Spatiotemporal Dynamics and Optimization Management of Ecosystem Service Flows in the Yangtze River Delta Urban Agglomeration, China
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Data Sources
2.3. Research Methods
2.3.1. Calculating the ESV
2.3.2. Calculating the ESF
3. Results
3.1. ESV
3.2. Interregional ESF
- 1.
- Core cities: Hangzhou, Suzhou (Jiangsu), Wuxi, Nanjing, Hefei, Taizhou (Zhejiang), Yancheng, Chuzhou, and Xuancheng;
- 2.
- Non-core cities: Huangshan, Lishui, Huai’an, and Lu’an;
3.3. Regional Division of the YRD from a Three-Dimensional Perspective of Ecological Support, Economic Development, and ESF
4. Discussion
5. Conclusions
- 1.
- From 2000 to 2020, the ESV of the YRD urban agglomeration exhibited a “rapid then slow” declining trend. The conversion of high-value land types, such as cropland and forest, to construction land was the main factor behind this decline, while the growth in water and the deceleration of construction land expansion slowed the decline. The ESV declined across all three provinces and one municipality, except for Yancheng, Ningbo, Lianyungang, and Zhoushan, where it increased. Among them, Yancheng showed the highest growth with an increase of CNY 11.73 billion. The regional distribution displayed a high-south, low-north spatial pattern. Among the 41 cities, over 35% of cities’ ESV was primarily contributed by forest, and 25% of cities experienced a reduction exceeding 5% in the contribution of cropland. In terms of service types, only hydrological regulation, waste treatment, and aesthetic landscape services showed value growth, while the remaining six service types continued to decline. Among these, the value of hydrological regulation services accounted for 19.3% in 2020, maintaining the largest proportion with notable growth.
- 2.
- From 2000 to 2020, ESF in the YRD urban agglomeration remained relatively stable, characterized by predominantly intra-provincial circulation. The ESF slightly increased initially in 2000 and then gradually declined, reaching CNY 211.32 billion in 2020, with an overall decrease of only 0.6%. Anhui, Jiangsu, and Zhejiang provinces primarily followed an intra-provincial circulation pattern, with internal flows accounting for over 70%. In terms of city outflows, Hangzhou, Huangshan, Xuancheng, Taizhou (Zhejiang), and Huai’an consistently ranked among the top five, collectively accounting for 41–42% of total outflows; Yancheng had the highest growth in outflows with a 35.5% increase. For city inflows, Jinhua, Xuancheng, Hangzhou, Changzhou, and Shaoxing consistently remained the top five recipients, collectively accounting for approximately 34%; Taizhou (Jiangsu) and Jiaxing were key drivers of inflow growth. In terms of net outflows/inflows, Hangzhou, Taizhou (Zhejiang), and Chuzhou had the highest net output levels, while Jinhua, Changzhou, and Taizhou (Jiangsu) had the highest net input levels. The numbers of SPAs and SBAs remained stable at 25 and 26, respectively; Nantong shifted from an SPA to an SBA in 2010, while Ningbo became an SPA in 2020.
- 3.
- A four-quadrant framework of per area ESV and per capita GDP was constructed based on ESF, classifying 41 cities in YRD into four distinct states: high ecological support–high economic development Quadrant I; low ecological support–high economic development Quadrant II; low ecological support–low economic development Quadrant III; and high ecological support–low economic development Quadrant IV. The results indicate that from 2000 to 2020, cities in YRD primarily transitioned among Quadrants I, II, and IV, with some cities moving from Quadrant III to Quadrant II, and no cities reverted to Quadrant III. Based on the four-quadrant classification, optimization management pathways and strategies for regional ecological-economic coordination were proposed. It integrates population, land, economic, and ecological dimensions to promote coordinated development. By overcoming the constraints of administrative boundaries on ecological functions and economic performance, the study puts forward ESF strategies for ecological and economic optimization. These strategies provide decision-making references for improving ecological compensation mechanisms, advancing regional collaborative governance, and facilitating the market-oriented transaction of ecosystem services.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
ESV | Ecosystem service value |
ESF | Ecosystem service flow |
YRD | Yangtze River Delta |
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Initial Quadrant | Final Quadrant | Cities |
---|---|---|
High ecological support–high economic development quadrant I | Low ecological support–high economic development quadrant II | Changzhou |
High ecological support–high economic development quadrant I | High ecological support–low economic development quadrant IV | Taizhou (Zhejiang), Jinhua, Tongling, and Wenzhou |
Low ecological support–high economic development quadrant II | High ecological support–high economic development quadrant I | Ma’anshan |
High ecological support–low economic development quadrant IV | High ecological support–high economic development quadrant I | Huai’an |
Low ecological support–low economic development quadrant III | Low ecological support–high economic development quadrant II | Yancheng, Xuzhou, Hefei, and Taizhou (Jiangsu) |
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Jia, H.; Chen, H. Spatiotemporal Dynamics and Optimization Management of Ecosystem Service Flows in the Yangtze River Delta Urban Agglomeration, China. Sustainability 2025, 17, 4727. https://doi.org/10.3390/su17104727
Jia H, Chen H. Spatiotemporal Dynamics and Optimization Management of Ecosystem Service Flows in the Yangtze River Delta Urban Agglomeration, China. Sustainability. 2025; 17(10):4727. https://doi.org/10.3390/su17104727
Chicago/Turabian StyleJia, Huilan, and Hongmin Chen. 2025. "Spatiotemporal Dynamics and Optimization Management of Ecosystem Service Flows in the Yangtze River Delta Urban Agglomeration, China" Sustainability 17, no. 10: 4727. https://doi.org/10.3390/su17104727
APA StyleJia, H., & Chen, H. (2025). Spatiotemporal Dynamics and Optimization Management of Ecosystem Service Flows in the Yangtze River Delta Urban Agglomeration, China. Sustainability, 17(10), 4727. https://doi.org/10.3390/su17104727