Three-dimensional hydropower station model generation system and method and hydropower station simulation system

Through the three-dimensional hydropower station model generation system, the model acquisition module and parameter configuration module are used to solve the problem of low modeling efficiency of hydropower stations, and the rapid and efficient generation of the target three-dimensional hydropower station model is achieved.

CN120219646APending Publication Date: 2025-06-27WSGRI SMART CITY(WUHAN) ENGINEERING TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510277993.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-10
Publication Date
2025-06-27

AI Technical Summary

Technical Problem

The existing technology has the problem of low modeling efficiency in the process of building hydropower station models, which leads to inefficient and error-prone problems when modeling large-scale hydropower stations.

Method used

Provide a three-dimensional hydropower station model generation system, including a model acquisition module and a parameter configuration module. The model acquisition module is used to obtain the initial hydropower station model from the model library, and the parameter configuration module is used to configure the initial model data and UI to generate the target three-dimensional hydropower station model.

Benefits of technology

Through this system, the modeling efficiency of the hydropower station model can be effectively improved, and the equipment and parameters in the model can be modified quickly and efficiently, thereby generating a target three-dimensional hydropower station model that meets the needs.

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Abstract

The invention discloses a three-dimensional hydropower station model generation system and method and a hydropower station simulation system, and belongs to the technical field of visual models.The system comprises a model obtaining module used for obtaining an initial hydropower station model from a model library in response to a selection instruction; the parameter configuration module is used for performing data and UI configuration on the initial hydropower station model to obtain a target three-dimensional hydropower station model; the initial hydropower station model is obtained through the model obtaining module, a standard model can be obtained by effectively utilizing existing knowledge, and the modeling efficiency is improved; data and UI configuration is carried out on the initial hydropower station model through the parameter configuration module, equipment and parameters in the model are rapidly and efficiently modified, and therefore the target three-dimensional hydropower station model is obtained, and the modeling efficiency of the hydropower station model is greatly improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of visualization models, and in particular, to a three-dimensional hydropower station model generation system, method, and hydropower station simulation system. Background Art

[0002] Hydropower station modeling can predict the power generation of a hydropower station by simulating factors such as reservoir water level and flow rate. This is of great significance for the power supply planning of the hydropower station and the power grid company's acceptance of electric energy. At the same time, the hydropower station model can also be used for parameter consideration during the planning and design of the hydropower station, predicting potential water levels and power generation, and then designing more suitable hydropower station facilities and layouts. This helps to improve the design and planning efficiency of the hydropower station and ensure the efficient and stable operation of the hydropower station.

[0003] Currently, during the process of hydropower station modeling, it mainly relies on manual operations. Each device such as a generator and a water turbine in the hydropower station needs to be configured separately, resulting in inefficiency and error-prone problems when modeling large-scale hydropower stations.

[0004] Therefore, in the process of constructing a hydropower station model in the prior art, there is a problem of low modeling efficiency. Summary of the Invention

[0005] In view of this, it is necessary to provide a three-dimensional hydropower station model generation system, method, and hydropower station simulation system to solve the problem of low modeling efficiency in the process of constructing a hydropower station model in the prior art.

[0006] To solve the above problems, the present invention provides a three-dimensional hydropower station model generation system, including: A model acquisition module, configured to obtain an initial hydropower station model from a model library in response to a selection instruction; A parameter configuration module, configured to perform data and UI configuration on the initial hydropower station model respectively to obtain a target three-dimensional hydropower station model.

[0007] In a possible implementation manner, the parameter configuration module includes a visualization configuration sub-module and a three-dimensional configuration sub-module; The visualization configuration sub-module is configured to perform data and UI configuration on the initial hydropower station model in multiple scenarios and multiple perspectives respectively to obtain corresponding multiple visualized hydropower station models; The three-dimensional configuration sub-module is configured to perform configuration adjustment on the multiple visualized hydropower station models based on the configuration requirements of the target three-dimensional hydropower station model to obtain the target three-dimensional hydropower station model.

[0008] In a possible implementation manner, the visualization configuration sub-module includes a configuration data unit and a UI configuration unit; The configuration data unit is used to perform data configuration on the initial hydropower station model for any scenario data and any perspective data based on the configuration data of the initial hydropower station model, so as to obtain the first hydropower station model; The UI configuration unit is used to perform UI configuration on the first hydropower station model to obtain a visual hydropower station model for any scenario data and any perspective data.

