A BS-based transmission line cloud design method and system
Through the cloud design method of transmission line with BS architecture, a cloud platform is built and the entire infrastructure process platform is integrated, which solves the problems of low efficiency and no information sharing in traditional design methods, realizes the digitalization and intelligence of transmission line design, and improves the level of construction and operation management.
Patent Information
- Application Number
- CN202410719576.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-05
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2044-06-05
AI Technical Summary
The design process of traditional transmission line design methods is cumbersome, time-consuming and prone to errors, information is not shared, data is dispersed, and collaboration is difficult, which limits construction efficiency and quality.
The transmission line cloud design method adopts the BS architecture, and by building a cloud platform, integrating the entire infrastructure process platform, receiving user design needs, providing functions such as engineering management, path selection, tower ranking, land object mapping, verification and analysis, to realize digital and intelligent design.
It improves the efficiency and quality of transmission line design, promotes information sharing and collaboration, and realizes modern management of transmission line construction and operation.
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Figure CN118709330B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of power transmission lines, and more specifically, to a power transmission line cloud design method and system for a BS architecture. Background Art
[0002] Transmission lines are a vital component of the power system. With the growth of electricity demand and the expansion of the power grid, traditional methods for transmission line construction and operation management are no longer able to meet this increasing demand. Traditional transmission line design typically relies on manual drawing and software-assisted design, a cumbersome, time-consuming, and error-prone process. Furthermore, traditional transmission line management methods suffer from issues such as lack of information sharing, fragmented data, difficulty in collaboration, and inconvenient management, all of which limit the efficiency and quality of transmission line construction.
[0003] With the development of cloud computing and internet technologies, system design methods based on the browser / server (BS) architecture have gradually become mainstream. BS-based systems utilize a browser as the client, eliminating the need for dedicated client software installation; the system can be accessed and operated simply over the network. This not only reduces system maintenance costs but also significantly improves information sharing and system expansion capabilities. However, in the field of transmission line design, design methods based on the BS architecture have yet to be widely adopted and promoted.
[0004] Therefore, there is an urgent need for a BS-based transmission line cloud design method and system, which aims to solve the problems existing in the above-mentioned traditional transmission line design methods, improve the efficiency and quality of transmission line construction, promote information sharing and collaboration, facilitate data management and maintenance, and bring convenience and benefits to transmission line operations. Summary of the Invention
[0005] In view of this, the present application provides a BS-structured transmission line cloud design method and system. By introducing cloud computing and Internet technologies, it solves the problems of information sharing difficulties, poor system scalability and high maintenance costs in traditional transmission line design methods, realizes efficient, collaborative and intelligent transmission line design, and improves the efficiency and quality of power grid construction.
[0006] In the first aspect, the present application provides a BS-architecture transmission line cloud design method, including: building a cloud platform for transmission lines; integrating the cloud platform with the existing infrastructure full-process platform; receiving transmission line design requirements submitted by users through a browser; generating a transmission line design scheme based on the transmission line design requirements; wherein the cloud platform includes: a standard style database; business functions, which include engineering management functions, path selection functions, pole tower ranking functions, ground feature mapping functions, verification and analysis functions, and browsing and output functions; secondary design content of the transmission line, which includes schematic design, terminal block design, cable laying design, optical or tail cable laying design, virtual terminal design, and remote dispatching information point table design.
[0007] Optionally, the project management functions include: creating a new project, deleting a project, creating a new section, and deleting a section.
[0008] Optionally, the path selection function includes: creating a new path selection, importing a path selection, and editing a path selection.
[0009] Optionally, the tower ranking function forms structured data by sorting out the design parameters of the towers.
[0010] Optionally, the feature mapping function places real-life water systems, buildings, and pipe networks on a geographic information system (GIS) sphere to assist designers in route planning and judgment.
[0011] Optionally, the verification and analysis functions include: simulation verification of electrical functions in the transmission line, and / or, stress analysis of windage, span, and insulator strength, and / or, calculation of electromagnetic environment and line loss.
