Spatio-Temporal Pattern of Coupling Coordination between Urban Development and Ecological Environment under the “Double Carbon” Goal: A Case Study in Anhui, China
Abstract
:1. Introduction
2. Overview of the Study Area and Data Sources
2.1. Overview of the Study Area
2.2. Data Sources
3. Research Methods
3.1. Construction of Urban Development and Ecological Environment Index System
3.2. Entropy Value Method to Determine Indicator Weight
3.2.1. Data Standardization
3.2.2. Determine the Weight of Each Indicator
3.3. Construction of the Coupling Coordination Degree Model
3.3.1. Coupling Model
3.3.2. Coupling Coordination Degree Model
4. Results and Analysis
4.1. Time Series Analysis of Coupling between Urban Development and Ecological Environment in Anhui Province
4.1.1. Evolution of Urban Development Level
4.1.2. Evolution of Ecological Environment Level
4.1.3. Horizontal Evolution of Coupling Degree and Coupling Coordination Degree
4.2. Spatial Difference of Coupling Coordination Degree between Urban Development and Ecological Environment in Anhui Province
5. Conclusions and Suggestions
5.1. Conclusions
- From the time series analysis of the comprehensive index of urban development the and ecological environment, the level of urbanization in Anhui Province was constantly improving, showing the characteristics of rapid social urbanization development, large fluctuation of economic urbanization, slow urbanization process of population and slow growth of spatial urbanization. The quality of the ecological environment was constantly improving, showing the characteristics of rising ecological environment pressure levels and protection, among which the ecological environment pressure had a great impact on the ecological environment;
- From the time series analysis of coupling degree and coupling coordination degree between urban development and the ecological environment, the coupling coordination relationship between urban development and the ecological environment in Anhui Province had been continuously improved. Coupling degree was above 0.9 in most cases, showing a stable trend. Coupling coordination degree kept an overall rising trend from mild maladjustment to a high-quality coordination stage;
- The spatial evolution of coupling coordination degree between urban development and the ecological environment of 16 cities in Anhui province in 2010, 2015 and 2020 was analyzed. It was found that the coupling coordination development process of 16 cities in Anhui Province was different, and by 2020, it mainly involved three types: reluctant coordination, verge of disorder and mild disorder.
5.2. Suggestions
5.2.1. Improve the Level of Comprehensive Index to Achieve High-Quality Urban Ecological Development
5.2.2. Improve the Level of Coupling and Coordination to Realize the Coordinated Development of Urban Ecology
5.2.3. Narrow the Regional Development Gap and Achieve Integrated Urban Ecological Development
6. Limitation
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Target System | Primary Index | Secondary Indicators | Indicator Weight | Indicator Nature |
---|---|---|---|---|
Urban development | Population development (0.193) | Urbanization rate of permanent population | 0.064 | + |
Natural growth rate of permanent population | 0.059 | − | ||
Proportion of employment in the tertiary industry | 0.070 | + | ||
Economic development (0.268) | GDP per capita | 0.066 | + | |
Proportion of output value of secondary and tertiary industries in GDP | 0.068 | + | ||
Total fixed asset investment | 0.088 | + | ||
Total imports and exports as a percentage of GDP | 0.046 | + | ||
Social development (0.378) | Per capita disposable income of urban households | 0.065 | + | |