[0009] In a possible implementation manner, the visual configuration sub-module further includes a data combination unit and a visual configuration unit: The data combination unit is used to combine the configuration data of the initial hydropower station model with the scenario data and the perspective data respectively to obtain data groups; The visual configuration unit is used to perform data configuration and UI configuration on the data groups and the initial hydropower station model to obtain a visual hydropower station model for any scenario data and any perspective data.

[0010] In a possible implementation manner, the scenario data includes at least one of the upper reservoir, the central control room, the main powerhouse, the lower reservoir living area, the lower reservoir dam, and the conversion station; the perspective data includes the point name and the point information; both the UI configuration unit / the visual configuration unit include a scenario perspective switching component and an interaction component; The scenario perspective switching component is used to switch the initial hydropower station model to the target scenario and switch the initial hydropower station model to the target perspective under the target scenario; The interaction component is used to perform UI interaction configuration on the initial hydropower station model based on the target perspective, according to the configuration data, the UI style, and the position data respectively; Wherein, the target perspective includes the target point name and the target point information.

[0011] In a possible implementation manner, the 3D configuration sub-module further includes a device addition and subtraction component, a switching component, and a 3D annotation component: The device addition and subtraction component is used to perform addition and subtraction processing on the devices in the visual hydropower station model according to the device requirements to obtain a first visual hydropower station model with the device quantity meeting the requirements; The switching component is used to perform scenario switching processing and perspective conversion processing on the first visual hydropower station model according to the scenario requirements and the perspective requirements respectively to obtain a second visual hydropower station model; The 3D annotation component is used to perform 3D annotation on the second visual hydropower station model to obtain a target 3D hydropower station model; Wherein, the configuration requirements include device requirements, scenario requirements, and perspective requirements.

[0012] In a possible implementation manner, the model acquisition module includes an attribute data matching unit, a name matching unit, and a merging unit; The attribute data matching unit is used to capture the first set of hydropower station models in the model library according to the attribute data of the initial hydropower station model; The name matching unit is used to capture the second set of hydropower station models in the model library according to the name of the initial hydropower station model; The merging unit is used to determine the initial hydropower station model according to the first set of hydropower station models and the second set of hydropower station models; Among them, the attribute data includes the position, angle and size of the initial hydropower station model; The model library includes multiple pre-set hydropower station models containing attribute data and names.

[0013] In a possible implementation, the model library includes a digital twin unit; The digital twin unit is used to obtain the historical hydropower station data consistent with the basic data of the target three-dimensional hydropower station model, and generate the initial hydropower station models of multiple scenarios and multiple perspectives according to the historical hydropower station data through digital twin technology; Among them, the basic data includes at least the structure, equipment and environment of the hydropower station.

[0014] To solve the above problems, the present invention also provides a method for generating a three-dimensional hydropower station model, including: Responding to the selection instruction, obtaining the initial hydropower station model from the model library; Performing data and UI configuration on the initial hydropower station model respectively to obtain the target three-dimensional hydropower station model.

[0015] To solve the above problems, the present invention also provides a hydropower station simulation system, including a three-dimensional hydropower station model generation system, and the three-dimensional hydropower station model generation system is the three-dimensional hydropower station model generation system described above.

[0016] The beneficial effects of adopting the above embodiments are as follows: The present invention provides a three-dimensional hydropower station model generation system. By using the model acquisition module to obtain the initial hydropower station model, it can effectively utilize existing knowledge to obtain a standard model, improving the modeling efficiency; by using the parameter configuration module to perform data and UI configuration on the initial hydropower station model, it can quickly and efficiently modify the equipment and parameters in the model, thereby obtaining the target three-dimensional hydropower station model, greatly improving the modeling efficiency of the hydropower station model. Brief Description of the Drawings

