205) > soil clay content (0.
172) > precipitation (0.
163) > soil sand content (0.
138) > slope (0.
059) > aspect (0.
014).
Apart from aspect, the explanatory power (Q value) of the interaction of each factor was higher than that of the single factor.
Risk detection showed that each factor had an interval in which the change in the FVC was inhibited or promoted.
The optimum elevation interval of the study area was 1300–2700 m and the greatest inhibition of the FVC was seen above 3540 m.
Too much or too little precipitation inhibited vegetation coverage.
Related Results
Impact of vegetation control measures on the bedform of braided gravel-bed river
Impact of vegetation control measures on the bedform of braided gravel-bed river
<p>Braiding is among the most dynamic landscape on Earth. It provides diverse habitats for freshwater creatures. Unfortunately, the number of braided rivers is reduci...
Effect of changing vegetation on denudation (part 2): Landscape response to transient climate and vegetation cover
Effect of changing vegetation on denudation (part 2): Landscape response to transient climate and vegetation cover
Abstract. We present a numerical modelling investigation into the interactions between transient climate and vegetation cover with hillslope and fluvial processes. Model simulation...
Flodfund - Bronzealderdeponeringer fra Gudenåen
Flodfund - Bronzealderdeponeringer fra Gudenåen
River findsBronze Age metalwork from the river GudenåBronze Age metalwork (primarily swords and other weapons) found in European rivers has aroused interest for many years, but lit...
Impacts of Recent Climate Trends and Human Activity on the Land Cover Change of the Abbay River Basin in Ethiopia
Impacts of Recent Climate Trends and Human Activity on the Land Cover Change of the Abbay River Basin in Ethiopia
The Abbay River Basin, which originates in Ethiopia, is a major tributary and main source of the Nile River Basin. Land cover and vegetation in the Abbay River Basin is highly susc...
Sustaining the Pearl River: Problems, Chanllenges, and Opportunities
Sustaining the Pearl River: Problems, Chanllenges, and Opportunities
The Pearl River is a large water system, which is the second largest river (in terms of mean annual water discharge) in China. The Pearl River Basin consists of three major rivers,...
Constraining simulation uncertainties in a hydrological model of the Congo River Basin including a combined modelling approach for channel-wetland exchanges
Constraining simulation uncertainties in a hydrological model of the Congo River Basin including a combined modelling approach for channel-wetland exchanges
Compared to other large river basins of the world, such as the Amazon, the Congo River Basin appears to be the most ungauged and less studied. This is partly because the basin lack...
Spatial analysis of the landscape structure of the river basin on the basis of remote sensing data
Spatial analysis of the landscape structure of the river basin on the basis of remote sensing data
<p>The aim of the study is the spatial analysis of the structure of the river basin in identifying anthropogenic-transformed landscapes. The object of the study is th...
Impacts of changes in vegetation cover on soil water heat coupling in an alpine meadow of the Qinghai-Tibet Plateau, China
Impacts of changes in vegetation cover on soil water heat coupling in an alpine meadow of the Qinghai-Tibet Plateau, China
Abstract. Alpine meadow is one of the most widespread grassland types in the permafrost regions of the Qinghai-Tibet Plateau, and the transmission of coupled soil water heat is one...

