Basin water ecological function monitoring zoning method and device
By obtaining basin data and evaluating indicators using water system network and ecosystem service model, the problem of insufficient targeted zoning of water ecological functions in the basin is solved, and precise monitoring and zoning of water ecological functions in the basin is achieved.
Patent Information
- Application Number
- CN202510230438.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2045-02-28
AI Technical Summary
In the prior art, the monitoring zoning of water ecological functions of the basin is lacking in targeting, and the continuity, hierarchy and heterogeneity characteristics of the basin are not fully considered.
By obtaining the digital elevation model data, land cover data, meteorological data and soil data of the target basin, the cumulative impact value is determined using the water system network, and the water production, soil conservation and water quality purification indicators are evaluated in combination with ecosystem services and trade-off models, the water ecological function comprehensive index is calculated to achieve accurate basin water ecological function monitoring zoning.
It has improved the pertinence of monitoring of water ecological functions in the basin, and can accurately identify important areas and implement zoning monitoring, which has improved the accuracy and effectiveness of monitoring.
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Figure CN119722418B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of water ecological monitoring, and in particular to a method and device for monitoring and zoning water ecological functions in a watershed. Background Art
[0002] In recent years, a variety of factors, including population growth, land use changes, and agricultural and urban expansion, have led to the rapid degradation and loss of aquatic ecosystems and their ecological functions. Monitoring aquatic ecological functions is a key component in protecting and restoring these functions. A river basin is a relatively closed system with clearly defined boundaries, exchanging matter, energy, and information with the outside world. Monitoring aquatic ecological functions within a river basin allows us to comprehensively capture fundamental information about the aquatic ecosystem from a holistic perspective, providing a scientific basis for protecting and restoring its water ecosystems.
[0003] In related technologies, when conducting zoning monitoring of the water ecological functions of a river basin, insufficient consideration is given to the continuity, hierarchy and heterogeneity characteristics of the river basin, and the monitoring is not very targeted. Summary of the Invention
[0004] Based on this, the purpose of this application is to provide a method and device for watershed water ecological function monitoring zoning, which can optimize the watershed water ecological function monitoring zoning, better adapt to the continuity, hierarchy and heterogeneity characteristics of the watershed, and improve the targeted nature of watershed water ecological function monitoring.
[0005] According to a first aspect of an embodiment of the present application, a method for monitoring and zoning water ecological functions in a watershed is provided, comprising the following steps:
[0006] Obtain digital elevation model data, land cover data, meteorological data, and soil data of the target watershed;
[0007] Based on the digital elevation model data, the target watershed is divided into sub-watershed units to obtain several sub-watershed units and water system networks;
[0008] Determine the cumulative impact value of each sub-basin unit based on the water system network;
[0009] Using a comprehensive assessment model of ecosystem services and trade-offs, the water ecological functions of the target watershed are assessed based on digital elevation model data, land cover data, meteorological data, and soil data to obtain water yield indicators, soil conservation indicators, and water quality purification indicators;
[0010] Based on the cumulative impact value, soil conservation index, water yield index and water quality purification index, the comprehensive index of water ecological function of each sub-basin unit is obtained;
[0011] Based on the comprehensive index of water ecological function, the target river basin is divided into water ecological function monitoring zones.
[0012] According to a second aspect of an embodiment of the present application, a watershed water ecological function monitoring zoning device is provided, comprising:
[0013] Data acquisition module, used to obtain digital elevation model data, land cover data, meteorological data and soil data of the target watershed;
[0014] The water system network acquisition module is used to divide the target watershed into sub-watershed units based on the digital elevation model data, and obtain several sub-watershed units and water system networks;
[0015] The cumulative influence value acquisition module is used to determine the cumulative influence value of each sub-basin unit based on the water system network;
[0016] The indicator acquisition module is used to evaluate the water ecological function of the target watershed using a comprehensive assessment model of ecosystem services and trade-offs based on digital elevation model data, land cover data, meteorological data, and soil data to obtain water yield indicators, soil conservation indicators, and water quality purification indicators;
[0017] The index acquisition module is used to obtain the comprehensive index of water ecological function of each sub-basin unit based on the cumulative impact value, soil conservation index, water yield index and water quality purification index;
[0018] The water ecological function monitoring zoning module is used to carry out water ecological function monitoring zoning of the target watershed based on the comprehensive water ecological function index.