[0017] Figure 1 It is a schematic structural diagram of the first embodiment of the three-dimensional hydropower station model generation system provided by the present invention; Figure 2 It is a schematic structural diagram of an embodiment of the model acquisition module provided by the present invention; Figure 3 It is a schematic structural diagram of the second embodiment of the three-dimensional hydropower station model generation system provided by the present invention; Figure 4 Schematic diagram of the structure of the third embodiment of the three-dimensional hydropower station model generation system provided by the present invention; Figure 5 Schematic diagram of the structure of the fourth embodiment of the three-dimensional hydropower station model generation system provided by the present invention; Figure 6 Schematic diagram of the structure of the fifth embodiment of the three-dimensional hydropower station model generation system provided by the present invention; Figure 7 Result schematic diagram of an embodiment of the scenario selection provided by the present invention; Figure 8 Result schematic diagram of another embodiment of the scenario selection provided by the present invention; Figure 9 Flow schematic diagram of an embodiment of the multi-scenario switching and perspective management provided by the present invention; Figure 10 Result schematic diagram of an embodiment of the perspective editing provided by the present invention; Figure 11 Result schematic diagram of the first embodiment of the target three-dimensional hydropower station model provided by the present invention; Figure 12 Result schematic diagram of the second embodiment of the target three-dimensional hydropower station model provided by the present invention; Figure 13 Result schematic diagram of the third embodiment of the target three-dimensional hydropower station model provided by the present invention; Figure 14 Flow schematic diagram of an embodiment of the three-dimensional hydropower station model generation method provided by the present invention. Detailed implementation manners

[0018] Next, the preferred embodiments of the present invention will be specifically described in conjunction with the accompanying drawings. The accompanying drawings form a part of the present invention and are used together with the embodiments of the present invention to explain the principle of the present invention, rather than to limit the scope of the present invention.

[0019] Before presenting the embodiments, the digital twin technology and UI are defined as follows: Digital twin technology is a technology that realizes the synchronization of the virtual and the real by constructing a digital mapping of a physical object. It integrates a variety of cutting-edge technologies such as the Internet of Things, cloud computing, artificial intelligence, and big data, and can perform all-round simulation and management of the physical world. Through means such as sensors, data analysis, and modeling and simulation, the state and behavior of a physical entity are mapped to the virtual space in real time, forming a corresponding digital model, so as to realize the monitoring, prediction, and optimization of the physical world.

[0020] The UI (User Interface) is the medium for interaction and information exchange between the system and the user. It realizes the conversion between the internal form of information and the form acceptable to humans. Specifically, UI designers are responsible for designing the interfaces that users can directly see and interact with, which cover the screen display contents on computers, mobile phones, tablets, and other intelligent devices.

[0021] In order to solve the problem of low modeling efficiency in the process of constructing a hydropower station model in the prior art, the present invention provides a three-dimensional hydropower station model generation system, method, and hydropower station simulation system, which will be described in detail below respectively.

[0022] As Figure 1 shown, Figure 1 is a schematic structural diagram of the first embodiment of the three-dimensional hydropower station model generation system provided by the present invention. The three-dimensional hydropower station model generation system 100 includes: A model acquisition module 101, configured to obtain an initial hydropower station model from a model library in response to a selection instruction; A parameter configuration module 102, configured to perform data and UI configuration on the initial hydropower station model respectively to obtain a target three-dimensional hydropower station model.

[0023] It should be noted that the initial hydropower station model is obtained by screening the hydropower station models in the existing model library or general standard models, and is the model most similar to the target three-dimensional hydropower station model. That is to say, the initial hydropower station model can be obtained according to the one-key generation technology.

[0024] In a specific embodiment, for three-dimensional general models, such as buildings, mechanical components, etc., three-dimensional modeling software such as AutoCAD, 3Ds Max, Blender, etc. can be used to create them. And the initial hydropower station model can be obtained by querying the data of the existing hydropower station database, which contains the necessary structures, components, etc. of the hydropower station.

[0025] In this embodiment, by using the model acquisition module 101 to obtain the initial hydropower station model, the existing knowledge can be effectively utilized to obtain a standard model, improving the modeling efficiency; by using the parameter configuration module 102 to perform data and UI configuration on the initial hydropower station model, the equipment and parameters in the model can be modified quickly and efficiently, so as to obtain the target three-dimensional hydropower station model, greatly improving the modeling efficiency of the hydropower station model.

[0026] It should be noted that the execution entities for obtaining the initial hydropower station model in this application include computing devices, storage devices, data transmission devices, and other devices; specifically, they can be a central processing unit (CPU), a graphics processing unit (GPU), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA), a random access memory (RAM), a hard disk drive (HDD), a solid-state drive (SSD), a network interface card (NIC), and sensors, etc., which are not limited herein.

