Method and system for cloud-based transmission line design with b / s architecture
By adopting a cloud-based design method for transmission lines using a B/S architecture, a cloud platform is built and integrated with a platform covering the entire infrastructure construction process. This enables the digital and intelligent design of transmission lines, solving the problems of information sharing difficulties and poor system scalability in traditional design methods. It improves design efficiency and quality and promotes the modernization of transmission line construction and operation management.
Patent Information
- Application Number
- PCT/CN2024/099589
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-06-05
- Filing Date
- 2024-06-17
- Publication Date
- 2025-12-11
AI Technical Summary
Traditional transmission line design methods suffer from difficulties in information sharing, poor system scalability, and high maintenance costs, resulting in a cumbersome, time-consuming, and error-prone design process that limits construction efficiency and quality.
The cloud-based design method for transmission lines, which adopts a B/S architecture, integrates existing infrastructure platforms throughout the entire process by building a cloud platform. Design requirements can be submitted via a browser to achieve digital and intelligent design of transmission lines, including functions such as project management, route selection, tower placement, feature mapping, and verification analysis. It also supports data sharing and collaborative design.
It has improved the efficiency and quality of transmission line design, promoted information sharing and collaboration, modernized the construction and operation management of transmission lines, formed a sustainable cloud platform ecosystem, and supported the continuous construction and improvement of different functional requirements.
Smart Images

Figure CN2024099589_11122025_PF_FP_ABST
Abstract
Description
A power transmission line cloud design method and system based on BS architecture TECHNICAL FIELD
[0001] The present application relates to the technical field of power transmission lines, and more particularly, to a power transmission line cloud design method and system based on BS architecture. BACKGROUND
[0002] Power transmission lines are a crucial component of power systems. With the growth of power demand and the expansion of power grid scale, traditional power transmission line construction and operation management methods have been unable to meet the growing demand. Traditional power transmission line design usually adopts manual drawing and design software aided design methods, which are tedious, time-consuming and prone to errors. In addition, traditional power transmission line management methods have problems such as information not sharing, data scattering, collaboration difficulties, and inconvenient management, which limit the efficiency and quality of power transmission line construction.
[0003] With the development of cloud computing and Internet technology, the system design method based on Browser / Server (BS) architecture has gradually become mainstream. The BS architecture system uses the browser as the user end, without the need to install special software on the client side, and only needs to access and operate the system through the network. This not only reduces the maintenance cost of the system, but also greatly improves the ability of information sharing and system expansion. At present, the design method based on BS architecture has not been widely applied and promoted in the field of power transmission line design.
[0004] Therefore, there is an urgent need for a power transmission line cloud design method and system based on BS architecture to solve the problems in the traditional power transmission line design method, improve the efficiency and quality of power transmission line construction, promote information sharing and collaboration, facilitate data management and maintenance, and bring convenience and benefits to power transmission line operation.
[0005] SUMMARY
[0006] Therefore, the present application provides a power transmission line cloud design method and system based on BS architecture, which introduces cloud computing and Internet technology to solve the problems of difficult information sharing, poor system scalability and high maintenance cost in traditional power transmission line design methods, realizes efficient, collaborative and intelligent power transmission line design, and improves the efficiency and quality of power grid construction.
[0007] In a first aspect, the application provides a power transmission line cloud design method of a BS architecture, comprising: constructing a cloud platform of a power transmission line; integrating the cloud platform with an existing infrastructure whole-process platform; receiving a power transmission line design requirement submitted by a user through a browser; and generating a power transmission line design scheme according to the power transmission line design requirement; wherein the cloud platform comprises: a database of standard styles; a business function, which comprises an engineering management function, a path route selection function, a tower arrangement function, a ground object plotting function, a checking and analyzing function, and a browsing and output function; and secondary design content of the power transmission line, which comprises a schematic diagram design, a terminal arrangement design, a cable laying design, an optical or tail cable laying design, a virtual terminal design, and a remote dispatching information point table design.
[0008] Optionally, the engineering management function comprises: a new project, a project deletion, a new section, and a section deletion.
[0009] Optionally, the path route selection function comprises: a new route selection path, an imported route selection path, and an edited route selection path.