[0019] The embodiment of the present application obtains digital elevation model data, land cover data, meteorological data and soil data of the target watershed; divides the target watershed into sub-watershed units based on the digital elevation model data to obtain a number of sub-watershed units and a water system network; determines the cumulative influence value of each sub-watershed unit based on the water system network; utilizes a comprehensive evaluation model of ecosystem services and trade-offs to evaluate the water ecological function of the target watershed based on the digital elevation model data, land cover data, meteorological data and soil data to obtain a water yield index, a soil conservation index and a water quality purification index; obtains a comprehensive water ecological function index of each sub-watershed unit based on the cumulative influence value, soil conservation index, water yield index and water quality purification index; and zons the target watershed for water ecological function monitoring based on the comprehensive water ecological function index. This application takes into account the propagation effect of rivers in the water network. By determining the cumulative influence value of upstream sub-basin units on downstream sub-basin units, the soil conservation index, water production index and water quality purification index of the sub-basin units, it comprehensively evaluates the water ecological function of the basin. It can accurately identify important areas of water ecological function in the basin, implement zoning monitoring, and improve the targeted monitoring.
[0020] It should be understood that the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the present application.
[0021] For better understanding and implementation, the present invention is described in detail below with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 A flow chart of a method for monitoring and zoning water ecological functions in a watershed according to an embodiment of the present application;
[0023] Figure 2 This is a structural block diagram of a watershed water ecological function monitoring zoning device provided in one embodiment of the present application. DETAILED DESCRIPTION
[0024] In order to make the objectives, technical solutions and advantages of the present application clearer, the embodiments of the present application will be described in further detail below with reference to the accompanying drawings.
[0025] It should be clear that the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of this application.
[0026] The terms used in the embodiments of the present application are for the purpose of describing specific embodiments only and are not intended to limit the embodiments of the present application. The singular forms "a," "the," and "the" used in the embodiments of the present application and the appended claims are also intended to include plural forms unless the context clearly indicates otherwise. It should also be understood that the term "and / or" used herein refers to and includes any or all possible combinations of one or more associated listed items.
[0027] When the following description refers to the accompanying drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with the present application. On the contrary, they are merely examples of devices and methods consistent with some aspects of the present application as detailed in the appended claims. In the description of the present application, it should be understood that the terms "first", "second", "third", etc. are only used to distinguish similar objects, and are not necessarily used to describe a specific order or sequence, nor can they be understood as indicating or implying relative importance. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to the specific circumstances.
[0028] In this application, unless otherwise specified, "plurality" refers to two or more. "And / or" describes a relationship between associated objects, indicating that three possible relationships exist. For example, "A and / or B" can mean: A exists alone, A and B exist simultaneously, or B exists alone. The character " / " generally indicates that the associated objects are in an "or" relationship.
[0029] See also Figure 1 , which is a flow chart of a method for monitoring and zoning watershed water ecological functions provided in one embodiment of the present application. The method for monitoring and zoning watershed water ecological functions provided in the embodiment of the present application includes the following steps:
[0030] S10: Acquire digital elevation model data, land cover data, meteorological data, and soil data of the target watershed.
[0031] Among them, the target basin is the basin where water ecological function monitoring zoning is to be carried out.
[0032] Digital Elevation Model (DEM) data, DEM data is a digital simulation of landforms through limited terrain elevation data.
[0033] Land cover data refers to the data information about the complex of natural and artificial creations covering the surface of the earth, which can reflect the quantity and spatial distribution characteristics of land cover types in the target watershed.
[0034] Meteorological data include precipitation data and evapotranspiration data; soil data include the content of sand, silt, clay, organic carbon, plant available water content data and limiting root depth data.
