Scenario Analysis of Carbon Emission Changes Resulting from a Rural Residential Land Decrement Strategy: A Case Study in China
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area and Context
2.2. Analytic Framework
2.3. Methods
2.3.1. Land-Use Function Orientated Zoning
- Indicator selection:
- Indicator weight calculation:
- Multi-dimensional grading and classification model for zoning:
2.3.2. Decision Model for Repurposing Cases of RRL
2.3.3. Prediction Methodologies
2.3.4. Carbon Emission Assessment Model Based on Land Use
2.4. Data Sources
3. Results
3.1. Land-Use Function Orientated Zone
3.2. Criteria of RRLD
3.3. RRL for Stable Use and Reserve
3.4. Multiple Scenarios of RRLD and Its Carbon Emission Response
4. Discussion
4.1. Policy Implications
4.2. Limitations and Future Directions
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
Appendix B
References
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Criterion Layer | Indicator Layer (Unit) | AHP Weight | Entropy Weight | Weighted Weight |
---|---|---|---|---|
Natural resources carrying capacity | Ecological service value per capita (CNY/person) | 0.1496 | 0.0638 | 0.1153 |
Proportion of green space (%) | 0.0346 | 0.0051 | 0.0228 | |
Carrying capacity of agricultural land resources (–) | 0.2881 | 0.0239 | 0.1824 | |
Proportion of water area (%) | 0.0666 | 0.0555 | 0.0622 | |
Proportion of urban construction land (%) | 0.0083 | 0.0381 | 0.0202 | |
Economic competitiveness | Industrial output value of land (10,000 CNY/km2) | 0.0467 | 0.1480 | 0.0872 |
Public finance expenditure of land (10,000 CNY/km2) | 0.0392 | 0.1305 | 0.0757 | |
Retail sales of consumer goods per capita (CNY/person) | 0.0241 | 0.0750 | 0.0445 | |
Population density (people/km2) | 0.0218 | 0.0572 | 0.0360 | |
Proportion of employed population (%) | 0.0057 | 0.0077 | 0.0065 | |
Density of road network (km/km2) | 0.0141 | 0.0432 | 0.0257 | |
Proportion of people with minimum living security (%) | 0.0039 | 0.0010 | 0.0027 | |
Future development potential | Exploitable land resources per capita (m2/person) | 0.0908 | 0.0549 | 0.0765 |
Degree of topographic relief (–) | 0.0430 | 0.0049 | 0.0278 | |
Degree of location advantage (m) | 0.1195 | 0.0073 | 0.0746 | |
Total tax paid by enterprises (10,000 CNY) | 0.0268 | 0.1438 | 0.0736 | |
Total revenue of public finance (10,000 CNY) | 0.0172 | 0.1401 | 0.0664 |
Criterion Layer | Class A | Class B | Class C |
---|---|---|---|
Natural resources carrying capacity | >0.28 | 0.21~0.28 | <0.21 |
Economic competitiveness | >0.07 | 0.05~0.07 | <0.05 |
Future development potential | >0.40 | 0.25~0.40 | <0.25 |
Land-Use Type | Farmland | Garden Land | Woodland | Grassland |
---|---|---|---|---|
Coefficient | 0.0422 | −0.0730 | −0.0578 | −0.0021 |
Source | Sun [49] | Zhao et al. [50] | Fang et al. [51] | Fang et al. [51] |
Zoning Groups | Slope (°) | Repurposing Options | Rules |
---|---|---|---|
Key development zone | ≤15 | Farmland or garden land | None |
>15 | Built-up land (for displacement) | The residential land reuse is determined by the type of land occupied by built-up land | |
Optimized development zone | ≤15 | Farmland or garden land | None |
>15 | Woodland or grassland | None | |
Restricted development zone | ≤15 | Farmland or garden land | None |
>15 | Woodland or grassland | ||
Prohibited development zone | All | Woodland | All residential land parcels are forcibly converted to woodland |
Land-Use Type | S1 | S2 | S3 |
---|---|---|---|
Farmland | 1155.34 | up to 1155.34 | - |
Garden land | - | 0~1155.34-Qfarmland | 1155.34 |
Woodland | 24.58 | 24.58~582.51 | 582.51 |
Grassland | 557.94 | 0~557.94-Qwoodland | - |
Built-up land (for displacement) | 274.38 | 274.38 | 274.38 |
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Xu, F.; Chi, G.; Wang, H. Scenario Analysis of Carbon Emission Changes Resulting from a Rural Residential Land Decrement Strategy: A Case Study in China. Land 2024, 13, 51. https://doi.org/10.3390/land13010051
Xu F, Chi G, Wang H. Scenario Analysis of Carbon Emission Changes Resulting from a Rural Residential Land Decrement Strategy: A Case Study in China. Land. 2024; 13(1):51. https://doi.org/10.3390/land13010051
Chicago/Turabian StyleXu, Feng, Guangqing Chi, and Huan Wang. 2024. "Scenario Analysis of Carbon Emission Changes Resulting from a Rural Residential Land Decrement Strategy: A Case Study in China" Land 13, no. 1: 51. https://doi.org/10.3390/land13010051
APA StyleXu, F., Chi, G., & Wang, H. (2024). Scenario Analysis of Carbon Emission Changes Resulting from a Rural Residential Land Decrement Strategy: A Case Study in China. Land, 13(1), 51. https://doi.org/10.3390/land13010051