[0012] Optionally, the browsing and outputting functions include: performing statistical analysis on the transmission line data, and / or obtaining the transmission line route map, engineering quantity, topography and landform, and / or outputting design results and construction plans.
[0013] In some possible implementations, the database includes: three-dimensional model data, line resource data, geographic information data, external database data, internal database data, historical design data, technical and economic data, and line rule library data.
[0014] Optionally, the database uses unified standard symbols, which include: main wiring symbols, equipment symbols, lightning protection and grounding symbols, lighting and power symbols, secondary symbols, general plan symbols, building symbols, structural symbols, hydraulic symbols, HVAC symbols, and fire protection symbols.
[0015] In some possible implementations, the cloud platform is integrated with the existing infrastructure full-process platform, including: analyzing the integrated information flow, which includes: engineering personnel information, project configuration information, volume task information, and task progress information; opening up the data channel between the cloud platform and the infrastructure full-process platform based on the integration technology, which includes: personnel and authority synchronization management technology, which is used to synchronize engineering personnel information to the transmission line cloud platform, and to complete personnel grouping and authority allocation; project configuration synchronization management technology is used to synchronize project configuration information to the cloud platform; platform work breakdown structure (WBS) task structure synchronization management technology is used to synchronize volume task information to the cloud platform, and to complete task allocation and authorization; task progress synchronization management technology is used to feed back task progress information to the infrastructure full-process platform.
[0016] In some possible implementations, the cloud platform is constructed based on online computer aided design (CAD), and / or the cloud platform is constructed based on online GIS.
[0017] In a second aspect, the present application provides a BS-based transmission line cloud design system, which is used to execute the method provided in the first aspect. Specifically, the system may include units and / or modules, such as a processing module and / or a storage module, for executing the method provided in the first aspect.
[0018] In one possible scenario, the system is a chip, chip system, or circuit in a cloud platform. In this case, the system may include units and / or modules for executing the method provided in the first aspect, such as a processing unit and / or a storage unit.
[0019] In a third aspect, the present application provides a computer-readable storage medium, which stores program code for execution by a device, wherein the program code includes code for executing any one of the methods provided in the first aspect above.
[0020] In a fourth aspect, the present application provides a computer program product comprising instructions, which, when executed on a computer, enables the computer to execute any one of the methods provided in the first aspect.
[0021] In a fifth aspect, a chip is provided, which includes a processor and a communication interface. The processor reads instructions stored in a memory through the communication interface and executes any one of the methods provided in the first aspect.
[0022] Optionally, as an implementation method, the chip may further include a memory storing instructions, and the processor is used to execute the instructions stored in the memory. When the instructions are executed, the processor is used to execute the method provided in the first aspect above.
[0023] In general, the above technical solutions conceived by this application have the following beneficial effects compared with the existing technologies:
[0024] 1. By introducing cloud technology and BS architecture, we can realize the digitalization and intelligence of transmission line design, promote the transformation and upgrading of the transmission industry, promote the modernization of transmission line construction and operation management, and create an open and inclusive sustainable development ecosystem for the cloud platform. Through continuous improvement, we will eventually form a cloud platform innovation model that can be promoted and reused.
[0025] 2. Deepen the development of various power transmission line design business functions to achieve data interoperability and collaborative design across various line modules. Ultimately, this will enable cloud-based collaborative design for all disciplines of power transmission and transformation projects, providing excellent service to designers from all disciplines.
[0026] 3. Integrating the cloud platform with the existing infrastructure full-process platform enables data sharing and interaction, improves design efficiency and management level, and brings new opportunities and challenges to transmission line construction and operation management.
[0027] 4. It will be convenient for manufacturers to develop different functional requirements and add them to the cloud platform in the future, so as to continuously build and improve it and create a cloud design ecosystem that is jointly built, shared and sustainable. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 This is a schematic diagram of a BS architecture transmission line cloud design method provided in an embodiment of the present application.
[0029] Figure 2 This is a schematic diagram of the architecture of a physical deployment of a cloud platform provided in an embodiment of the present application.
