CN121637621A - Power grid engineering foundation design system and method based on general function module - Google Patents
Power grid engineering foundation design system and method based on general function moduleInfo
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- CN121637621A CN121637621A CN202511758055.3A CN202511758055A CN121637621A CN 121637621 A CN121637621 A CN 121637621A CN 202511758055 A CN202511758055 A CN 202511758055A CN 121637621 A CN121637621 A CN 121637621A
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Abstract
The invention relates to a power grid engineering foundation design system and method based on a universal functional module, wherein the system comprises a universal editing module, a basic primitive modeling module, a parameterized component module, a model integration module and a link reference module, wherein the universal editing module is used for freely adjusting, placing and combining selected primitives, the basic primitive modeling module is used for providing various basic primitives and completing splicing among the primitives through surface-based arrangement and parameter change, the parameterized component module is used for creating parameterized components in a UI interactive mode, the model integration module is used for conducting modeling and design operation by importing a disclosed data format through an interface, and the link reference module is used for integrating a local file into a current model in the system through a model link reference interface to be used as view reference. Compared with the prior art, the invention takes the power grid engineering design requirement as a guide, completes the design of the technical architecture and the functional system of the design basic platform, and improves the efficiency.
Description
Technical Field
The invention relates to the technical field of power grid infrastructure engineering digitization, in particular to a power grid engineering foundation design system and method based on a general functional module.
Background
At present, the digitization of the power grid infrastructure engineering mainly surrounds BIM (Building Information Modeling) technology and related technology, visualization and decision analysis research in the aspects of engineering design, construction, management and the like are mainly performed, and the BIM technology gradually becomes a universal digitization technology in the field of power grid engineering. In the digital transformation of power grid engineering, the domestic integrated BIM graphic platform is required to support model complexity and large scene rendering simultaneously, and a plurality of projects are required to be integrated in large-scale power grid engineering, and can be displayed and applied in real time, dynamically and in multiple scales. Compared with foreign software platforms, the localization has better flexibility and shorter update period, and is suitable for the business functions of national specifications and standards. Under the large background, the research and development of a power grid engineering design basic platform based on a domestic graphic engine is particularly important. The power grid is an important component of an energy system, and the digital transformation of the design, construction and operation and maintenance of the power grid directly affects the whole process of energy digitization.
The existing domestic graphic engine provides basic algorithm support of geometric modeling, but has a great gap from a design platform, and particularly has a plurality of basic functions such as view, marking, size, shaft network and the like.
Disclosure of Invention
The invention aims to overcome the defects of the prior art and provide a power grid engineering foundation design system and method based on a general function module, which take the power grid engineering design requirement as a guide and provide foundation functions of a foundation platform.
The aim of the invention can be achieved by the following technical scheme:
The utility model provides a power grid engineering basic design system based on general function module, includes general editing module, basic primitive modeling module, parameterization component module, model integration module and link reference module;
the universal editing module is used for freely adjusting, placing and combining the selected primitives;
the basic primitive modeling module is used for providing various basic primitives and completing the splicing among the primitives through the arrangement of the surfaces and the change of parameters;
The parameterized component module is used for creating a parameterized component in a UI interaction mode;
The model integration module is used for importing a disclosed data format through an interface to perform modeling and design operation;
the link reference module is used for integrating the local file into the current model in the system through the model link reference interface to be used as view reference.
Further, the universal editing module includes:
the moving tool is used for placing the selected graphic element at any formulated position of the current view and is provided with a moving tracker coordinate parameter input function, and the moving tracker coordinate parameter input function is used for realizing the movement of the graphic element according to the coordinate value input by a user;
the copying tool is used for copying the selected graphic element to any formulated position of the current view, and is provided with a copying tracker coordinate parameter input function which is used for copying the graphic element according to the coordinate value input by a user;
The rotation tool is used for rotating the selected graphic element by a certain angle to the formulated position of the current view, and is provided with a rotation tracker coordinate parameter input function which is used for realizing the rotation of the graphic element according to the rotation angle input by a user;
the mirror image tool is used for determining a mirror image axis and a corresponding space mirror image plane according to the selected two points, and further carrying out mirror image operation on the selected image;
and the array tool is used for copying and arranging the primitives according to the selected one or more primitives and formulating array types and array parameters.
Further, the array types in the array tool include:
The linear array is used for equidistantly arranging selected graphic elements along a straight line to form one or more rows of the same graphic elements, and in the forming process of the linear array, the direction and the distance of the array are controlled through the movement of a mouse or the arrangement of the direction and the distance of the array is carried out through the input of the distance and the angle;
The rectangular array is used for arranging the selected primitives in a rectangular area and determining arrangement parameters according to the formulated number of rows and columns;
and the arc array is used for arranging the selected primitives along an arc path, wherein in the formation process of the arc array, the configuration of the arc path is finished through the specified radius and angle, and the arrangement of a plurality of arc paths is finished through the specified number and angle of the array.
Further, the surface-based arrangement mode in the basic primitive modeling module comprises stretching and lofting.
Furthermore, the parameterized component module is specifically used for creating parameterized components, carrying out parameter updating on the parameterized components, integrating the created parameterized components into a project environment, and classifying and displaying the parameterized components by category in a component list mode.
Further, the model integration module includes:
The IFC importing function is used for connecting an IFC file in the hard disk to the current model and placing the IFC file in a drawing area to perform scene components;
and the DWG importing function is used for importing the DWG file in the hard disk into the current model, and modifying and perfecting the current model file by comparing the DWG file with the current model file.