[0027] The three-dimensional hydropower station model generation system 100 provided by the embodiments of this application can be a software system running on a terminal device, such as: three-dimensional modeling software, three-dimensional modeling AI generation tools. Specifically, it can be Autodesk 3ds Max, Blender, Maya, SketchUp, ZBrush, SolidWorks, Fusion 360, Cinema 4D, Rhinoceros (Rhino), TinkerCAD, Sudo AI, CSM (Common Sense Machines), Genie AI, Meshy AI, MetaHumen, Spline AI, Luma AI, or Wonder Studio; the terminal device can be a server, a tablet computer, an augmented reality (AR) / virtual reality (VR) device, a laptop computer, an ultra-mobile personal computer (UMPC), a netbook, a personal digital assistant (PDA), and other terminal devices. The embodiments of this application do not impose any restrictions on the specific types of terminal devices.

[0028] As a preferred embodiment, to facilitate the model acquisition module 101 to obtain the initial hydropower station model, as Figure 2 shown, Figure 2 is a schematic structural diagram of an embodiment of the model acquisition module provided by the present invention. The model acquisition module 101 includes an attribute data matching unit 201, a name matching unit 202, and a merging unit 203; The attribute data matching unit 201 is used to capture the first hydropower station model set in the model library according to the attribute data of the initial hydropower station model; The name matching unit 202 is used to capture the second hydropower station model set in the model library according to the name of the initial hydropower station model; The merging unit 203 is used to determine the initial hydropower station model according to the first hydropower station model set and the second hydropower station model set; Among them, the attribute data includes the position, angle, and size of the initial hydropower station model; The model library includes multiple pre-set hydropower station models containing attribute data and names.

[0029] It should be noted that the attribute data and names of the model reflect the structural characteristics of the model to a certain extent. According to the required attribute data and names, the relevant model can be directly captured in the model library through the attribute data matching unit 201, the name matching unit 202, and the merging unit 203, so as to realize the automatic generation or capture of the required initial hydropower station model.

[0030] It should be noted that the execution subject for capturing the relevant model in the model library can be software developers, data scientists, automated systems, robots, applications, software services, cloud service platforms, etc., and there is no limitation here.

[0031] In a specific embodiment, in order to update the model library in a timely manner or obtain the initial hydropower station model that meets the requirements in the model library, the model library includes a digital twin unit; The digital twin unit is used to obtain the historical data of the hydropower station that is consistent with the basic data of the target three-dimensional hydropower station model, and generate initial hydropower station models with multiple scenarios and multiple perspectives based on the historical data of the hydropower station through digital twin technology; Among them, the basic data includes at least the structure, equipment, and environment of the hydropower station.

[0032] In this embodiment, the digital twin unit uses digital twin technology to refine the historical data of the hydropower station to obtain a model that is consistent with the basic data of the target three-dimensional hydropower station model as the initial hydropower station model; further, in order to meet the needs of different scenarios and different perspectives, it is also necessary to generate initial hydropower station models with multiple scenarios and multiple perspectives to meet the needs of users in different situations.

[0033] It should be noted that the execution subject of the digital twin unit can be various entities or systems. The entity can specifically be an enterprise, a research institution, a government, as well as data scientists and engineers, etc. The system can specifically be a simulation management system, a modeling system, etc., and there is no limitation here.

[0034] As a preferred embodiment, in order to perform data and UI configuration on the initial hydropower station model respectively to obtain the target three-dimensional hydropower station model, as Figure 3 shown, Figure 3 This is the structural schematic diagram of the second embodiment of the three-dimensional hydropower station model generation system provided by the present invention. The parameter configuration module 102 includes a visualization configuration sub-module 301 and a three-dimensional configuration sub-module 302; Among them, the visualization configuration sub-module 301 is used to perform data and UI configuration on the initial hydropower station models of multiple scenarios and multiple perspectives respectively, so as to obtain multiple corresponding visualized hydropower station models; The 3D configuration sub-module 302 is used to perform configuration adjustment on multiple visualized hydropower station models based on the configuration requirements of the target 3D hydropower station model, so as to obtain the target 3D hydropower station model.