[0030] Figure 3 This is a schematic diagram of a method for integrating a cloud platform and an infrastructure full-process platform provided in an embodiment of the present application.
[0031] Figure 4 This is a schematic block diagram of a BS-architecture power transmission line cloud design system provided in an embodiment of the present application. DETAILED DESCRIPTION
[0032] To make the purpose, technical solutions, and advantages of the embodiments of this application more clear, the technical solutions in the embodiments of this application will be clearly described below in conjunction with the drawings in the embodiments of this application. Obviously, the described embodiments are 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 efforts are within the scope of protection of this application.
[0033] In order to facilitate understanding of the embodiments of the present application, the following explanations are made.
[0034] First, the terms "comprises" and "having" and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, system, product, or apparatus that includes a series of steps or elements is not necessarily limited to those steps or elements expressly listed but may include other steps or elements not expressly listed or inherent to such process, method, product, or apparatus.
[0035] Second, the "storage" involved in the embodiments of this application may refer to storage in one or more memories. The one or more memories may be separately provided or integrated into an encoder or decoder, a processor, or a communication device. The one or more memories may also be partially separately provided and partially integrated into a decoder, a processor, or a communication device. The type of memory may be any form of storage medium, and this application is not limited thereto.
[0036] The embodiments shown below do not particularly limit the specific structure of the execution entity of the method provided in the embodiments of the present application. As long as it is possible to design a transmission line according to the method provided in the embodiments of the present application by running a program that records the code of the method provided in the embodiments of the present application, for example, the execution entity of the method provided in the embodiments of the present application can be a cloud platform, or a functional module in the cloud platform that can call and execute the program.
[0037] It should be understood that in the various embodiments of the present application, the size of the serial numbers of the following processes does not mean the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of the present application.
[0038] It should also be understood that the terms and steps in the various embodiments of this application can be referenced to each other.
[0039] Figure 1 A transmission line cloud design method 100 of a BS architecture provided in an embodiment of the present application is shown. Figure 1 As shown, the method 100 includes:
[0040] Optionally, the cloud platform provided in the embodiment of the present application is built based on online CAD and / or based on a GIS sphere.
[0041] The cloud platform built on online CAD features basic file processing, graphic creation, and output capabilities. It also includes the interface programs necessary for developing substation design functions, enabling the construction of a graphics database for specialized substation design and the development of intelligent substation design tools. This innovative design approach compared to previous substation engineering design processes effectively improves design efficiency and quality. The cloud platform built on a GIS sphere features basic coordinate systems, including the National Geodetic 2000 coordinate system. It also includes the interface programs necessary for developing transmission design functions, enabling the construction of a model database for specialized transmission design and the development of intelligent transmission design tools. This innovative design approach compared to previous transmission engineering design processes effectively improves design efficiency and quality. This platform enables the acquisition of grid geographic information data from the unified grid GIS platform and grid spatial data from the power production management system (PMS) platform.
[0042] S110, building a cloud platform, which includes: a standard database, business functions; and secondary design content for transmission lines.
[0043] Optionally, based on the digital design process from standard input to standard output, a database of standard styles is constructed, for example, to unify font size, color, aspect ratio, annotation font proportion, arrow style, material table header, line type parameters and other styles used in various design processes.
[0044] Optionally, the database uses a unified standard symbol.
[0045] For example, various standard symbols in design specifications are organized by category and discipline into editable, structured, and digital standard symbols. These mainly include main wiring symbols, equipment symbols, lightning protection and grounding symbols, lighting and power symbols, secondary symbols, general layout symbols, architectural symbols, structural symbols, hydraulic symbols, HVAC symbols, and fire protection symbols.
[0046] Optionally, the database includes: three-dimensional model data, line resource data, geographic information data, external database data, internal database data, historical design data, technical and economic data, and line rule library data.
[0047] Among them, the three-dimensional model is divided into the preliminary design general model and the construction drawing design product model. The model objects include substation projects, line projects, etc., specifically including conductor hardware, lightning protection and grounding materials, lighting and power materials, high-voltage cable materials, intelligent auxiliary control equipment, fire alarm equipment, slope retaining wall materials, building materials, hydraulic HVAC equipment, underground foundation model, line tower model, line hardware materials, line conductor materials, walls, roads, wall gates, ditches (tunnels), etc.
