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生态学杂志 ›› 2026, Vol. 45 ›› Issue (9): 3063-3074.doi: 10.13292/j.1000-4890.202609.011

• 研究报告 • 上一篇    下一篇

路网扩展的多尺度生态效应: 以泉州市为例

扶清杰,丘伟国,林程翔,张兰怡,陈诚,胡喜生*   

  1. (福建农林大学交通与土木工程学院, 福州 350002)

  • 出版日期:2026-09-10 发布日期:2026-09-08

Multi-scale ecological effects of road network expansion: A case study of Quanzhou City.

FU Qingjie, QIU Weiguo, LIN Chengxiang, ZHANG Lanyi, CHEN Cheng, HU Xisheng*   

  1. (College of Transportation and Civil Engineering, Fujian Agriculture and Forestry University, Fuzhou 350002, China).

  • Online:2026-09-10 Published:2026-09-08

摘要: 分析不同等级道路扩展对生态环境质量的影响对指导道路网络布设和生态保护具有重要意义。以泉州市为例,基于2016和2023年的道路数据和Landsat影像,借助遥感生态指数(RSEI),探讨道路缓冲区RSEI对不同等级路网的响应;并以1000 m×1000 m、1500 m×1500 m、2000 m×2000 m、2500 m×2500 m、3000 m×3000 m不同尺度的网格划分空间单元,运用双变量空间自相关分析、地理加权回归分析(GWR)等方法揭示道路核密度(KDE)和RSEI之间关系的空间异质性。结果表明:2016—2023年整体路网长度大幅度增长,KDE平均值显著增加,RSEI整体平均值呈现下滑趋势,在面积增幅上生态环境质量好的区域小于质量差的区域,RSEI呈现“局部改善与整体退化并存”的变化特征。随缓冲区距离增大(0~3000 m),所有道路等级的RSEI均呈现梯度上升趋势,其中国道和省道影响的阈值约在900 m,县道与乡道的阈值约在600~750 m,但乡道和县道随距离变化的RSEI的波动幅度大于国道和省道。多尺度双变量空间自相关数据表明,KDE和RSEI呈负相关,全局Moran’s I均为显著负值,其中1000 m×1000 m尺度最显著,2016和2023年分别达到-0.476和-0.553;ΔKDE-ΔRSEI的Moran’s I均为负值,且随研究尺度的增大而减小。在多尺度GWR模型比较中,基于1000 m×1000 m和1500 m×1500 m网格单元构建的模型拟合性能最佳,调整R2均较大且AIC较小;总体来看KDE和RSEI呈负相关,且相关关系存在空间分异,研究区西北部的永春县和德化县出现小部分正效应区域;南翼新城及福厦高铁沿线呈现负效应,ΔKDE-ΔRSEI与其结果基本一致;2016—2023年整体正相关区域明显增加。研究可为协调沿海城市发展与生态保护提供多尺度空间决策依据。

关键词: 道路扩展, 生态环境质量, 遥感生态指数, 道路核密度, 空间自相关, 地理加权回归

Abstract: Analyzing the impacts of road network expansion across different grades on environment quality is vital for guiding infrastructure planning and ecological conservation. We leveraged road data and Landsat imagery (2016 and 2023) alongside the remote sensing ecological index (RSEI) to assess RSEI responses to road networks with different grades within buffer zones in Quanzhou City. Spatial units were analyzed at different grid scales (1000 m×1000 m, 1500 m×1500 m, 2000 m×2000 m, 2500 m×2500 m, 3000 m×3000 m). The spatial heterogeneity of the relationships between road kernel density estimation (KDE) and RSEI were analyzed using bivariate spatial autocorrelation and geographically weighted regression (GWR). Results showed the total road length increased significantly from 2016 to 2023, with average KDE rising significantly, while the overall average RSEI declined. The areas with good ecological environment quality had a smaller increase compared to those with poor ecological environment quality, indicating local improvement coexisting with overall degradation in RSEI. As the buffer zone distance increased from 0 to 3000 m, the RSEI values increased gradually for all road grades, with impact thresholds approximately 900 m for national/provincial roads and 600-750 m for county/township roads. The latter showed greater RSEI fluctuation with distance. Multiscale bivariate spatial autocorrelation confirmed a significant negative KDE-RSEI correlation (significant negative Global Moran’s I), being strongest at the 1000 m×1000 m scale (Moran’s I=-0.476 in 2016, -0.553 in 2023). Moran’s I of ΔKDE-ΔRSEI was negative and decreased with increasing scales. By comparing multi-scale GWR models, 1000 m×1000 m and 1500 m×1500 m grids yielded optimal fitness (higher adjusted R2, lower AIC). Overall, KDE negatively correlated with RSEI, exhibiting spatial heterogeneity. Small areas with positive effect emerged in Yongchun and Dehua counties (northwest part of the study area), while negative effects occurred in South Wing New City and along the Fuzhou-Xiamen High-Speed Railway. Such results were basically true for ΔKDE-ΔRSEI relationships. Areas with positive correlations increased notably from 2016 to 2023. Our results provide multi-scale spatial decision support for reconciling coastal urban development with ecological protection.


Key words: road network expansion, ecological environment quality, remote sensing ecological index, road kernel density, spatial autocorrelation, geographically weighted regression