[0035] In an embodiment of the present application, digital elevation model data of the target watershed can be downloaded from the geospatial data cloud, land cover data of the target watershed can be obtained from the global land cover database, meteorological data of the target watershed can be obtained from the China Meteorological Data Network, and soil data of the target watershed can be obtained from the National Soil Database of China.
[0036] S20: Divide the target watershed into sub-watershed units according to the digital elevation model data to obtain a number of sub-watershed units and a water system network.
[0037] Among them, the sub-basin unit refers to the closed surface area through which surface runoff flows when converging to a common outlet.
[0038] A water network refers to a river network system composed of numerous tributaries and main streams, which is gradually formed after a long period of erosion of the surface soil by surface runoff.
[0039] In the embodiment of the present application, hydrological analysis software can be used to process and analyze DEM data, divide the target watershed into sub-watershed units, and obtain multiple sub-watershed units and a water system network.
[0040] S30: Determine the cumulative influence value of each sub-basin unit based on the water system network.
[0041] Among them, the cumulative influence value is used to evaluate the cumulative influence of the sub-basin unit on the downstream sub-basin unit. The larger the cumulative influence value, the greater the cumulative influence of the sub-basin unit on the downstream sub-basin unit.
[0042] In the embodiment of the present application, the cumulative influence value of each sub-basin unit can be determined based on the number and flow direction of the main stream and each tributary in the water network, and the sub-basin units to which the main stream and tributaries belong.
[0043] S40: Using a comprehensive assessment model of ecosystem services and trade-offs, the water ecological functions of the target watershed are assessed based on digital elevation model data, land cover data, meteorological data, and soil data to obtain water yield indicators, soil conservation indicators, and water quality purification indicators;
[0044] Among them, the Integrated Valuation of Ecosystem Services and Trade-offs (InVEST model) aims to spatialize the quantitative assessment of the value of ecosystem service functions by simulating the changes in the physical quantity and value of ecosystem service systems under different land cover scenarios, providing a scientific basis for decision makers to weigh the benefits and impacts of human activities.
[0045] The soil conservation index is used to assess soil conservation function; larger values indicate stronger soil conservation function. The water yield index is used to assess water yield function; larger values indicate better water yield function. The water purification index is used to assess water purification function. It refers to the ability of vegetation and soil to intercept nutrients (nitrogen and phosphorus); larger values indicate weaker water purification capacity.
[0046] In an embodiment of the present application, the soil conservation function, water yield function and water quality purification function are evaluated based on the InVEST model to determine the soil conservation index, water yield index and water quality purification index of each sub-basin unit.
[0047] S50: Based on the cumulative impact value, soil conservation index, water yield index and water quality purification index, the comprehensive index of water ecological function of each sub-basin unit is obtained.
[0048] In an embodiment of the present application, corresponding weights are assigned to the cumulative influence value, soil conservation index, water yield index and water quality purification index of each sub-basin unit, and the weights are used to perform weighted summation on the cumulative influence value, soil conservation index, water yield index and water quality purification index of each sub-basin unit to obtain the comprehensive index of water ecological function of each sub-basin unit.
[0049] S60: Based on the comprehensive water ecological function index, the target watershed is divided into water ecological function monitoring zones.
[0050] In this embodiment of the present application, the index interval of the comprehensive water ecological function index of each sub-basin unit can be determined. Based on the mapping relationship between the preset index interval and the water ecological function monitoring zone, the water ecological function monitoring zone of each sub-basin unit can be determined. The water ecological function monitoring zones include extremely important water ecological function monitoring zones, important water ecological function monitoring zones, and general water ecological function monitoring zones.