[0010] Optionally, the tower arrangement function forms structured data by combing design parameters in the tower.
[0011] Optionally, the ground object plotting function places water systems, buildings, and pipe networks in a geographic information system (GIS) ball in real life to assist a designer in path planning and judgment.
[0012] Optionally, the checking and analyzing function comprises: an electrical function simulation checking in the power transmission line, and / or a force analysis on wind deflection, span, and insulator strength, and / or a calculation on an electromagnetic environment and line loss.
[0013] Optionally, the browsing and output function comprises: a statistical analysis on power transmission line data, and / or an acquisition of a path diagram, an engineering quantity, and a topography of the power transmission line, and / or an output of a design result and a construction scheme.
[0014] In some possible implementations, the database comprises: three-dimensional model data, line resource data, geographic information data, external library data, internal library data, historical design data, technical and economic data, and line rule library data.
[0015] Optionally, the database uses a unified standard symbol, and the standard symbol comprises: a main wiring symbol, a device symbol, a lightning protection and grounding symbol, a lighting and power symbol, a secondary symbol, a general diagram symbol, a building symbol, a structure symbol, a hydraulic symbol, a heating and ventilation symbol, and a fire control symbol.
[0016] In some possible implementation manners, the cloud platform is integrated with an existing infrastructure whole-process platform, including: analyzing integrated information flow, the integrated information flow including: engineering personnel information, project configuration information, volume book task information, task progress information; according to integrated technologies, data channels between the cloud platform and the infrastructure whole-process platform are opened, the integrated technologies including: personnel and permission synchronization management technology, used for synchronizing engineering personnel information to the power transmission line cloud platform, and used for completing grouping of personnel and permission allocation; project configuration synchronization management technology used for synchronizing project configuration information to the cloud platform; platform work breakdown structure (WBS) task structure synchronization management technology used for synchronizing volume book task information to the cloud platform, and completing task allocation and authorization; task progress synchronization management technology used for feeding back task progress information to the infrastructure whole-process platform.
[0017] In some possible implementation manners, the cloud platform is constructed based on online computer aided design (CAD) and / or based on online GIS.
[0018] In a second aspect, the present application provides a power transmission line cloud design system of a BS architecture, which is used to execute the method provided in the first aspect. Specifically, the system can include units and / or modules for executing the method provided in the first aspect, such as a processing module and / or a storage module.
[0019] In a possible case, the system is a chip, a chip system or a circuit in the cloud platform. In this case, the system can include units and / or modules for executing the method provided in the first aspect, such as a processing unit and / or a storage unit.
[0020] In a third aspect, the present application provides a computer readable storage medium, which stores program codes for execution of a device, and the program codes include codes for executing any method provided in the first aspect.
[0021] In a fourth aspect, the present application provides a computer program product containing instructions, which, when the computer program product runs on a computer, causes the computer to execute any method provided in the first aspect.
[0022] In a fifth aspect, a chip is provided, which includes a processor and a communication interface, the processor reads instructions stored on a storage through the communication interface, and executes any method provided in the first aspect.
[0023] Optionally, as an implementation manner, the chip further comprises a memory in which instructions are stored, and the processor is configured to execute the instructions stored in the memory, and when the instructions are executed, the processor is configured to execute the method provided in the first aspect.
[0024] Overall, compared with the prior art, the above technical solutions conceived in the present application have the following beneficial effects:
[0025] 1. By introducing cloud technology and BS architecture, the digitization and intelligentization of power transmission line design can be realized, the transformation and upgrading of the power transmission industry can be promoted, the modernization development of power transmission line construction and operation management can be promoted, and a sustainable development ecology of cloud platform opening and inclusiveness can be created. Through continuous improvement, a cloud platform innovation mode that can be promoted and reused is finally formed.
[0026] 2. Deepen the development of various power transmission line design business functions, realize the data intercommunication and collaborative design of various line modules. Finally, full-professional cloud collaborative design of power transmission and transformation projects is realized, and full-professional designers are served well.
[0027] 3. The cloud platform is integrated with the existing infrastructure whole-process platform, data sharing and interaction are realized, design efficiency and management level are improved, and new opportunities and challenges are brought to power transmission line construction and operation management.