[0048] Line resources include pole tower models, insulator string models, hardware models and many other equipment models;
[0049] Geographic information data includes aerial images, digital elevation, oblique photography, laser point clouds, and thematic maps;
[0050] The external database includes supporting documents such as agreement approvals, information from external design units, and public information on land planning;
[0051] The internal database includes documents from the State Grid Corporation and provincial companies, general (typical) plan drawings, instructions, material lists, etc.
[0052] Historical design data refers to historical engineering design data;
[0053] Technical and economic data include technical and economic documents and equipment lists;
[0054] The line rule library includes regulations and specifications (mandatory errors, standards, common problems, lists, cases, etc.), documents from the State Grid Corporation and provincial companies, general (typical) plan drawings, typical meteorological zones and other information;
[0055] Based on the above steps, the necessary attribute information can be added to the database of the transmission line cloud platform; the strong clauses that can be expressed parameterically can be sorted out to form a strong clause database, which can be continuously supplemented; relying on the 35kV and 110kV typical design scheme construction drawings of State Grid Hunan Electric Power, the parameterizable parts can be sorted out according to the profession, volume, and design drawings, and organized into tables.
[0056] Optionally, the business functions include project management function, route selection function, tower ranking function, ground feature mapping function, verification analysis function, and browsing output function.
[0057] Among them, the project management function includes creating a new project, deleting a project, creating a new section, and deleting a section, which facilitates unified control of the project;
[0058] The path selection function includes creating a new path, importing a path, and editing a path. It is used to provide functions such as plane section extraction and path plan comparison to quickly determine the path plan.
[0059] The tower ranking function forms structured data by sorting out the design parameters in the tower design, which helps designers quickly complete the tower ranking work by inputting the design parameters and tower ranking design parameters;
[0060] The feature mapping function places real-life features such as water systems, buildings, and pipe networks in the GIS sphere to assist designers in route planning and judgment.
[0061] The verification and analysis function is used to perform three-dimensional analysis of the line design based on GIS geographic information data and oblique photography data. This verification and analysis function includes: simulation verification of the electrical functions designed in the line design, stress analysis of windage, span, and insulator strength, and calculation of electrical operating data such as electromagnetic environment and line loss to assist engineering design;
[0062] The browsing and output function is used to preview the line project based on the 3D model, including positioning and flying bear preview. It supports statistical analysis of line project data, export of design path diagrams, extraction of engineering quantities, topographic analysis, etc. It also supports output of design results and construction plans.
[0063] The structural design function is used to implement cloud-based design of the tower foundation model of the line engineering component based on the cloud platform. Based on the resource library and predetermined screening conditions, the corresponding towers are selected to achieve basic configuration, etc.
[0064] The results export meets the functions required by the cloud platform, fully utilizes the database content, and completes the full process design of the transmission line professional on the cloud platform based on the online GIS ball. The design results can be easily viewed and quickly exported.
[0065] Based on the above steps, cloud platform design can fully consider intelligent and collaborative design, intelligent management and control of the design process, statistics on designers' online time, advanced application business requirements and construction management needs, and plan the requirements of the above functions for parameterized or structured splitting of each type of database model.
[0066] Optionally, the secondary design content of the transmission line includes schematic design, terminal block design, cable laying design, optical / tail cable laying design, virtual terminal design, and telecontrol dispatch information point table design.
[0067] Based on the above steps, it is possible to match the manufacturer's secondary schematic diagram and terminal block diagram well, call the secondary basic symbols and related files in the database well, and quickly generate the secondary design drawing results files of the new project.
[0068] S120 integrates the cloud platform with the existing infrastructure full-process platform.
[0069] Reference Figure 3, Figure 3 A schematic diagram of a method 300 for integrating a cloud platform with an infrastructure full-process platform provided by the present application is shown. The method 300 includes:
[0070] S310, analyzing the integrated information flow, which includes: engineering personnel information, project configuration information, volume task information, and task progress information.