[0035] In this embodiment, first, the visualization configuration sub-module 301 performs data and UI configuration on the initial hydropower station model respectively, which greatly reduces the review difficulty of the model and facilitates the user to check details such as the structure and component data of the model. Therefore, when subsequently adjusting the equipment and parameters of the visualized hydropower station model, the equipment and parameters in the model can be modified quickly and efficiently; in addition, the 3D configuration sub-module 302 performs 3D data configuration adjustment on the visualized hydropower station model, which improves the intuitiveness, integrity and authenticity of the model and facilitates the user to use the model.

[0036] Furthermore, in order to perform data and UI configuration on the initial hydropower station models of multiple scenarios and multiple perspectives respectively, so as to obtain multiple corresponding visualized hydropower station models, as Figure 4 shown, Figure 4 is a schematic structural diagram of the third embodiment of the 3D hydropower station model generation system provided by the present invention. The visualization configuration sub-module 301 includes a configuration data unit 401 and a UI configuration unit 402; Among them, the configuration data unit 401 is used to perform data configuration on the initial hydropower station model of any scenario data and any perspective data based on the configuration data of the initial hydropower station model, so as to obtain the first hydropower station model; The UI configuration unit 402 is used to perform UI configuration on the first hydropower station model, so as to obtain the visualized hydropower station model of any scenario data and any perspective data.

[0037] In this embodiment, first, the configuration data unit 401 configures the initial hydropower station model according to the configuration data, realizes the revision of the configuration data of the standardized initial hydropower station model, obtains the first hydropower station model with configuration data, and integrates the configuration data with the model to better meet the customized and personalized needs of users; then, the UI configuration unit 402 performs UI configuration on the first hydropower station model, realizes the interaction between the model and the user, enables the model to better meet the needs of users, and improves user satisfaction.

[0038] In a specific embodiment, the configuration data of the model includes computing resource configuration, model parameter configuration, and data configuration. Among them, the computing resource configuration includes GPU configuration, CPU configuration, memory, and storage; the model parameter configuration includes model architecture, optimization algorithm, learning rate, batch size, and regularization parameter; the data configuration includes data set, data preprocessing, and data loading.

[0039] By configuring the directly obtained standardized model, the stability of the model can be guaranteed from the source, ensuring that the model meets the requirements during subsequent use, and also avoiding the situation of unstable operation caused by the mismatch between the model and the requirements.

[0040] In a specific embodiment, the UI configuration of the first hydropower station model specifically means: under a specific scenario data and a specific perspective data, display the components of the model and the detailed data information of the components according to the user's needs to meet the user's review needs. In addition, the model can also be scaled and rotated according to the user's needs to achieve a view of the model from the whole to the local details. The detailed data information of the displayed components can also be adjusted adaptively. Specifically, the quantity, type, etc. of the displayed information can be adjusted to meet the user's usage needs, and there is no limit here.

[0041] As a preferred embodiment, in order to perform data and UI configuration on the initial hydropower station models of multiple scenarios and multiple perspectives respectively to obtain corresponding multiple visualized hydropower station models, as Figure 5 shown, Figure 5 which is a schematic structural diagram of the fourth embodiment of the three-dimensional hydropower station model generation system provided by the present invention. The visual configuration sub-module 301 further includes a data combination unit 501 and a visual configuration unit 502: Among them, the data combination unit 501 is used to combine the configuration data of the initial hydropower station model with the scenario data and the perspective data respectively to obtain a data group; The visual configuration unit 502 is used to perform data configuration and UI configuration on the data group and the initial hydropower station model to obtain a visualized hydropower station model for any scenario data and any perspective data.

[0042] In this embodiment, since the model data in the model library is diverse, therefore, in order to better utilize the existing data of the initial hydropower station model, first, the data combination unit 501 combines the configuration data of the initial hydropower station model with the scenario data and the perspective data respectively, that is, performs a combined packaging process on the configuration data, scenario data, and perspective data; further, in order to fuse the data in the data group with the model, it is also necessary to configure the data group with the initial hydropower station model; in order to realize the visualization of the model, it is also necessary for the visual configuration unit 502 to perform UI configuration on the initial hydropower station model, so as to obtain a visualized hydropower station model for any scenario data and any perspective data.

[0043] It should be noted that in this embodiment, by combining and packaging configuration data, scenario data, and perspective data, data configuration and UI configuration are achieved simultaneously, which can better meet the needs of users during the UI configuration process.

[0044] In a specific embodiment, the scenario data includes at least one of the upper reservoir, the central control room, the main power house, the lower reservoir living area, the lower reservoir dam, and the conversion station; the perspective data includes the point name and the point information.