[0028] 4. It is convenient for future manufacturers to develop different functional requirements and add them to the cloud platform for sustainable construction and improvement, and to create a cloud design ecology of co-construction, sharing and sustainable development. BRIEF DESCRIPTION OF DRAWINGS
[0029] FIG. 1 is a schematic diagram of a BS architecture power transmission line cloud design method according to an embodiment of the present application.
[0030] FIG. 2 is a schematic diagram of a cloud platform physical deployment architecture according to an embodiment of the present application.
[0031] FIG. 3 is a schematic diagram of a method of integrating a cloud platform and an infrastructure whole-process platform according to an embodiment of the present application.
[0032] FIG. 4 is a schematic block diagram of a BS architecture power transmission line cloud design system according to an embodiment of the present application. DETAILED DESCRIPTION
[0033] In order to make the purpose, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be described in detail below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0034] In order to facilitate the understanding of the embodiments of the present application, the following points are explained.
[0035] First, the terms "comprising" and "having" and any variations thereof are intended to cover non-exclusive inclusions, for example, a process, method, system, product or device comprising a series of steps or units does not have to be limited to those steps or units clearly listed, but can include other steps or units that are not clearly listed or inherent to these processes, methods, products or devices.
[0036] Second, the "storage" involved in the embodiments of the present application can refer to storage in one or more memories. The one or more memories can be separately provided or integrated in the encoder or decoder, processor, or communication device. The one or more memories can also be partially separately provided and partially integrated in the decoder, processor, or communication device. The type of memory can be any form of storage medium, which is not limited in the present application.
[0037] The embodiments shown below do not particularly limit the specific structure of the subject executing the method provided by the embodiments of the present application, as long as the power transmission line can be designed according to the method provided by the embodiments of the present application by running the program in which the code of the method provided by the embodiments of the present application is recorded. For example, the subject executing the method provided by 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.
[0038] It should be understood that in various embodiments of the present application, the size of the serial number of the following processes does not mean the order of execution, and the execution order of each process should be determined by its function and inherent logic, and should not constitute any limitation on the implementation process of the embodiments of the present application.
[0039] It should also be understood that the terms and steps in each embodiment of the present application can be mutually referred to.
[0040] FIG. 1 shows a power transmission line cloud design method 100 of a BS architecture provided by the embodiments of the present application, as shown in FIG. 1, the method 100 comprises:
[0041] Optionally, the cloud platform provided by the embodiments of the present application is built based on online CAD, and / or built based on GIS ball.
[0042] The cloud platform based on online CAD has basic file processing, graphic creation and output functions; has interface programs required for development of power transformation design functions, and can build a graphic database related to power transformation professional design thereon, and develop intelligent design tools for power transformation, which innovates the design means compared with the previous power transformation engineering design process, and can effectively improve the design efficiency and quality. The cloud platform based on GIS ball has a basic coordinate system, including the State Geodetic 2000 coordinate system; has interface programs required for development of power transmission design functions, and can build a model database related to power transmission professional design thereon, and develop intelligent design tools for power transmission, which innovates the design means compared with the previous power transmission engineering design process, and can effectively improve the design efficiency and quality. It can obtain power grid geographic information data from the power grid GIS unified platform, and obtain power grid spatial data from the power production management system (PMS) platform.
[0043] S110, a cloud platform is constructed, which includes: a standard style database, business functions; secondary design content of a power transmission line.
[0044] Optionally, according to the digital design process from standard input to standard output, a standard style database is constructed, for example, a unified font size, color, aspect ratio, label font proportion, arrow style, and various design process styles such as material table header and line type parameters.
[0045] Optionally, the database uses unified standard symbols.
[0046] Illustratively, according to various standard symbols in the design specification, they are classified and sorted by specialty into editable, structured and digitized standard symbols. The standard symbols mainly include main wiring symbols, device symbols, lightning protection grounding symbols, lighting and power symbols, secondary symbols, general layout symbols, building symbols, structure symbols, water conservancy symbols, heating and ventilation symbols, and fire protection symbols.
[0047] Optionally, the database includes: three-dimensional model data, line resource data, geographic information data, external library data, internal library data, historical design data, technical and economic data, and line rule library data.