[0071] It should be noted that the infrastructure full-process platform, as the source of engineering management information, needs to issue tasks and key data to the cloud platform in a timely and accurate manner, and the cloud platform needs to provide timely feedback to the infrastructure full-process platform.
[0072] Among them, the engineering personnel information is first released on the infrastructure full-process platform, including the participants of various disciplines in the entire engineering project and the roles of each personnel. The engineering personnel information is the basis for the division of professional work groups and authority allocation on the cloud platform. The information flow is issued by the infrastructure full-process platform to the cloud platform.
[0073] Project configuration information is important basic and principle information for engineering projects. This project configuration information is first published on the infrastructure full-process platform. The cloud platform should be configured accordingly based on the information on the infrastructure full-process platform to ensure the accuracy of basic and principle data after the engineering design is carried out, and the changes should be synchronized with the information on the infrastructure full-process platform.
[0074] The volume task information is the work breakdown structure (WBS) task decomposition structure information after the design and planning of each discipline. The volume task information is first published on the infrastructure full process platform. These volume task information correspond to the task decomposition and task allocation of the cloud platform, and as the task structure on the infrastructure full process platform is adjusted, the task structure on the cloud platform must also be adjusted accordingly.
[0075] Task progress information refers to the completion progress of each task on the cloud platform. This information is crucial for managers to monitor the progress of the entire project. As the project design progresses, this information is automatically recorded on the cloud platform. This information needs to be collected and fed back to the infrastructure platform to promptly reflect the progress of the project.
[0076] S320, based on the integration technology, opens up the data channel between the cloud platform and the infrastructure full-process platform. The integration technology includes: personnel and authority synchronization management technology, project configuration synchronization management technology, platform WBS task structure synchronization management technology, and task progress synchronization management technology.
[0077] Specifically, personnel and authority synchronization management technology is used to synchronize the engineering personnel information published on the infrastructure full-process platform with the design personnel information on the cloud platform, and simultaneously complete the grouping and authority allocation of designers;
[0078] Project configuration synchronization management technology is used to synchronize the project configuration information and its data published on the infrastructure full-process platform into the basic project configuration parameters on the cloud platform to ensure accurate parameter transmission;
[0079] The platform's WBS task structure synchronization management technology is used to synchronize the volume task information published on the infrastructure full-process platform into the WBS task structure on the cloud platform, and simultaneously complete task allocation and authorization;
[0080] Optionally, the work breakdown structure can take various forms. Due to the differences in management content and processes, the WBS task decomposition of the infrastructure full-process platform and the cloud platform is slightly different.
[0081] For example, the infrastructure full-process platform uses task categories as the first layer, specific tasks as the second layer, and each task is assigned to a specific task owner. The cloud platform uses system classification as the first layer, corresponding to volumes, and volume tasks as the second layer, with each task assigned to the volume owner of that volume. Synchronous management technology is used to match and synchronize the WBS task structures of the two platforms.
[0082] Task progress synchronization management technology is used to write back task progress information on the cloud platform to the infrastructure full-process platform, forming a comprehensive display of task progress information on the infrastructure full-process platform to facilitate managers to implement progress management.
[0083] Based on the above method, the integrated infrastructure full-process platform and cloud platform open up the data channel between the two platforms through integration technology, realizing data sharing, interaction and synchronous management, avoiding manual input and output of data between the two platforms, improving the efficiency and management level of transmission line design, and promoting the modernization of transmission line construction and operation management.
[0084] S130: receiving a transmission line design requirement submitted by a user through a browser.
[0085] Specifically, when users submit transmission line design requirements through a browser, these requirements may cover many aspects, such as line path planning, load demand, environmental conditions, etc. Users may need to specify the starting and ending points of the line, as well as the geographical location of the line, taking into account factors such as topography, land use, and environmental protection requirements. In addition, users may also need to provide information about load characteristics and power demand, such as expected load volume, load type, load distribution, etc., so that the cloud platform can calculate and optimize power transmission capacity. At the same time, users may also need to specify environmental conditions, such as climatic conditions, geological conditions, population density, etc., which will have an impact on the design and layout of transmission lines.