[0051] In the embodiment of the present application, digital elevation model data, land cover data, meteorological data and soil data of the target watershed are obtained; based on the digital elevation model data, the target watershed is divided into sub-watershed units to obtain a number of sub-watershed units and a water system network; based on the water system network, the cumulative influence value of each sub-watershed unit is determined; using a comprehensive evaluation model of ecosystem services and trade-offs, the water ecological function of the target watershed is evaluated based on the digital elevation model data, land cover data, meteorological data and soil data to obtain water production indicators, soil conservation indicators and water quality purification indicators; based on the cumulative influence value, soil conservation indicators, water production indicators and water quality purification indicators, a comprehensive water ecological function index of each sub-watershed unit is obtained; based on the comprehensive water ecological function index, the target watershed is zoned for water ecological function monitoring. This application takes into account the propagation effect of rivers in the water network. By determining the cumulative influence value of upstream sub-basin units on downstream sub-basin units, the soil conservation index, water production index and water quality purification index of the sub-basin units, it comprehensively evaluates the water ecological function of the basin. It can accurately identify important areas of water ecological function in the basin, implement zoning monitoring, and improve the targeted monitoring.
[0052] In one embodiment, step S20 includes steps S201 to S206, which are specifically as follows:
[0053] S201: Using a depression-filling tool in a hydrological analysis software to perform depression-filling processing on the digital elevation model data, thereby obtaining depression-free digital elevation model data.
[0054] In the embodiment of the present application, due to the terrain, there will be depressed areas in the DEM data. In the depressed areas, unreasonable or erroneous water flow direction data will be obtained. Therefore, before calculating the water flow direction data, the DEM data must be filled to obtain DEM data without depressions.
[0055] S202: Using a flow direction tool of a hydrological analysis software and a maximum slope drop method on the digital elevation model data without depressions, obtain water flow direction data for each grid of the digital elevation model data without depressions.
[0056] The maximum slope method is a terrain analysis method used to calculate a water flow accumulation matrix. This matrix represents the cumulative amount of water flowing into a specific point from various locations within an area. By calculating this matrix, we can determine information such as the flow path, the area where the flow converges, and the direction of the flow.
[0057] In the present embodiment, the elevation difference of each grid cell is obtained using DEM data. The slope is determined based on the elevation difference. The direction of the water flow is determined based on the magnitude of the slope. In the maximum slope drop method, the basic principle for calculating water flow direction data is that water flows downward, and the flow direction is limited to the direction of the maximum slope. That is, the greater the slope, the more likely the water will flow downward.
[0058] S203: Based on the water flow direction data of each grid, the flow tool of the hydrological analysis software is used to calculate the cumulative flow of the digital elevation model data without depressions.
[0059] In surface runoff simulations, the cumulative runoff is calculated based on flow direction data. Specifically, each point in the digital terrain elevation model, represented as a grid, has a unit of water volume. Following the natural law that water flows from high to low, the flow direction data of the regional terrain is used to calculate the water volume flowing through each point, thus obtaining the cumulative runoff for the area.
[0060] In the embodiment of the present application, the water flow direction data of each grid is input into the flow tool of the hydrological analysis software to obtain the cumulative flow of the digital elevation model data without depressions.
[0061] S204: Based on the preset minimum cumulative runoff, using the grid calculator of the hydrological analysis software, extracting water network grid data from grids whose runoff accumulation is greater than the preset minimum cumulative runoff.
[0062] Among them, the minimum cumulative runoff determines the scope of the target watershed watershed unit division.
[0063] In the embodiment of the present application, the cumulative runoff of each grid is compared with a preset minimum cumulative runoff, and the grids whose cumulative runoff is greater than the preset minimum cumulative runoff are determined. The grid calculator of the hydrological analysis software is used to calculate these grids to obtain the target river network grid data.
[0064] S205: Use the vectorization tool of the hydrological analysis software to convert the water network raster data into a water network.
[0065] In an embodiment of the present application, water network raster data is vectorized to generate water network vector data, and the generated water network vector data is the required water network.
[0066] S206: Use the watershed tool of the hydrological analysis software to divide the water system network into sub-basin units to obtain a number of sub-basin units.
[0067] In the embodiment of the present application, the water system network is input into the watershed tool of the hydrological analysis software to obtain a number of sub-basin units.
[0068] By using the fill tool, flow direction tool, flow tool, raster calculator, vectorization tool and watershed tool of the hydrological analysis software, you can automatically and quickly obtain several water catchment units and water system networks.