Per capita living area of urban residents | 0.093 | + | ||
Number of university students per 10,000 population | 0.043 | + | ||
Number of doctors per 10000 population | 0.086 | + | ||
The total retail sales of social consumer goods | 0.091 | + | ||
Spatial development (0.161) | Road area per capita | 0.048 | + | |
Built-up area | 0.062 | + | ||
Urban population density | 0.050 | + | ||
Ecological environment | Ecological environment level (0.294) | Total water resources per capita | 0.093 | + |
Per capita park green space | 0.062 | + | ||
Greening coverage rate of built-up area | 0.055 | + | ||
Percentage of days with air quality at or better than Grade II | 0.084 | + | ||
Ecological environment protection (0.169) | Centralized treatment rate of sewage treatment plant | 0.042 | + | |
Comprehensive utilization rate of industrial solid waste | 0.093 | + | ||
Harmless treatment rate of domestic waste | 0.034 | + | ||
Ecological environment pressure (0.537) | Total industrial wastewater discharge per capita | 0.182 | − | |
Per capita industrial sulfur dioxide emissions | 0.149 | − | ||
Per capita production of industrial solid waste | 0.045 | − | ||
Per capita electricity consumption | 0.061 | − | ||
Energy consumption per unit of GDP | 0.100 | − |
Coupling Degree | Coupling Degree |
---|---|
0.8 ≤ C < 1.0 | High level coupling |
0.5 ≤ C < 0.8 | Running-in horizontal coupling |
0.3 ≤ C < 0.5 | Antagonistic horizontal coupling |
0 ≤ C < 0.3 | Low level coupling |
Coupling Coordination Degree (D) | Coordination Level | Coupling Coordination Degree (D) | Coordination Level |
---|---|---|---|
0.0–0.09 | Extreme disorder | 0.5–0.59 | Reluctantly coordination |
0.1–0.19 | Serious disorder | 0.6–0.69 | Primary coordination |
0.2–0.29 | Moderate disorder | 0.7–0.79 | Intermediate coordination |
0.3–0.39 | Mild disorder | 0.8–0.89 | Good coordination |
0.4–0.49 | Verge of disorder | 0.9–1.00 | High quality coordination |
Prefecture and City | 2010 | 2015 | 2020 |
---|---|---|---|
Hefei | 0.782 | 0.730 | 0.515 |
Huaibei | 0.573 | 0.545 | 0.471 |
Bozhou | 0.530 | 0.556 | 0.494 |
Suzhou | 0.472 | 0.510 | 0.420 |
Bengbu | 0.564 | 0.586 | 0.465 |
Fuyang | 0.435 | 0.519 | 0.457 |
Huainan | 0.504 | 0.463 | 0.326 |
Chuzhou | 0.516 | 0.549 | 0.508 |
Lu’an | 0.500 | 0.553 | 0.448 |
Ma’anshan | 0.583 | 0.572 | 0.498 |
Wuhu | 0.680 | 0.638 | 0.481 |
Xuancheng | 0.545 | 0.598 | 0.489 |
Tongling | 0.583 | 0.558 | 0.532 |
Chizhou | 0.614 | 0.615 | 0.495 |
Anqing | 0.530 | 0.572 | 0.473 |
Huangshan | 0.640 | 0.684 | 0.569 |
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Qian, L.; Shen, M.; Yi, H. Spatio-Temporal Pattern of Coupling Coordination between Urban Development and Ecological Environment under the “Double Carbon” Goal: A Case Study in Anhui, China. Sustainability 2022, 14, 11277. https://doi.org/10.3390/su141811277
Qian L, Shen M, Yi H. Spatio-Temporal Pattern of Coupling Coordination between Urban Development and Ecological Environment under the “Double Carbon” Goal: A Case Study in Anhui, China. Sustainability. 2022; 14(18):11277. https://doi.org/10.3390/su141811277
Chicago/Turabian StyleQian, Li, Mengyuan Shen, and Huimin Yi. 2022. "Spatio-Temporal Pattern of Coupling Coordination between Urban Development and Ecological Environment under the “Double Carbon” Goal: A Case Study in Anhui, China" Sustainability 14, no. 18: 11277. https://doi.org/10.3390/su141811277
APA StyleQian, L., Shen, M., & Yi, H. (2022). Spatio-Temporal Pattern of Coupling Coordination between Urban Development and Ecological Environment under the “Double Carbon” Goal: A Case Study in Anhui, China. Sustainability, 14(18), 11277. https://doi.org/10.3390/su141811277