The Temporal Variation and Spatial Scale Dependence of the Trade-Offs and Synergies among Multiple Ecosystem Services in the World Heritage Site of South China Karst
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Data Sources
2.3. Research Methodology
2.3.1. Cellular Automata (CA)-Markov Model
2.3.2. Water Conservation (WC)
2.3.3. Soil Conservation (SC)
2.3.4. Habitat Quality (HQ)
2.3.5. Carbon Storage (CS)
2.3.6. Spearman Correlation Coefficient
2.3.7. Bivariate Spatial Autocorrelation Model
3. Results
3.1. Characteristics of Land Use Conversion
3.2. Spatiotemporal Heterogeneity of ESs
3.2.1. Spatiotemporal Variations in ESs
3.2.2. Changes in ESs Dynamics of Different Land Use Types
3.3. ESs Trade-Offs/Synergies
3.3.1. Spearman Correlation Coefficients between ESs
3.3.2. Moran’s Index between ESs
3.3.3. Spatial Representation of Trade-Offs and Synergistic Relationships for ESs
4. Discussion
4.1. Spatial and Temporal Changes in Land Use and ESs
4.2. Trade-Offs/Synergies of ESs
4.3. Limitations and Prospects
- (1)
- Rationalize the planning of land use types; continue to implement ecological conservation projects, for example restoring farmland to woodland and grasslands; and relocate some of the arable and building land to the townships around the buffer zone, with the objective of enhancing the overall ecological suitability of the heritage site and improving the sustainability of its ecosystem;
- (2)
- The objective is to optimize zoning management, to manage the existing heritage sites and buffer zones in a zoning pattern, and to integrate them with the space–time distribution of ESs and the spatial pattern of global trade-offs and synergies, as assessed in the present study. Furthermore, targeted zoning management and protection of the ecological service areas that require upgrading and the areas of the main trade-offs and relationships will be carried out. This will facilitate the ecological protection of the Karst Natural WNHS, while also contributing to global sustainable development.
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Data Type | Data Name | Data Sources |
---|---|---|
Meteorological data | Precipitation | The National Weather Science Data Center (https://data.cma.cn/metadata/#/layerType, accessed on 20 April 2024) |
Temperatures | The National Weather Science Data Center (https://data.cma.cn/metadata/#/layerType, accessed on 20 April 2024) | |
Potential Evapotranspiration | The National Earth System Science Data Center (https://www.geodata.cn/main/, accessed on 20 April 2024) | |
Topography | The World Soil Database | The China Soil Dataset (v1.1) is derived from the World Soil Database (HWSD) (https://www.fao.org/soils-portal, accessed on 8 May 2024). |
DEM | NASA (https://www.nasa.gov/, accessed on 26 April 2024) | |
Land use | Land Cover | The Geospatial Data Cloud (https://www.gscloud.cn/#page1/1, accessed on 10 April 2024) |
Socio-economic Statistics Data | Population Density | Statistical Yearbook Sharing Platform (https://www.guizhou.gov.cn/, accessed on 24 June 2024) |
GDP |
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Feng, M.; Xiong, K.; Chen, Y.; Zhang, W.; Xu, M. The Temporal Variation and Spatial Scale Dependence of the Trade-Offs and Synergies among Multiple Ecosystem Services in the World Heritage Site of South China Karst. Land 2024, 13, 1391. https://doi.org/10.3390/land13091391
Feng M, Xiong K, Chen Y, Zhang W, Xu M. The Temporal Variation and Spatial Scale Dependence of the Trade-Offs and Synergies among Multiple Ecosystem Services in the World Heritage Site of South China Karst. Land. 2024; 13(9):1391. https://doi.org/10.3390/land13091391
Chicago/Turabian StyleFeng, Mingjun, Kangning Xiong, Yue Chen, Wenfang Zhang, and Meirong Xu. 2024. "The Temporal Variation and Spatial Scale Dependence of the Trade-Offs and Synergies among Multiple Ecosystem Services in the World Heritage Site of South China Karst" Land 13, no. 9: 1391. https://doi.org/10.3390/land13091391