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生态学杂志 ›› 2026, Vol. 45 ›› Issue (4): 1057-1068.doi: 10.13292/j.1000-4890.202604.007

• ·城市生态系统保护与高质量发展专栏· • 上一篇    下一篇

城镇化进程中生态基础设施网络连通性时空演变及其影响机制与保护策略:以山东半岛城市群为例

范一洲,方大利,徐洪涛,邱国强,王学为,王静*   

  1. (北京师范大学水科学研究院, 北京 100875)

  • 出版日期:2026-04-10 发布日期:2026-04-09

Spatiotemporal evolution and driving mechanisms of ecological infrastructure network connectivity and conservation strategies during urbanization: A case study of the Shandong Peninsula urban agglomeration.

FAN Yizhou, FANG Dali, XU Hongtao, QIU Guoqiang, WANG Xuewei, WANG Jing*   

  1. (College of Water Sciences, Beijing Normal University, Beijing 100875, China).

  • Online:2026-04-10 Published:2026-04-09

摘要: 生态基础设施网络具有恢复与维持景观连通性和生境连续性及传输物质与能量流动的功能,是支撑城市可持续发展的自然生态系统重要基础,系统解析其景观连通性演变特征及其影响机制,对于实现区域生态系统整体性保护具有重要理论价值和现实意义。本研究以山东半岛城市群为例,通过构建生态基础设施网络并识别保护修复关键区域,耦合整体连通性指数(IIC)与Omniscape算法,提出了综合连通性指标以量化生态基础设施网络的景观连通性,并揭示了1990年、2000年、2010年和2020年连通性空间变化规律及因子交互影响机制,进而提出生态保护空间格局建设策略。结果表明:山东半岛城市群生态基础设施网络呈现“中东部及沿海地带聚集、西部稀疏”的空间分布,生态源地空间格局和阻力面变化造成生态廊道布局持续演变;30年间生态源地面积减少33.5 km2,新增28条生态廊道,综合连通度提升0.7%,渤海湾、黄河三角洲以西、莱州湾以南和南四湖等水域湿地区域连通性显著提升;降水、气温与径流量等水文气候因子的交互作用对生态基础设施网络连通性时空演变影响显著;以此为基础构建了山东半岛城市群“两屏、三带、多源多廊”的生态保护空间格局,为区域生态系统整体性保护与修复提供理论借鉴与实践参考。

关键词:

Abstract: Ecological infrastructure networks provide a fundamental basis for natural ecosystems in support of urban sustainable development. These networks help maintain landscape connectivity and habitat continuity, as well as facilitate material and energy flows. Systematic analysis of changes in the connectivity of ecological infrastructure networks and the driving mechanisms holds significant theoretical and practical insights for achieving the integrated ecosystem preservation at the regional scale. Taking Shandong Peninsula urban agglomeration as a case area, we developed ecological infrastructure networks and identified key areas for conservation and restoration. We proposed a comprehensive connectivity metric by integrating the Integral Index of Connectivity (IIC) and the Omniscape algorithm, to quantify the connectivity of ecological infrastructure networks. Changes in spatial patterns of connectivity in 1990, 2000, 2010, and 2020 as well as the interaction mechanisms of factors influencing these changes were explored. A strategy for constructing the spatial pattern of ecosystem conservation was subsequently proposed. The results showed that the ecological infrastructure networks exhibited a spatial distribution pattern of “concentrated in the east, middle and coastal areas, and sparse in the west”. Changes in the ecological corridor layout were influenced by changes in spatial patterns of ecological source areas and resistance surfaces. The total area of ecological sources decreased by 33.5 km2 and 28 new ecological corridors were added during the study period. The comprehensive connectivity increased by 0.7%, mainly concentrated in water bodies and wetlands such as Bohai Bay, west of the Yellow River Delta, south of Laizhou Bay, and the Nansi Lake region. The interaction of hydro-climatic factors (precipitation, temperature, and natural runoff) exerted a significant influence on the spatiotemporal variations in the connectivity of ecological infrastructure networks. Based on these findings, we constructed a spatial pattern of “two shields, three belts, multiple sources and corridors” for the ecological conservation, which provide a theoretical framework and practical reference for the integrated conservation and restoration of regional ecosystems.

Key words: ecological infrastructure network, connectivity measurement, driving mechanism, Geodetector, ecological conservation spatial pattern