[0045] To achieve the interaction of the model, as Figure 6 shown, Figure 6 is a schematic structural diagram of the fifth embodiment of the three-dimensional hydropower station model generation system provided by the present invention. The UI configuration unit 402 / visual configuration unit 502 both include a scenario perspective switching component 601 and an interaction component 602; The scenario perspective switching component 601 is used to switch the initial hydropower station model to the target scenario and switch the initial hydropower station model to the target perspective under the target scenario; The interaction component 602 is used to perform UI interaction configuration on the initial hydropower station model based on the target perspective, respectively according to the configuration data, UI style, and position data; Among them, the target perspective includes the target point name and the target point information.

[0046] In this embodiment, taking the target perspective in a specific target scenario as an example, the configuration objectives of the UI configuration unit 402 / visual configuration unit 502 are described, that is, when performing UI configuration, the user adjusts the configuration data, UI style, and position data of the model according to needs to meet the personalized needs of the user.

[0047] As a preferred embodiment, to better illustrate the process of scenario selection, as Figure 7 shown, Figure 7 is a schematic diagram of the result of an embodiment of scenario selection provided by the present invention. As Figure 8 shown, Figure 8 is a schematic diagram of the result of another embodiment of scenario selection provided by the present invention, which details the parameters that need to be controlled during the process of scenario conversion, such as: scenario selection, perspective control, category selection, equipment control, etc., and the specific scenario conditions included in the hydropower station model, including the upper reservoir, the central control room, the main power house, the lower reservoir living area, the lower reservoir dam, and the conversion station.

[0048] It should be noted that the execution entity for realizing scene conversion can be a computer hardware platform (high-performance computer or workstation, virtual reality (VR) device), a computer software platform (3D modeling software: such as AutoCAD, 3ds Max, Maya, etc., simulation and simulation software, visualization software), a cloud service platform, a display system (digital sand table or interactive display system, large screen display system), or a mobile platform, etc., which is not limited herein.

[0049] As a preferred embodiment, after obtaining the visualized hydropower station model, in order to better match the needs of users, the 3D configuration sub-module 302 further includes a device addition and deletion component, a switching component, and a 3D annotation component: The device addition and deletion component is used to add or delete devices in the visualized hydropower station model according to device requirements, so as to obtain a first visualized hydropower station model with a compliant device quantity; The switching component is used to perform scene switching processing and perspective conversion processing on the first visualized hydropower station model according to scene requirements and perspective requirements respectively, so as to obtain a second visualized hydropower station model; The 3D annotation component is used to perform 3D annotation on the second visualized hydropower station model to obtain a target 3D hydropower station model; Among them, the configuration requirements include device requirements, scene requirements, and perspective requirements.

[0050] In this embodiment, guided by the user's configuration requirements, the device addition and deletion component is used to add or delete specific components in the visualized hydropower station model to better match the actual situation, so as to obtain a first visualized hydropower station model with a compliant device quantity; further, in order to meet the needs of users and improve the user experience of viewing the model, the switching component is used to perform scene switching processing and perspective conversion processing on the first visualized hydropower station model to meet the user's viewing needs for different scenes and different perspectives; finally, in order to improve the three-dimensional degree of the model, the 3D annotation component is used to perform 3D annotation on the second visualized hydropower station model to obtain a target 3D hydropower station model.

[0051] It should be noted that the execution entity for obtaining configuration requirements can be a software development team or data scientist, system administrator or IT professional, model user or end user, product team or project manager, hardware supplier or cloud service provider, regulatory agency or standards setting agency, etc., which is not limited herein.

[0052] As a preferred embodiment, after obtaining the target 3D hydropower station model, the user can also perform scene switching and perspective management according to needs, such as Figure 9 shown Figure 9This is a schematic flowchart of an embodiment of multi-scene switching and perspective management provided by the present invention. Through model creation, equipment can be added or removed based on the current target three-dimensional hydropower station model, and scenes can also be jumped to, enabling the model in multiple scenes to be viewed on a limited display device; through perspective editing, the perspectives for viewing the model are marked for subsequent direct use, such as Figure 10 as shown Figure 10 This is a schematic diagram of the result of an embodiment of perspective editing provided by the present invention, which details the point names, point information, etc. of the perspectives, realizes the recording of perspectives, and improves the convenience of data access.