[0069] In one embodiment, step S30 includes steps S301 and S302, which are specifically as follows:
[0070] S301: According to the water system network, the number of downstream sub-basin units that the water system in the sub-basin unit flows through is obtained;
[0071] S302: The number of downstream sub-basin units is used as the cumulative influence value of the sub-basin units.
[0072] In this embodiment of the present application, the cumulative influence of a sub-basin unit is evaluated based on the cumulative number of sub-basin units downstream of the sub-basin unit, based on the water system network. The more sub-basin units the water system within a sub-basin unit flows through, the greater the cumulative influence of the sub-basin unit on the downstream sub-basin units. The cumulative influence of a sub-basin unit with no downstream is assigned a value of 0. For example, if the number of sub-basin units downstream of the water system within the current sub-basin unit is 2, the cumulative influence value of the current sub-basin unit is 2.
[0073] The embodiment of the present application can automatically and quickly determine the cumulative influence value of the sub-basin unit by obtaining the number of downstream sub-basin units that the water system in the sub-basin unit flows through.
[0074] In one embodiment, the comprehensive assessment model of ecosystem services and trade-offs includes a water yield module, a sediment transport ratio module, and a nutrient transport ratio module. Step S40 includes step S401, which is as follows:
[0075] S401: Inputting digital elevation model data, land cover data, meteorological data and soil data into a water yield module, a sediment transport ratio module and a nutrient transport ratio module to obtain a water yield index, a soil conservation index and a water quality purification index.
[0076] Input data for the water yield module includes, but is not limited to, precipitation, potential evapotranspiration, root depth, and available moisture content of vegetation. Input data for the sediment transport ratio module includes, but is not limited to, digital elevation model data, soil texture data, land use data, and soil and water conservation measures. Input data for the nutrient transport ratio module includes, but is not limited to, land use data, runoff potential index data, and nutrient transport coefficients.
[0077] In an embodiment of the present application, the data required by the water production module, the sediment transport ratio module and the nutrient transport ratio module are obtained from digital elevation model data, land cover data, meteorological data and soil data. The water production module outputs a water production index, the sediment transport ratio module outputs a soil retention index, and the nutrient transport ratio module outputs a water quality purification index.
[0078] In one embodiment, the water purification index includes a nitrogen purification evaluation value and a phosphorus purification evaluation value. Step S50 includes step S501, which is specifically as follows:
[0079] S501: Perform weighted summation on the cumulative impact value, soil conservation index, water yield index, nitrogen purification assessment value, and phosphorus purification assessment value to obtain a comprehensive water ecological function index for each sub-basin unit.
[0080] In an embodiment of the present application, a weight of 0.25 is assigned to the cumulative influence value, soil conservation index, and water yield index, and a weight of 0.125 is assigned to the nitrogen purification evaluation value and the phosphorus purification evaluation value, respectively. These weights are used to perform weighted summation on the cumulative influence value, soil conservation index, water yield index, nitrogen purification evaluation value, and phosphorus purification evaluation value to obtain a comprehensive index of water ecological function for each sub-basin unit.
[0081] In one embodiment, step S60 includes step S601, which is specifically as follows:
[0082] S601: Using the natural breakpoint method, the target river basin is divided into first-level water ecological function monitoring areas, second-level water ecological function monitoring areas and third-level water ecological function monitoring areas according to the comprehensive water ecological function index; among them, the first-level water ecological function monitoring areas are more important than the second-level water ecological function monitoring areas, and the second-level water ecological function monitoring areas are more important than the third-level water ecological function monitoring areas.
[0083] The natural breakpoint method divides the data into several groups by finding natural breakpoints (i.e., natural turning points or characteristic points) in the data. The data within each group has similar properties, while the properties between groups vary significantly. This method maximizes the differences between classes, which helps to better understand and analyze the data.
[0084] In this embodiment, after obtaining the comprehensive water ecological function index of each sub-basin unit, the natural breakpoint method is used to group the comprehensive water ecological function index of each sub-basin unit. The sub-basin units in the same group are regarded as a water ecological function monitoring zone. Among them, the first-level water ecological function monitoring zone is a very important water ecological function monitoring zone, the second-level water ecological function monitoring zone is an important water ecological function monitoring zone, and the third-level water ecological function monitoring zone is a general water ecological function monitoring zone.
