Author:
Wan Yunshan,Wang Yilei,Gao Ming,Jin Lin
Abstract
AbstractCarbon–neutral growth is a crucial long-term climatic aim in the context of global warming. This paper introduces complex network theory and explores its potential application to achieve this goal. Specifically, we investigate the spatial and temporal distribution of nodes and sources in the ecological network, and examine whether a relationship exists between the topological index of network nodes and the landscape pattern index of ecological source areas. We also determine the contribution of nodes to the carbon stock of the entire network by exploring the correlation between the carbon stock of nodes and sources to develop an optimization strategy based on the synergistic effect of node-source carbon enhancement. Finally, we test the effect of network optimization through robustness. Our results show that: (1) The correlation topological feature index analysis reveals that the degree distribution of the node network's topological characteristics becomes dispersed and modular, exhibiting the characteristics of small-world networks according to a large clustering coefficient. The heterogeneity and extent of ecological source landscapes have increased by modularity index but remain distributed and locally fragmented; (2) According to correlation analysis, by enhancing the eccentricity of the node topology, the patch cohesion index (COHESION) of the ecological source site can maximize the contribution of the node to the enhancement of the carbon stock benefits of the source site; (3) According to the tests on the robustness of nodes and edges and the robustness of network links, network stability is improved and carbon sink capacity is enhanced. Simultaneously, the restoration and rejuvenation of ecological space through national ecological construction projects can effectively improve the carbon sink within the organized region, contributing to the carbon neutrality aim. This research gives scientific and quantifiable references for potential ecological construction projects for sustainable cities and the optimization of urban ecological space structure.
Funder
the Korea Ministry of Land, Infrastructure and Transported
Publisher
Springer Science and Business Media LLC
Reference47 articles.
1. Liu, S. L. et al. Research progress on landscape ecological networks. Acta Ecol. Sin. 37, 3947–3956 (2017).
2. Tratalos, J., Fuller, R. A., Warren, P. H., Davies, R. G. & Gaston, K. J. Urban form, biodiversity potential and ecosystem services. Landsc. Urban Plan. 83, 308–317 (2007).
3. Jongman, R. H., Külvik, M. & Kristiansen, I. European ecological networks and greenways. Landsc. Urban Plan. 68, 305–319 (2004).
4. Xia, C. & Chen, B. Urban land-carbon nexus based on ecological network analysis. Appl. Energy 276, 115465 (2020).
5. Zhu, X., Mu, X. & Hu, G. Ecological network analysis of urban energy metabolic system—A case study of Beijing. Ecol. Model. 404, 36–45 (2019).
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