[0053] As a preferred embodiment, to better illustrate the effect of the target three-dimensional hydropower station model, such as Figure 11 as shown Figure 11 This is a schematic diagram of the result of the first embodiment of the target three-dimensional hydropower station model provided by the present invention. Among them, the equipment list details the equipment in the model, and users can click or search for the equipment to be viewed according to their needs to obtain the corresponding equipment; such as Figure 12 as shown Figure 12 This is a schematic diagram of the result of the second embodiment of the target three-dimensional hydropower station model provided by the present invention. On the basis of determining the equipment to be viewed, the parameters of the equipment can also be viewed; such as Figure 13 as shown Figure 13 This is a schematic diagram of the result of the third embodiment of the target three-dimensional hydropower station model provided by the present invention. The fire hydrant in the model is the focus of attention. To better meet the need to observe the fire hydrant data, the display information of the fire hydrant can also be set, including the types of data displayed, the actual situation of the data, etc., realizing the need to meet the personalized information access of users.

[0054] It should be noted that the target 3D hydropower station model can be based on a software system running on a terminal device, such as 3D modeling software, 3D modeling AI generation tools. Specifically, it can be Autodesk 3ds Max, Blender, Maya, SketchUp, ZBrush, SolidWorks, Fusion 360, Cinema 4D, Rhinoceros (Rhino), TinkerCAD, Sudo AI, CSM (Common Sense Machines), Genie AI, Meshy AI, MetaHumen, Spline AI, LumaAI or Wonder Studio; the terminal device can be a server, a tablet computer, an Augmented Reality (AR) / Virtual Reality (VR) device, a laptop computer, an Ultra-Mobile Personal Computer (UMPC), a netbook, a Personal Digital Assistant (PDA), a mobile phone and other terminal devices. The specific type of the terminal device is not limited in the embodiments of the present application.

[0055] Through the above system, the initial hydropower station model is obtained through the model acquisition module, and the existing knowledge can be effectively utilized to obtain a standard model, improving the modeling efficiency; through the parameter configuration module, data and UI configuration are performed on the initial hydropower station model to quickly and efficiently modify the equipment and parameters in the model, so as to obtain the target 3D hydropower station model, greatly improving the modeling efficiency of the hydropower station model.

[0056] To solve the above problems, the present invention also provides a method for generating a 3D hydropower station model, as Figure 14 shown, Figure 14 is a schematic flowchart of an embodiment of the method for generating a 3D hydropower station model provided by the present invention. The method for generating a 3D hydropower station model includes: S1401: In response to a selection instruction, obtain an initial hydropower station model from a model library; S1402: Perform data and UI configuration on the initial hydropower station model respectively to obtain a target 3D hydropower station model.

[0057] To solve the above problems, the present invention also provides a hydropower station simulation system, including a 3D hydropower station model generation system, and the 3D hydropower station model generation system is the 3D hydropower station model generation system described above.

[0058] Correspondingly, an embodiment of the present invention further provides a computer-readable storage medium, which is used to store computer-readable programs or instructions. When the programs or instructions are executed by a processor, the steps or functions in the three-dimensional hydropower station model generation method provided in the above method embodiments can be implemented.

[0059] Those skilled in the art can understand that all or part of the processes of implementing the above method embodiments can be completed by instructing relevant hardware (such as a processor, a controller, etc.) through a computer program, and the computer program can be stored in a computer-readable storage medium. Among them, the computer-readable storage medium is a magnetic disk, an optical disk, a read-only memory or a random access memory, etc.

[0060] The above has introduced in detail the three-dimensional hydropower station model generation system, method and hydropower station simulation system provided by the present invention. Specific examples are used in this article to elaborate on the principle and implementation manner of the present invention. The description of the above embodiments is only used to help understand the method and its core idea of the present invention; at the same time, for those skilled in the art, according to the idea of the present invention, there will be changes in the specific implementation manner and application scope. In summary, the content of this specification should not be construed as a limitation to the present invention.

Claims

1. A three-dimensional hydropower station model generation system, characterized in that: include: A model acquisition module, used for responding to a selection instruction and acquiring an initial hydropower station model from a model library; The parameter configuration module is used to perform data and UI configuration on the initial hydropower station model to obtain a target three-dimensional hydropower station model.