[0085] The following are embodiments of the apparatus of the present application, which can be used to execute the contents of the method in the embodiments of the present application. For details not disclosed in the embodiments of the apparatus of the present application, please refer to the contents of the method in the embodiments of the present application.
[0086] See Figure 2 , which shows a schematic diagram of the structure of the watershed water ecological function monitoring zoning device provided in an embodiment of the present application. The watershed water ecological function monitoring zoning device 7 provided in an embodiment of the present application includes:
[0087] The data acquisition module 71 is used to obtain digital elevation model data, land cover data, meteorological data and soil data of the target watershed;
[0088] The water system network acquisition module 72 is used to divide the target watershed into sub-watershed units based on the digital elevation model data, and obtain a plurality of sub-watershed units and a water system network;
[0089] The cumulative influence value obtaining module 73 is used to determine the cumulative influence value of each sub-basin unit according to the water system network;
[0090] An indicator acquisition module 74 is used to evaluate the water ecological function of the target watershed using a comprehensive assessment model of ecosystem services and trade-offs based on digital elevation model data, land cover data, meteorological data, and soil data to obtain water yield indicators, soil conservation indicators, and water quality purification indicators;
[0091] An index obtaining module 75 is used to obtain a comprehensive water ecological function index of each sub-basin unit based on the cumulative impact value, soil conservation index, water yield index, and water quality purification index;
[0092] The water ecological function monitoring zoning module 76 is used to perform water ecological function monitoring zoning on the target watershed according to the comprehensive water ecological function index.
[0093] It should be noted that the watershed water ecological function monitoring zoning device provided in the above embodiment only uses the division of the above-mentioned functional modules as an example when executing the watershed water ecological function monitoring zoning method. In actual applications, the above-mentioned functions can be assigned to different functional modules as needed, that is, the internal structure of the device can be divided into different functional modules to complete all or part of the functions described above. In addition, the watershed water ecological function monitoring zoning device provided in the above embodiment and the watershed water ecological function monitoring zoning method belong to the same concept. The implementation process thereof is detailed in the method embodiment and will not be repeated here.
[0094] It should also be noted that the terms "comprises," "includes," or any other variations thereof are intended to encompass non-exclusive inclusion, such that a process, method, commodity, or apparatus that includes a series of elements includes not only those elements but also other elements not explicitly listed, or includes elements inherent to such process, method, commodity, or apparatus. In the absence of further limitations, an element defined by the phrase "comprises a ..." does not exclude the presence of other identical elements in the process, method, commodity, or apparatus that includes the element.
[0095] The above are merely embodiments of the present application and are not intended to limit the present application. For those skilled in the art, the present application may have various changes and variations. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present application should all be included within the scope of the claims of the present application.
Claims
1. A method for monitoring and zoning water ecological functions in a watershed, characterized in that: The steps include: Obtain digital elevation model data, land cover data, meteorological data, and soil data of the target watershed; Dividing the target watershed into sub-watershed units according to the digital elevation model data to obtain a plurality of sub-watershed units and a water system network; Determining the cumulative influence value of each sub-basin unit according to the water system network; wherein, according to the water system network, obtaining the number of downstream sub-basin units through which the water system in the sub-basin unit flows; and using the number of downstream sub-basin units as the cumulative influence value of the sub-basin unit; Using a comprehensive assessment model of ecosystem services and trade-offs, the water ecological function of the target watershed is assessed based on the digital elevation model data, the land cover data, the meteorological data, and the soil data to obtain a water yield index, a soil conservation index, and a water quality purification index; Obtaining a comprehensive water ecological function index for each sub-basin unit according to the cumulative impact value, the soil conservation index, the water yield index, and the water quality purification index; Based on the comprehensive water ecological function index, the target watershed is divided into water ecological function monitoring zones.
