Construction of Ecological Network Based on Multi-Scale Conversion and Nesting
Abstract
:1. Introduction
2. Materials and Methods
2.1. The Study Area and Data
2.2. Research Method
2.2.1. The Comprehensive Identification of Ecological Sources
2.2.2. Construction of Ecological Network
3. Results
3.1. The Spatial Distribution Pattern of Ecosystem Services and Ecological Sensitivity Evaluations
3.2. Extraction and Verification of Ecological Sources in Metropolitan Areas and Their Distribution
3.3. Establishment of the Minimum Cumulative Landscape Resistance Surface
3.4. Construction of Ecological Networks under Multi-Scale Nesting
3.4.1. Ecological Corridor Construction of the Metropolitan Area and the Urban Area
3.4.2. Space Characteristics of Pinch Points and Barrier Points
3.5. Nesting Analysis and Optimization of Ecological Network between Scales
3.5.1. Nesting Analysis of Ecological Sources and Ecological Corridors
3.5.2. Nesting Analysis of Ecological Pinch Points and Barrier Points
3.6. Suggestions for Optimizing the Ecological Network of Hefei Metropolitan Area
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Data Name | Resolution | Format | Data Description |
---|---|---|---|
Land use | 30 m | Grid | Generated by human visual interpretation based on the Landsat 8 remote sensing image, used to calculate habitat quality |
Annual average precipitation | 30 m | Grid | Obtained by calculating multi-year average after interpolation of data from national meteorological station, used to calculate rainfall erosivity factor and water conservation capacity |
Soil | 1000 m | Grid | Obtained based on the soil type map (1:1,000,000) and the data of the second soil survey, used to calculate the soil erodibility factor |
DEM | 30 m | Grid | Obtained from the STRM DEM data products, from which the LS factors are calculated |
NDVI | 1000 m | Grid | Generated by maximum value synthesis method based on the SPOT/VEGETATION NDVI satellite remote sensing data of continuous time series |
Actual evapotranspiration | 30 m | Grid | Cut according to the mask of the study area based on the actual land evapotranspiration data of the whole country, the 30 m precision data of the study area are obtained by using Kriging interpolation |
National terrestrial ecosystem classification | — | Vector | Used to calculate water conservation capacity |
Planning text | — | Paper characteristics | Obtained from the government planning department |
Ecological Red Line of Anhui Province | — | Vector | Obtained from the government planning department |
basic geographic data | — | Vector | Include the distribution data of administrative divisions, road traffic, river systems, etc. |
Ecosystem Services | Principles and Methods | Calculation Process |
---|---|---|
Water conservation | Model of water conservation [20] | (1) In this formula, TQ represents the total water conservation (), represents rainfall (mm), represents surface runoff, represents evapotranspiration (mm), represents the area of type i ecosystem (), i represents the i-th type of ecosystem type in the study area, and represents the number of ecosystems in the study area. |
Soil and water conservation | Model of soil and water conservation [21] | The soil and water conservation service model is modified by the revised universal soil loss equation (RUSLE) to carry out the evaluation, the formula is as follows: (2) In this formula, represents the amount of soil and water conservation, represents the potential soil erosion amount, represents the actual soil erosion amount, represents the rainfall erosivity factor (MJ·mm/(hm2·h·a)), represents the soil erodibility factor (t·hm2·h/(MJ·hm2·mm)), represents the slope length and slope factor (dimensionless), represents the vegetation cover and crop management factor (dimensionless). |
Carbon fixation and oxygen release (NPP) | Carbon module of InVEST model, specific parameter settings are obtained from related studies [22,23] | (3) In this formula, represents the total carbon sequestration, represents the aboveground carbon sequestration, represents the soil carbon sequestration, represents the dead carbon sequestration, represents the underground carbon sequestration. |
Habitat quality | Habitat Quality module of InVEST model, specific parameter settings are obtained from related studies [24] | (4) In this formula, represents the habitat quality index of the grid of the habitat type , represents the habitat suitability of the habitat type , represents the habitat stress level of the grid of the habitat type , represents the half-saturation constant. |
Evaluation Factor/Unit | Sensitivity Assignment | Weights | ||||
---|---|---|---|---|---|---|
9 | 7 | 5 | 3 | 1 | ||
NDVI | (0.65, 0.75) | (0.65, 0.75) | (0.35, 0.50) | 0.20 | ||
Elevation (m) | (500, 800) | (800, 1100) | (1100, 1400) | 1400 | 0.15 | |
Slope | (5, 10) | (10, 15) | (15, 25) | 0.15 | ||
Land use type | Forest land or waterbody | Grassland | Cropland | Construction land | Unuse land | 0.20 |
Soil erosion intensity | Extremely strong erosion | Strong erosion | Moderate erosion | Mild erosion | Slight erosion | 0.30 |
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Yu, H.; Wang, Y.; Eme, C.; Fan, X.; Rong, Y.; Zhang, Q.; Liang, Z. Construction of Ecological Network Based on Multi-Scale Conversion and Nesting. Water 2021, 13, 1278. https://doi.org/10.3390/w13091278
Yu H, Wang Y, Eme C, Fan X, Rong Y, Zhang Q, Liang Z. Construction of Ecological Network Based on Multi-Scale Conversion and Nesting. Water. 2021; 13(9):1278. https://doi.org/10.3390/w13091278
Chicago/Turabian StyleYu, Haoran, Yongzheng Wang, Chan Eme, Xin Fan, Yuejing Rong, Qiang Zhang, and Zhe Liang. 2021. "Construction of Ecological Network Based on Multi-Scale Conversion and Nesting" Water 13, no. 9: 1278. https://doi.org/10.3390/w13091278
APA StyleYu, H., Wang, Y., Eme, C., Fan, X., Rong, Y., Zhang, Q., & Liang, Z. (2021). Construction of Ecological Network Based on Multi-Scale Conversion and Nesting. Water, 13(9), 1278. https://doi.org/10.3390/w13091278