2. The three-dimensional hydropower station model generation system according to claim 1 is characterized in that: The parameter configuration module includes a visualization configuration submodule and a three-dimensional configuration submodule; The visualization configuration submodule is used to perform data and UI configuration on the initial hydropower station model of multiple scenes and multiple perspectives respectively, to obtain corresponding multiple visualization hydropower station models; The three-dimensional configuration submodule is used to adjust the configuration of the plurality of visualized hydropower station models based on the configuration requirements of the target three-dimensional hydropower station model to obtain the target three-dimensional hydropower station model.

3. The three-dimensional hydropower station model generation system according to claim 2 is characterized in that: The visualization configuration submodule includes a configuration data unit and a UI configuration unit; The configuration data unit is used to perform data configuration on the initial hydropower station model of any scene data and any perspective data based on the configuration data of the initial hydropower station model to obtain a first hydropower station model; The UI configuration unit is used to perform UI configuration on the first hydropower station model to obtain the visualized hydropower station model with any scene data and any viewing angle data.

4. The three-dimensional hydropower station model generation system according to claim 2, characterized in that: The visualization configuration submodule also includes a data combination unit and a visual configuration unit: The data combination unit is used to combine the configuration data of the initial hydropower station model with the scene data and the viewing angle data to obtain a data group; The visual configuration unit is used to perform data configuration and UI configuration on the data group and the initial hydropower station model to obtain the visualized hydropower station model of any scene data and any viewing angle data.

5. The three-dimensional hydropower station model generation system according to claim 3 or 4, characterized in that: The scene data includes at least one of the upper reservoir, the central control room, the main plant, the lower reservoir living area, the lower reservoir dam, and the transformation station; the perspective data includes the point name and point information; the UI configuration unit / the visual configuration unit both include a scene perspective switching component and an interactive component; The scene perspective switching component is used to switch the initial hydropower station model to a target scene, and switch the initial hydropower station model to a target perspective in the target scene; The interactive component is used to perform UI interactive configuration on the initial hydropower station model based on the target perspective and according to the configuration data, UI style and location data respectively; The target viewing angle includes the target point name and target point information.

6. The three-dimensional hydropower station model generation system according to claim 2, characterized in that: The three-dimensional configuration submodule also includes a device addition and subtraction component, a switching component and a three-dimensional annotation component: The equipment increase and decrease component is used to increase and decrease the equipment in the visualized hydropower station model according to the equipment requirements, so as to obtain a first visualized hydropower station model with the required equipment quantity; The switching component is used to perform scene switching processing and perspective conversion processing on the first visualized hydropower station model according to scene requirements and perspective requirements, respectively, to obtain a second visualized hydropower station model; The three-dimensional annotation component is used to perform three-dimensional annotation on the second visualized hydropower station model to obtain the target three-dimensional hydropower station model; The configuration requirements include the device requirements, the scene requirements and the viewing angle requirements.

7. The three-dimensional hydropower station model generation system according to claim 1, characterized in that: The model acquisition module includes an attribute data matching unit, a name matching unit and a merging unit; The attribute data matching unit is used to capture a first hydropower station model set in the model library according to the attribute data of the initial hydropower station model; The name matching unit is used to capture a second hydropower station model set in the model library according to the name of the initial hydropower station model; The merging unit is used to determine the initial hydropower station model according to the first hydropower station model set and the second hydropower station model set; Wherein, the attribute data includes the position, angle and size of the initial hydropower station model; The model library includes a plurality of pre-set hydropower station models including the attribute data and the name.

8. The three-dimensional hydropower station model generation system according to claim 7, characterized in that: The model library includes a digital twin unit; The digital twin unit is used to obtain historical data of the hydropower station that is consistent with the basic data of the target three-dimensional hydropower station model, and generate an initial hydropower station model of multiple scenes and multiple perspectives through the digital twin technology based on the historical data of the hydropower station; The basic data at least includes the structure, equipment and environment of the hydropower station.

9. A method for generating a three-dimensional hydropower station model, characterized in that: include: In response to the selection instruction, an initial hydropower station model is obtained from a model library; The initial hydropower station model is configured with data and UI respectively to obtain a target three-dimensional hydropower station model.

10. A hydropower station simulation system, characterized in that: It comprises a three-dimensional hydropower station model generation system, wherein the three-dimensional hydropower station model generation system is the three-dimensional hydropower station model generation system according to any one of claims 1-8.