[0086] S140: Generate a transmission line design plan according to the transmission line design requirements.
[0087] Optionally, perform 3D modeling based on the transmission line design requirements. The specific steps are as follows:
[0088] S1, build tower model
[0089] For each tower group (including tower, foundation, and insulator string), the tower is used as the main benchmark. According to the latitude and longitude coordinates and elevation information of the tower's 3D model origin, combined with the tower's north deflection information, the tower model is adjusted in direction and placed in the 3D scene.
[0090] S2, build the basic model
[0091] Traverse all the basic model data of the same tower group, and place the basic three-dimensional models in sequence according to the spatial transformation matrix of the basic model origin relative to the tower model origin.
[0092] S3, build insulator string
[0093] Traverse all the insulator string model data of the same tower group, assemble the insulator strings according to the spatial transformation matrix of the hardware and insulators relative to the insulator string modeling origin, and then place the insulator string three-dimensional models in sequence according to the spatial transformation matrix of the insulator string model origin relative to the tower model origin.
[0094] S4, build the ground wire model
[0095] Based on the corresponding insulator string model data of the front and rear tower groups in the same tension section, the ground wire hanging point information at both ends of each conductor group is obtained. The stress sag correlation algorithm is used to calculate and draw the ground wire (jumper). According to the outer diameter of the ground wire (jumper), a three-dimensional model of the ground wire is formed. Based on the center point of the small side tower model as the reference, the three-dimensional models of the spacer rod and shock-absorbing hammer are placed in combination with the spatial transformation matrix information.
[0096] S5, build cross-object model
[0097] In the same tension section, all the information of the crossing objects (for example, the type of ground objects, the number of connection nodes, the location and connection order, etc.) is traversed, and the longitude and latitude coordinates of the crossing object nodes are connected in sequence according to the connection order. Combined with the height information, a three-dimensional model of the crossing object with simple geometric bodies (such as houses, trees, etc.) is formed, and texture images are added according to actual needs.
[0098] S6, organizing the engineering model, cyclically executing the above steps S1 to S5 until all the tension sections are completed, and synthesizing the three-dimensional scene of the overhead transmission line project.
[0099] Figure 2 A schematic diagram of a physical deployment architecture of a cloud platform provided by this application is shown in FIG. Figure 2 As shown, the cloud platform adopts the provincial company's second-level deployment. The server uses the existing resource pool application of Hunan Company's infrastructure full-process platform, is deployed on the k8s (kubernetes) cluster through multiple electronic design automation (EDA) components, and uses the existing database components on the cloud.
[0100] The following is an example of planning server capacity on a cloud platform provided in an embodiment of the present application, but the present application is not limited thereto.
[0101] (1) Database server performance measurement
[0102] The main users of the cloud platform are the provincial company's construction department, the Economic Research Institute, and municipal design units, totaling about 1,000 people. During peak hours, the system should support more than half of the online access capacity, totaling about 1,000×50%=500 people (U1); on average, each user issues 10 business requests per minute (N1); updates, queries, and statistics each account for 1 / 3 of the number of business requests issued by users (U1×N1); on average, each computer update will generate 6 transactions (T1), each query will generate 10 transactions (T2), and each statistical operation will generate 13 transactions (T3); the processing volume during busy hours in a day is 10 times the average; the experience coefficient is 1.6 (actual engineering experience); considering retaining 30% redundancy for the server; the system resource occupancy coefficient is 30%.
[0103] Based on the above, the database server requires a processing capacity of: Tpc-c = U1×N1(T1+T2+T3) / 3×10×experience coefficient / (1-redundancy coefficient) / (1-system resource occupation coefficient). The processing performance of the government network database server is estimated to be: Tpc-c = 500×10×(6+10+13) / 3×10×1.6 / 0.7 / 0.7≈1,578,231Tpmc.