2. The method for monitoring and zoning watershed water ecological functions according to claim 1 is characterized by: The comprehensive assessment model of ecosystem services and trade-offs includes a water yield module, a sediment transport ratio module, and a nutrient transport ratio module; The step of utilizing the comprehensive assessment model of ecosystem services and trade-offs to assess the water ecological function of the target watershed based on the digital elevation model data, the land cover data, the meteorological data, and the soil data to obtain a water yield index, a soil conservation index, and a water quality purification index includes: The digital elevation model data, the land cover data, the meteorological data and the soil data are input into the water production module, the sediment transport ratio module and the nutrient transport ratio module to obtain a water production index, a soil conservation index and a water quality purification index.
3. The method for monitoring and zoning watershed water ecological functions according to claim 1 is characterized by: The water purification index includes a nitrogen purification assessment value and a phosphorus purification assessment value; The step of obtaining the comprehensive water ecological function index of each sub-basin unit according to the cumulative influence value, the soil conservation index, the water yield index, and the water quality purification index comprises: The cumulative influence value, the soil conservation index, the water yield index, the nitrogen purification evaluation value and the phosphorus purification evaluation value are weightedly summed to obtain a comprehensive water ecological function index for each sub-basin unit.
4. The method for monitoring and zoning watershed water ecological functions according to claim 1 is characterized by: The step of zoning the target watershed for water ecological function monitoring according to the comprehensive water ecological function index includes: Using the natural breakpoint method, the target river basin is divided into first-level water ecological function monitoring areas, second-level water ecological function monitoring areas and third-level water ecological function monitoring areas according to the comprehensive water ecological function index; among which, the first-level water ecological function monitoring areas are more important than the second-level water ecological function monitoring areas, and the second-level water ecological function monitoring areas are more important than the third-level water ecological function monitoring areas.
5. The method for monitoring and zoning watershed water ecological functions according to any one of claims 1 to 4, characterized in that: The step of dividing the target watershed into sub-watershed units according to the digital elevation model data to obtain a plurality of sub-watershed units and a water system network includes: Using a depression-filling tool in a hydrological analysis software to perform depression-filling processing on the digital elevation model data to obtain depression-free digital elevation model data; Using the flow direction tool of the hydrological analysis software to obtain water flow direction data of each grid of the digital elevation model data without depressions by using the maximum slope drop method on the digital elevation model data without depressions; Calculate the cumulative flow of the digital elevation model data without depressions using the flow tool of the hydrological analysis software according to the water flow direction data of each grid; Based on a preset minimum cumulative runoff volume, using a grid calculator of the hydrological analysis software, extracting water network grid data from grids whose confluence cumulative volume is greater than the preset minimum cumulative runoff volume; Using the vectorization tool of the hydrological analysis software to convert the water system network raster data into a water system network; The watershed tool of the hydrological analysis software is used to divide the water system network into sub-basin units to obtain a plurality of sub-basin units.
6. A watershed water ecological function monitoring zoning device, characterized in that: include: Data acquisition module, used to obtain digital elevation model data, land cover data, meteorological data and soil data of the target watershed; A water system network acquisition module is used to divide the target watershed into sub-watershed units according to the digital elevation model data, and obtain a plurality of sub-watershed units and a water system network; a cumulative influence value obtaining module, configured to determine the cumulative influence value of each sub-basin unit according to the water system network; wherein, according to the water system network, the number of downstream sub-basin units through which the water system in the sub-basin unit flows is obtained; and the number of downstream sub-basin units is used as the cumulative influence value of the sub-basin unit; an indicator acquisition module, configured to evaluate the water ecological function of the target watershed based on the digital elevation model data, the land cover data, the meteorological data, and the soil data using a comprehensive assessment model of ecosystem services and trade-offs, and to obtain a water yield index, a soil conservation index, and a water quality purification index; An index obtaining module, configured to obtain a comprehensive water ecological function index of each sub-basin unit according to the cumulative influence value, the soil conservation index, the water yield index, and the water quality purification index; The water ecological function monitoring zoning module is used to perform water ecological function monitoring zoning on the target watershed according to the comprehensive water ecological function index.
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