[0048] The three-dimensional model includes a preliminary design general model and a construction drawing design product model, and the model objects include power transformation engineering and line engineering, and specifically include conductor fittings, lightning protection grounding materials, lighting and power materials, high-voltage cable materials, intelligent auxiliary control equipment, fire alarm equipment, slope retaining wall materials, building materials, water conservancy and heating equipment, underground foundation models, line tower models, line fitting materials, line conductor materials, fences, roads, fence gates, and tunnels.
[0049] Line resources involve tower models, insulator string models, hardware models, and many other device models;
[0050] Geographic information data includes aerial survey images, digital elevation, oblique photography, laser point clouds, and thematic maps;
[0051] External databases include supporting documents such as protocol approvals, external design unit data, and public land planning data;
[0052] Internal databases include State Grid Corporation and provincial company documents, general (typical design) scheme drawings, description numbers, and material lists;
[0053] Historical design data is data from historical engineering design;
[0054] Technical and economic data includes technical and economic documents and equipment lists;
[0055] Line rule library includes regulations and specifications (strong rules, standards, common problems, lists, cases, etc.), State Grid Corporation and provincial company documents, general (typical design) scheme drawings, and typical meteorological zone data;
[0056] Based on the above steps, the database based on the built transmission line cloud platform can add necessary attribute information; strong rules that can be parameterized are sorted out, forming a strong rule database that can be continuously supplemented; relying on the 35kV and 110kV typical design scheme construction drawings of State Grid Hunan Electric Power, the parts that can be parameterized are sorted out according to the professional, volume, and design drawings, and are sorted into tables.
[0057] Optionally, the business functions include engineering management functions, path alignment functions, tower arrangement functions, ground feature plotting functions, verification and analysis functions, and browsing and output functions.
[0058] The engineering management functions include new project creation, project deletion, new section creation, and section deletion, facilitating unified control of projects;
[0059] The path alignment functions include new alignment path creation, alignment path import, and alignment path editing, providing functions such as flat section extraction and path scheme comparison to quickly determine path schemes;
[0060] The tower arrangement function forms structured data by sorting out design parameters in tower design, helping designers quickly complete tower arrangement work by inputting design parameters and tower arrangement design parameters;
[0061] The ground feature plotting function places real-life water systems, buildings, and pipe networks in the GIS sphere to assist designers in path planning and judgment;
[0062] The check analysis function is used to analyze the three-dimensional space of the line design based on GIS geographic information data and oblique photography data. The check analysis function includes: simulating the check of the electrical function designed in the line design, analyzing the stress of wind deflection, span and insulator strength, calculating the electrical operation data such as electromagnetic environment and line loss, and assisting the engineering design;
[0063] The browsing output function is used to preview the line engineering based on the three-dimensional model, including positioning, flyover preview and the like. The line engineering data statistical analysis is supported, the design path graph export, engineering quantity extraction, topography analysis and the like are supported, the design achievement output is supported, and the construction scheme output is supported and the like.
[0064] The structure design function is used to design the tower foundation model of the line engineering based on the cloud platform. The corresponding tower is selected based on the resource library and the predetermined screening condition, and the foundation configuration is realized.
[0065] The achievement export meets the required functions of the cloud platform, fully utilizes the database content, and realizes the whole process design of the power transmission line based on the online GIS ball. The design achievement can be conveniently viewed and the line design achievement can be quickly exported.
[0066] Based on the above steps, the cloud platform design can fully consider the wisdom and collaborative design, the intelligent process control, the online time length statistics of the designer, the needs of the senior application business and the construction management, and plans the needs of the parameterization or structural division of each type of database model of the above functions.
[0067] Optionally, the secondary design content of the power transmission line includes the schematic diagram design, the terminal array diagram design, the cable laying design, the optical / tail cable laying design, the virtual terminal design, and the remote dispatch information point table design.
[0068] Based on the above steps, the secondary schematic diagram and the terminal array diagram of the manufacturer can be well matched, the secondary basic symbols and related files in the database can be well called, and the secondary design drawing achievement file of the newly created engineering can be quickly generated.
[0069] S120, integrating the cloud platform with the existing infrastructure whole process platform.