[0104] (2) Application server processing performance
[0105] Each user sends an average of 4 requests per minute. At peak times, the system should support online access capabilities of more than 50% of system users. The host processing peak performance should be able to reach 1000×50%×4=2000 connections / minute. Each application server connection is equivalent to 6-8 database accesses. According to experience, each database access is equivalent to 10-20Tpm of the server's processing capacity.
[0106] Connections per minute: 2000 connections / minute; each connection: 6-8 database accesses (this time taking the maximum value of 8); each access: 10-20 Tpm (this time taking the maximum value of 20); the system itself consumes 30% of system resources; and considering 30% redundancy; the application requires the server's Tpc-c to be: 2000×8×20 / 0.7 / 0.7≈653,061.Tpmc.
[0107] (3) Server configuration table
[0108]
[0109] Corresponding to the methods provided in the above-mentioned method embodiments, embodiments of the present application also provide corresponding systems, which include modules for executing the corresponding methods in the above-mentioned method embodiments. The modules can be software, hardware, or a combination of software and hardware. It is understood that the technical features described in the above-mentioned method embodiments are also applicable to the following embodiments.
[0110] Figure 4 A schematic block diagram of a BS-based power transmission line cloud design system provided in an embodiment of the present application is shown. Figure 4 As shown, the system 20 includes a processor 21, which is used to execute computer programs or instructions stored in a memory 22, or read data / signals stored in the memory 22, to perform the methods in the above method embodiments. Optionally, there are one or more processors 21.
[0111] Alternatively, as Figure 4 As shown, the device 20 further includes a memory 22, which is used to store computer programs or instructions and / or data. The memory 22 can be integrated with the processor 21, or can be separately provided. Optionally, there are one or more memories 22.
[0112] Alternatively, as Figure 4 As shown, the device 10 further includes a transceiver 23, which is used to receive and / or send signals. For example, the processor 21 is used to control the transceiver 23 to receive and / or send signals.
[0113] As a solution, the device 20 is used to implement the operations performed by each cloud platform in the above method embodiments.
[0114] For example, the processor 21 is used to execute the computer program or instructions stored in the memory 22 to implement the relevant operations of the cloud platform in the above various method embodiments. Figure 1 or Figure 3 The method performed by the cloud platform in the illustrated embodiment.
[0115] It should be understood that the processor mentioned in the embodiments of the present application may be a central processing unit (CPU), or may be other general-purpose processors, digital signal processors (DSP), application-specific integrated circuits (ASIC), field programmable gate arrays (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor may be a microprocessor or any conventional processor, etc.
[0116] It should also be understood that the memory mentioned in the embodiments of the present application may be a volatile memory and / or a non-volatile memory. Among them, the non-volatile memory may be a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), or a flash memory. The volatile memory may be a random access memory (RAM). For example, RAM can be used as an external cache. By way of example and not limitation, RAM includes the following forms: static random access memory (SRAM), dynamic random access memory (DRAM), synchronous dynamic random access memory (SDRAM), double data rate synchronous dynamic random access memory (DDR SDRAM), enhanced synchronous dynamic random access memory (ESDRAM), synchronous link dynamic random access memory (SLDRAM), and direct rambus RAM (DR RAM).
[0117] It should be noted that when the processor is a general-purpose processor, DSP, ASIC, FPGA or other programmable logic device, discrete gate or transistor logic device, discrete hardware component, the memory (storage module) can be integrated into the processor.
[0118] It should also be noted that the memory described herein is intended to include, but is not limited to, these and any other suitable types of memory.
[0119] An embodiment of the present application also provides a computer-readable storage medium on which computer instructions for implementing the methods executed by the cloud platform in the above-mentioned method embodiments are stored.
[0120] An embodiment of the present application also provides a computer program product, comprising instructions, which, when executed by a computer, implement the methods performed by the cloud platform in the above-mentioned method embodiments.
[0121] The explanation of the relevant contents and beneficial effects of any of the above-mentioned devices can be referred to the corresponding method embodiments provided above, which will not be repeated here.
