Spatial–Temporal Interaction Relationship between Ecosystem Services and Urbanization of Urban Agglomerations in the Transitional Zone of Three Natural Regions
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Data Sources and Preparation
2.3. Methods
2.3.1. Analysis of Spatial–Temporal Interaction Relationships
2.3.2. Accounting for ESs
2.3.3. Measurement of Urbanization Level
3. Results
3.1. Spatial–Temporal Characteristics of ESs
3.2. Spatial–Temporal Characteristics of Urbanization Level
3.3. Spatial–Temporal Interaction Relationship between Urbanization and ESs
4. Discussion
4.1. The ESs of the LX Urban Agglomeration Gradually Improved
4.2. The Regional Spatial Heterogeneity of Urbanization Level was More Significant in the LX Urban Agglomeration
4.3. The Relationship between Urbanization and ESs
4.4. Suggestions for Coordinating Urban Development and Ecological Protection
4.5. Limitations and Future Perspectives
5. Conclusions
- (1)
- From 2010 to 2018, various ecosystem services in the LX urban agglomeration showed an overall upward trend. The overall distribution pattern of various ecosystem services is consistent, but the spatial differences are obvious. The central and regional center cities have the fewest ecosystem services, the node cities have relatively few ecosystem services, and the small and medium-sized cities have a relatively high number of ecosystem services.
- (2)
- In 2018 and 2010, the spatial distribution pattern of urbanization level in the LX urban agglomeration was basically the same, and the regional spatial differences were significant. The urbanization level is the highest in the central cities of Lanzhou and Xining, followed by the regional central cities.
- (3)
- The relationship between urbanization and ESs is complex. There is a negative correlation between urbanization and ESs in the LX urban agglomeration, and the degree of negative correlation between urbanization and ESs is heterogeneric. The spatial–temporal relationships between urbanization and water yield, sediment retention, and carbon storage are significantly negatively correlated, but the relationship between urbanization and nutrient purification is significantly positively correlated. Future effective measures should be taken to promote the rational population and economic development, to promote intensive and economical land use, and to achieve the sustainable development of cities.
Author Contributions
Funding
Conflicts of Interest
References
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Ecosystem Service | Key Parameters | Data Sources | Raw Data | Data Processing Method |
---|---|---|---|---|
Water yield | Annual precipitation | China Meteorological Science Data Sharing Service Network | Daily precipitation | Cokriging interpolation |
Average annual reference evapotranspiration | Wind speed, relative humidity, temperature, sunshine duration, etc. | Penman model, cokriging interpolation | ||
Plant available water content | World Soil Database | Soil texture data | Soil AWC (the volumetric (mm) plant available water content) estimation model | |
Root restricting layer depth | Soil depth point data | Cokriging interpolation | ||
Land use | Resource and Environment data center of Chinese Academy of Sciences | —— | Resample to 100 × 100 m | |
Sub watersheds | USGS website | DEM data | Hydrology module in GIS | |
Zhang constant | Hydrological station | Observations of annual evapotranspiration and water production | After much debugging, the simulation effect is the best when Z constant is 30 | |
Sediment delivery ratio model | Rainfall erosivity index (R) | China Meteorological Science Data Sharing Service Network | Daily precipitation | Westheimer method |
Soil erodibility (K) | World Soil Database | Soil texture data | Williams method | |
Threshold flow accumulation value | USGS website | DEM data | When the threshold is 1500, the generated river network is more consistent with the actual water system | |
Nutrient delivery ratio model | Nutrient runoff proxy | China Meteorological Science Data Sharing Service Network | Daily precipitation | Cokriging interpolation |
Carbon storage and sequestration | Carbon pools | Related literature [42,43], IPCC (Intergovernmental Panel on Climate Change) (2006) | Carbon density data | Collect and sort |
ESs | Water Yield (m3) | Sediment Retention (t) | Nutrient Purification (t) | Carbon Stored (t) |
---|---|---|---|---|
2010 | 122.69 × 108 | 68.08 × 108 | 0.29 × 108 | 11.85 × 108 |
2018 | 150.84 × 108 | 171.26 × 108 | 0.34 × 108 | 12.54 × 108 |
changes | 28.15 × 108 | 103.18 × 108 | 0.05 × 108 | 0.69 × 108 |
Years | Urbanization and Water Yield | Urbanization and Sediment Retention | Urbanization and Nutrient Purification | Urbanization and Carbon Stored | Urbanization and Comprehensive Ecosystem Services |
---|---|---|---|---|---|
2010 | −0.123 | −0.056 | 0.060 | −0.056 | −0.082 |
2018 | −0.104 | −0.051 | 0.061 | −0.100 | −0.090 |
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Pan, X.; Shi, P.; Wu, N. Spatial–Temporal Interaction Relationship between Ecosystem Services and Urbanization of Urban Agglomerations in the Transitional Zone of Three Natural Regions. Sustainability 2020, 12, 10211. https://doi.org/10.3390/su122310211
Pan X, Shi P, Wu N. Spatial–Temporal Interaction Relationship between Ecosystem Services and Urbanization of Urban Agglomerations in the Transitional Zone of Three Natural Regions. Sustainability. 2020; 12(23):10211. https://doi.org/10.3390/su122310211
Chicago/Turabian StylePan, Xiang, Peiji Shi, and Na Wu. 2020. "Spatial–Temporal Interaction Relationship between Ecosystem Services and Urbanization of Urban Agglomerations in the Transitional Zone of Three Natural Regions" Sustainability 12, no. 23: 10211. https://doi.org/10.3390/su122310211
APA StylePan, X., Shi, P., & Wu, N. (2020). Spatial–Temporal Interaction Relationship between Ecosystem Services and Urbanization of Urban Agglomerations in the Transitional Zone of Three Natural Regions. Sustainability, 12(23), 10211. https://doi.org/10.3390/su122310211