[0070] Referring to FIG. 3, FIG. 3 shows a method 300 of integrating a cloud platform with an infrastructure whole process platform provided by the present application. The method 300 includes:
[0071] S310, analyzing the integrated information flow, including: engineering personnel information, project configuration information, volume book task information, and task progress information.
[0072] It should be noted that the whole process of infrastructure platform as a source of engineering management information, need to be timely and accurate to the cloud platform issued tasks and key data, the cloud platform needs to be timely feedback to the whole process of infrastructure platform information.
[0073] Among them, the engineering personnel information is first published on the whole process of infrastructure platform, including the participation of the whole project of each professional personnel, the role of each personnel, the engineering personnel information is the basis for the division of each professional work group and the allocation of authority on the cloud platform, and the information flow is issued to the cloud platform by the whole process of infrastructure platform.
[0074] Project configuration information is an important basic and principle information of engineering project, which is first published on the whole process of infrastructure platform. The cloud platform should be configured according to the information on the whole process of infrastructure platform platform to ensure the accuracy of basic and principle data after engineering design, and the information is changed synchronously with the information on the whole process of infrastructure platform.
[0075] The volume book task information is the work breakdown structure (WBS) task decomposition structure information after the design planning of each professional. The volume book task information is first published on the whole process of infrastructure platform. These volume book task information corresponds to the task decomposition and task allocation on the cloud platform, and the task structure on the cloud platform is also adjusted accordingly with the adjustment of the task structure on the whole process of infrastructure platform.
[0076] Task progress information refers to the completion progress information of each task on the cloud platform. The task progress information is an important basis for managers to control the progress of the whole project. With the progress of engineering design, the task progress information is automatically recorded on the cloud platform. The information needs to be collected and fed back to the whole process of infrastructure platform, so as to timely reflect the progress of the project.
[0077] S320, according to the integration technology to open the data channel between the cloud platform and the whole process of infrastructure platform. The integration technology includes: personnel and permission synchronization management technology, project configuration synchronization management technology, platform WBS task structure synchronization management technology, task progress synchronization management technology.
[0078] Specifically, the personnel and permission synchronization management technology is used to synchronize the engineering personnel information published on the whole process of infrastructure platform into the design personnel information on the cloud platform, and complete the grouping and permission allocation of the design personnel at the same time.
[0079] The project configuration synchronization management technology is used to synchronize the project configuration information and its data published on the whole process of infrastructure platform into the project basic configuration parameters on the cloud platform, so as to ensure the accurate transmission of parameters.
[0080] The platform WBS task structure synchronization management technology is used to synchronize the volume task information published on the whole-process platform into the WBS task structure on the cloud platform, and at the same time complete the task allocation and authorization;
[0081] Optionally, the work breakdown structure can take various forms, and the WBS task breakdown of the whole-process platform and the cloud platform is slightly different due to the differences in management content and process.
[0082] Illustratively, the whole-process platform takes the task category as the first layer and the specific task as the second layer, and each task corresponds to a specific task person in charge, and the cloud platform takes the system category as the first layer, the volume as the second layer, and the volume task as the second layer, and each task corresponds to the volume book person in charge of the volume book. The matching and synchronization of the WBS task structures of the two platforms are realized through the synchronization management technology.
[0083] The task progress synchronization management technology is used to write the task progress information on the cloud platform back to the whole-process platform, and form task progress comprehensive display information on the whole-process platform, which is convenient for managers to implement progress management.
[0084] Based on the above method, the integrated whole-process platform and cloud platform pass through the data channel between the two platforms through integration technology, realize the sharing, interaction and synchronization management of data, avoid manual input and output of data between the two platforms, improve the efficiency of power transmission line design and management level, and promote the modernization development of power transmission line construction and operation management.
[0085] S130, receiving the power transmission line design requirements submitted by the user through the browser.