[0122] In the several embodiments provided in this application, it should be understood that the disclosed devices and methods can be implemented in other ways. For example, the device embodiments described above are only schematic. For example, the division of the units is only a logical function division. In actual implementation, there may be other division methods, such as multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. In addition, the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of devices or units, which can be electrical, mechanical or other forms.
[0123] In the above embodiments, it can be implemented in whole or in part by software, hardware, firmware or any combination thereof. When implemented using software, it can be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, the process or function described in the embodiment of the present application is generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. For example, the computer can be a personal computer, a server, or a network device, etc. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another computer-readable storage medium. For example, the computer instructions can be transmitted from one website, computer, server or data center to another website, computer, server or data center by wired (e.g., coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) mode. The computer-readable storage medium can be any available medium that a computer can access or a data storage device such as a server or data center that includes one or more available media integrations. The available medium may be a magnetic medium (e.g., a floppy disk, a hard disk, a magnetic tape), an optical medium (e.g., a DVD), or a semiconductor medium (e.g., a solid state disk (SSD)). For example, the aforementioned available medium includes, but is not limited to, various media that can store program code, such as a USB flash drive, a mobile hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk.
[0124] The above description is merely a specific embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this application should be included in the scope of protection of this application. Therefore, the scope of protection of this application should be based on the scope of protection of the claims.
Claims
1. A transmission line cloud design method for a BS architecture, characterized in that: include: Constructing a cloud platform for power transmission lines, the cloud platform including secondary design content for the power transmission lines. The cloud platform is constructed based on CAD and / or a GIS sphere. The GIS sphere is used to access a power grid platform to obtain GIS geographic information data. The cloud platform is used to complete the design of the power transmission lines based on the GIS geographic information data. The business functions used in the design include a feature mapping function and a verification and analysis function. The feature mapping function places real-life water systems, buildings, and pipelines in the GIS sphere to assist designers in path planning and judgment. The verification and analysis function is used to perform three-dimensional analysis of the line design based on the GIS geographic information data and oblique photography data. The cloud platform is integrated with the existing infrastructure full-process platform based on synchronous management technology to achieve data sharing, interaction and synchronous management between the two platforms, including: synchronizing the engineering personnel information, project configuration information and volume task information on the infrastructure full-process platform to the cloud platform, automatically recording the task progress information corresponding to each task on the cloud platform and feeding it back to the infrastructure full-process platform; A transmission line design requirement is received from a user through a browser, and a transmission line design solution is generated according to the transmission line design requirement.
2. The method according to claim 1, characterized in that The cloud platform also includes: a standard database constructed according to a digital design process from standard input to standard output, the database including: 3D model data, line resource data, geographic information data, external database data, internal database data, historical design data, technical and economic data, and line rule library data; The database uses unified standard symbols, which include: main wiring symbols, equipment symbols, lightning protection and grounding symbols, lighting and power symbols, secondary symbols, general plan symbols, building symbols, structural symbols, hydraulic symbols, HVAC symbols, and fire protection symbols.
3. The method according to claim 1, characterized in that The business functions also include: Project management functions include: creating a new project, deleting a project, creating a new section, and deleting a section; Path selection function, including: creating a new path, importing a path, and editing a path; The tower ranking function is used to form structured data by sorting out the design parameters of the towers; The verification and analysis functions include: simulation verification of electrical functions in the transmission line, and / or force analysis of windage, span, and insulator strength, and / or calculation of electromagnetic environment and line loss; Browsing and output functions include: performing statistical analysis on transmission line data, and / or obtaining transmission line route maps, engineering quantities, topography, and / or outputting design results and construction plans.
4. A BS-based power transmission line cloud system, characterized in that: include: A processor, the processor executing the method according to any one of claims 1 to 3.
5. A computer-readable storage medium, characterized in that The computer-readable storage medium stores a computer program, which, when executed on a computer, enables the computer to execute the method according to any one of claims 1 to 3.
6. A computer program product, characterized in that The computer program product comprises instructions for performing the method of any one of claims 1 to 3.
Citation Information
Patent Citations
A collaborative design method and system based on a cloud design platform
CN109948993A