[0086] Specifically, when the user submits the power transmission line design requirements through the browser, these requirements may cover many aspects, such as line path planning, load demand, environmental conditions, etc. The user may need to specify the starting point and endpoint of the line, as well as the geographical location of the line, taking into account factors such as topography, land use, environmental protection requirements, etc. In addition, the user may also need to provide information about load characteristics and power demand, such as expected load, load type, load distribution, etc., in order for the cloud platform to calculate and optimize power transmission capacity. At the same time, the user may also need to specify environmental conditions such as climate conditions, geological conditions, population density, etc., which will have an impact on the design and layout of the power transmission line.
[0087] S140, generating a power transmission line design scheme according to the power transmission line design requirements.
[0088] Optionally, according to the power transmission line design requirements, a three-dimensional model is established, and the specific steps are as follows:
[0089] S1, build a tower model
[0090] For each tower group (including tower, foundation, insulator string), take the tower as the main reference, adjust the tower model direction according to the longitude and latitude coordinates and elevation information of the tower three-dimensional model origin, and combine the tower north direction deflection angle information to place the tower model in the three-dimensional scene.
[0091] S2, build a foundation model
[0092] Traverse all the foundation model data of the same tower group, and place the foundation three-dimensional model in turn according to the spatial transformation matrix of the foundation model origin relative to the tower model origin.
[0093] S3, build an insulator string
[0094] Traverse all the insulator string model data of the same tower group, assemble the insulator string according to the spatial transformation matrix of the fittings and insulators relative to the insulator string modeling origin, and then place the insulator string three-dimensional model in turn according to the spatial transformation matrix of the insulator string model origin relative to the tower model origin.
[0095] S4, build a ground wire model
[0096] According to the insulator string model data of the corresponding insulator string in the front and rear two tower groups in the same tension section, obtain the ground wire hanging point information at both ends of each conductor group, calculate and draw the ground wire (jumper) using the stress sag related algorithm, and form a ground wire three-dimensional model according to the outer diameter size of the ground wire (jumper). According to the tower position center point of the small side tower model as the reference, combine the spatial transformation matrix information to place the spacer and the shock absorber three-dimensional model.
[0097] S5, build a crossing model
[0098] In the same tension section, traverse all the crossing information (such as ground object type, number of connected nodes, position and connection order, etc.), connect the longitude and latitude coordinates of the crossing nodes in turn according to the connection order, combine the height information to form a simple geometric crossing three-dimensional model (such as houses, trees, etc.), and add texture pictures according to actual needs.
[0099] S6, organize an engineering model, and execute the above steps S1 to S5 in a loop until all tension sections are completed, and synthesize a three-dimensional scene of the overhead transmission line project.
[0100] FIG. 2 shows a cloud platform physical deployment architecture provided by the present application, as shown in FIG. 2, the cloud platform adopts a provincial company secondary deployment, the server uses the existing resource pool application of the Hunan company infrastructure whole process platform, and is deployed on a k8s (kubernetes) cluster through multiple electronic design automation (EDA) components, and uses the existing database component on the cloud.
[0101] The following illustrates the cloud platform planning server capacity provided by the embodiments of the present application, but the present application is not limited thereto.
[0102] (1) Database server performance calculation
[0103] The main users of the cloud platform are the provincial company construction department, the research institute, and the city design unit, about 1000 people, and the system should support more than half of the online access capacity at the peak time, a total of 1000*50% = 500 people or so (U1); each user sends 10 business requests per minute on average (N1); update, query, and statistics each account for 1 / 3 of the number of business requests sent by the user (U1*N1); the computer will generate 6 transactions (T1) per update, 10 transactions (T2) per query, and 13 transactions (T3) per statistics on average; the processing capacity in the busy time within a day is 10 times the average value; the experience coefficient is 1.6 (actual engineering experience); 30% redundancy is considered for the server; and the system resource occupation coefficient is 30%.
[0104] Based on the above, the database server needs processing capacity: Tpc-c = U1*N1(T1+T2+T3) / 3*10*experience coefficient / (1-redundancy coefficient) / (1-system resource occupation coefficient), and the processing performance of the government network database server is estimated as: Tpc-c = 500*10*(6+10+13) / 3*10*1.6 / 0.7 / 0.7≈ 1,578,231 Tpmc.
[0105] (2) Application server processing performance
[0106] Each user sends 4 requests per minute on average, and the system should support more than 50% of the online access capacity of the system user at the peak time, so the host processing peak performance should be able to reach 1000*50%*4 = 2000 connections / min, and each application server connection is equivalent to 6-8 database accesses, and according to experience, each database access is equivalent to the processing capacity of 10-20 Tpm of the server.
[0107] Connections per minute: 2000 connections / min; each connection: 6-8 database accesses (take the highest value 8 this time); each access: 10-20 Tpm (take the highest value 20 this time); the system itself consumes 30% of the system resources; and 30% redundancy is considered; then the Tpc-c of the application server required is: 2000*8*20 / 0.7 / 0.7≈653,061.Tpmc.
[0108] (3) Server configuration table
[0109] Corresponding to the method given in each of the method embodiments above, the embodiments of the present application also provide a corresponding system, which comprises a module for executing the corresponding method of each of the above method embodiments. The module can be software, hardware, or a combination of software and hardware. It can be understood that the technical features described in the above method embodiments are also applicable to the following embodiments.
[0110] Fig. 4 shows a schematic block diagram of a power line cloud design system of a BS architecture according to an embodiment of the present application. As shown in Fig. 4, the system 20 comprises a processor 21 configured to execute computer programs or instructions stored in a memory 22, or read data / signaling stored in the memory 22, to perform the method in the above method embodiments. Optionally, the processor 21 is one or more.
[0111] Optionally, as shown in Fig. 4, the apparatus 20 further comprises a memory 22 configured to store computer programs or instructions and / or data. The memory 22 can be integrated with the processor 21, or can be separately arranged. Optionally, the memory 22 is one or more.
[0112] Optionally, as shown in Fig. 4, the apparatus 10 further comprises a transceiver 23 configured to receive and / or send signals. For example, the processor 21 is configured to control the transceiver 23 to receive and / or send signals.
[0113] As an option, the apparatus 20 is configured to implement the operations performed by the cloud platform in the above method embodiments.
[0114] For example, the processor 21 is configured to execute computer programs or instructions stored in the memory 22 to implement the related operations of the cloud platform in the above method embodiments. For example, the method performed by the cloud platform in the embodiments shown in Fig. 1 or Fig. 3.
[0115] It should be understood that the processor mentioned in the embodiments of the present application can be a central processing module (CPU), and can also 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 gates or transistor logic devices, discrete hardware components, etc. The general-purpose processor can be a microprocessor or the processor can also be any conventional processor.
[0116] It should also be understood that the memory referred to in the embodiments of the present application can be a volatile memory and / or a non-volatile memory. Among them, the non-volatile memory can be a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically EPROM (EEPROM) or a flash memory. The volatile memory can be a random access memory (RAM). For example, the RAM can be used as an external cache. As an example but not limitation, the RAM includes the following various forms: static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), double data rate SDRAM (DDR SDRAM), enhanced SDRAM (ESDRAM), synchronous link DRAM (SLDRAM) and direct memory bus random access memory (direct rambus RAM, DR RAM).
[0117] It should be noted that when the processor is a general processor, a DSP, an ASIC, a FPGA or other programmable logic device, a discrete gate or transistor logic device, a discrete hardware component, the memory (storage module) can be integrated in the processor.
[0118] It should also be noted that the memory described herein is intended to include, but not limited to, these and any other suitable types of memory.
[0119] The embodiments of the present application also provide a computer readable storage medium, which stores computer instructions for implementing the method executed by the cloud platform in the above-mentioned method embodiments.
[0120] The embodiments of the present application also provide a computer program product, which contains instructions executed by a computer to implement the method executed by the cloud platform in the above-mentioned method embodiments.
[0121] The explanations and beneficial effects of the related contents in any of the above-mentioned devices can refer to the corresponding method embodiments provided in the above, which will not be repeated here.
[0122] In several embodiments provided in the present application, it should be understood that the disclosed apparatus and method can be implemented by other manners. For example, the apparatus embodiments described above are only illustrative, for example, the division of the units is only a logical function division, and actual implementation can have another division manner, for example, a plurality of units or components can be combined or integrated into another system, or some features can be ignored or not executed. In addition, the coupling or direct coupling or communication connection between the units or components shown or discussed can be indirect coupling or communication connection through some interfaces, apparatuses or units, and can be electrical, mechanical or other forms.
[0123] In the above embodiments, all or part of the embodiments can be implemented by software, hardware, firmware or any combination thereof. When implemented by software, all or part of the embodiments can be implemented 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, all or part of the processes or functions described in the embodiments of the present application are generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network or other programmable devices. For example, the computer can be a personal computer, a server or a network device. 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 through wired (such as coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (such as infrared, wireless, microwave, etc.) mode. The computer readable storage medium can be any available medium that can be accessed by a computer or a data storage device such as a server, data center, etc. integrated with one or more available media. The available media can be magnetic media (such as floppy disk, hard disk, magnetic tape), optical media (such as DVD), or semiconductor media (such as solid state disk (SSD) and the like. For example, the foregoing available media includes but is not limited to: U disk, mobile hard disk, read-only memory (ROM), random access memory (RAM), magnetic disk or optical disk and various media that can store program codes.
[0124] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art can easily think of changes or replacements within the technical range disclosed in the present application, which should be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A method for transmission line cloud design of BS architecture, characterized in that, The method comprises the following steps: constructing a cloud platform for power transmission line; integrating the cloud platform with an existing whole-process infrastructure platform; receiving a power transmission line design requirement submitted by a user through a browser; generating a power transmission line design scheme according to the power transmission line design requirement; wherein the cloud platform comprises: a database of standard patterns; a business function, which comprises an engineering management function, a path selection function, a tower arrangement function, a ground object plotting function, a checking and analyzing function, and a browsing and outputting function; a secondary design content of the power transmission line, which comprises a schematic design, a terminal arrangement design, a cable laying design, an optical or tail cable laying design, a virtual terminal design, and a remote dispatching information point table design.
2. The method of claim 1, wherein, the database comprises: 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; the database uses unified standard symbols, which comprise: main wiring symbols, device symbols, lightning protection and grounding symbols, lighting and power symbols, secondary symbols, general layout symbols, building symbols, structure symbols, hydraulic symbols, heating and ventilation symbols, and fire protection symbols.
3. The method of claim 1, wherein the engineering management function comprises: new project, delete project, new section, and delete section; the path selection function comprises: new selection path, import selection path, and edit selection path; the tower arrangement function forms structured data by sorting design parameters in the tower; the ground object plotting function places water systems, buildings, and pipe networks in a geographic information system (GIS) ball to assist designers in path planning and judgment; the checking and analyzing function comprises: electrical function simulation checking in the power transmission line, and / or stress analysis of wind deflection, span, and insulator strength, and / or calculation of electromagnetic environment and line loss; the browsing and outputting function comprises: statistical analysis of power transmission line data, and / or acquisition of path map, engineering quantity, and topography of the power transmission line, and / or output of design results and construction scheme. the integration with the existing whole-process infrastructure platform comprises:
4. The method of claim 3, wherein, analysis of integrated information flow, which comprises: engineering personnel information, project configuration information, volume book task information, and task progress information; data channel between the power transmission line cloud platform and the whole-process infrastructure platform is punched through according to integrated technology, which comprises: personnel and permission synchronization management technology, which is used for synchronizing the engineering personnel information to the power transmission line cloud platform, and completing grouping and permission allocation of personnel; project configuration synchronization management technology, which is used for synchronizing the project configuration information to the power transmission line cloud platform; A platform work breakdown structure (WBS) task structure synchronization management technology is used to synchronize the volume task information to the power transmission line cloud platform, and complete the allocation and authorization of tasks. A task progress synchronization management technology is used to feed back the task progress information to the infrastructure whole-process platform.
5. The method according to any one of claims 1 to 4, characterized in that, The cloud platform is constructed based on online computer aided design (CAD), and / or the cloud platform is constructed based on online GIS ball.
6. A power line cloud system of BS architecture, characterized by, The computer readable storage medium stores a computer program, and when the computer program runs on a computer, the computer executes the method of any one of claims 1 to 5. The computer program product includes instructions for executing the method of any one of claims 1 to 5.
7. A computer readable storage medium characterized by The computer program product includes instructions for executing the method of any one of claims 1 to 5.
8. A computer program product, characterised in that,
Citation Information
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