Further, the link reference module includes:
A linking function for integrating the local file into the current model through a model linking reference interface to be used as a view reference;
And the link manager is used for providing a view for managing the linked model files, saving the names, the link states, the last modification time, the storage paths and the current nesting mode information of the corresponding model files, carrying out link position modification on the linked model files, adding new links, unloading and reloading the link files, and setting reference relations for the link files.
Furthermore, the power grid engineering foundation design system is used for digitally constructing transformer substation engineering and distribution engineering.
Furthermore, the power grid engineering basic design system is realized through a graphic engine.
The invention also provides a power grid engineering foundation design method of the power grid engineering foundation design system based on the general function module, which comprises the following steps of;
Selecting a required basic primitive from the basic primitive modeling module, and carrying out position arrangement and parameter adjustment on the selected basic primitive according to requirements;
freely adjusting, placing and combining the selected primitives through the universal editing module;
creating a parameterized component in a UI interactive manner through the parameterized component module;
Constructing a current model file according to the created primitive and the parameterized component;
The disclosed data format is imported by an interface through the model integration module so as to be fused with the current model file and modified well;
And integrating the local file into a current model in the system through the model link reference interface by the link reference module to serve as view reference so as to modify the current model file until editing of the current model file is completed.
Compared with the prior art, the invention has the following advantages:
(1) The invention takes the design requirement of the power grid engineering as guidance, and completes the design of the technical architecture and the functional system of the design basic platform by constructing the universal editing module, the basic graphic element modeling module, the parameterized component module, the model integration module and the link reference module, thereby better meeting the requirement of the power grid engineering field.
(2) The universal editing module provided by the invention is provided with the moving tool, the copying tool, the rotating tool, the mirroring tool and the array tool, can realize engineering-level accurate control, and the added tracker coordinate parameter input function allows a user to control the position of the graphic element through an accurate numerical value, so that the requirement of power grid engineering on millimeter-level precision is met, and the provided continuous copying and previewing functions remarkably improve the efficiency of complex power grid layout, such as repeated works of tower arrangement, equipment arrangement and the like.
(3) The parameterized component module provided by the invention realizes the modular concept innovation of 'design, namely assembly', can store the created component file locally and repeatedly use the component file in projects, supports classified display according to categories, can be flexibly adjusted according to engineering requirements, and can update the whole line by only modifying the core component when the standard of a transformer substation is updated, thereby greatly improving the design iteration speed.
(4) The model integration module provided by the invention can conduct modeling and design operation by importing the disclosed data format through the interface, solves the common data exchange problem in the power grid engineering, and reduces the migration threshold of users. The provided link reference module allows the external file to be integrated into the current model as view reference, and realizes multi-specialty collaborative design, so that the three-dimensional model created in the design stage and the built-in parameters thereof can be directly transmitted to the construction and operation and maintenance stage, and a foundation is laid for digital twin application.
Drawings
Fig. 1 is a schematic structural diagram of a power grid engineering basic design system based on a general functional module according to an embodiment of the present invention;
fig. 2 is a flow chart of a power grid engineering basic design method based on a general function module provided in an embodiment of the invention.
Detailed Description
For the purpose of making the objects, technical solutions and advantages of the embodiments of the present invention more apparent, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention, and it is apparent that the described embodiments are some embodiments of the present invention, but not all embodiments of the present invention. The components of the embodiments of the present invention generally described and illustrated in the figures herein may be arranged and designed in a wide variety of different configurations.
Thus, the following detailed description of the embodiments of the invention, as presented in the figures, is not intended to limit the scope of the invention, as claimed, but is merely representative of selected embodiments of the invention. All other embodiments, which can be made by those skilled in the art based on the embodiments of the invention without making any inventive effort, are intended to be within the scope of the invention.
It should be noted that like reference numerals and letters refer to like items in the following figures, and thus once an item is defined in one figure, no further definition or explanation thereof is necessary in the following figures.
In the description of the present invention, it should be noted that, directions or positional relationships indicated by terms such as "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc., are directions or positional relationships based on those shown in the drawings, or are directions or positional relationships conventionally put in use of the inventive product, are merely for convenience of describing the present invention and simplifying the description, and are not indicative or implying that the apparatus or element to be referred to must have a specific direction, be constructed and operated in a specific direction, and thus should not be construed as limiting the present invention.
It should be noted that the terms "first," "second," and "second" are used for descriptive purposes only and are not to be construed as indicating or implying a relative importance or implying a number of technical features being indicated. Thus, a feature defining "a first" or "a second" may explicitly or implicitly include one or more such feature. In the description of the present application, the meaning of "a plurality" is two or more, unless explicitly defined otherwise.
Furthermore, the terms "horizontal," "vertical," and the like do not denote a requirement that the component be absolutely horizontal or overhang, but rather may be slightly inclined. As "horizontal" merely means that its direction is more horizontal than "vertical", and does not mean that the structure must be perfectly horizontal, but may be slightly inclined.
Example 1
As shown in fig. 1, the present embodiment provides a power grid engineering basic design system based on a general function module, which includes a general editing module, a basic primitive modeling module, a parameterized component module, a model integration module and a link reference module;
The universal editing module is used for freely adjusting, placing and combining the selected primitives;
The basic primitive modeling module is used for providing various basic primitives and completing the splicing among the primitives through the arrangement of the surfaces and the change of parameters;
the parameterized component module is used for creating parameterized components in a UI interaction mode;
the model integration module is used for importing a disclosed data format through an interface to perform modeling and design operation;
the link reference module is used for integrating the local file into the current model in the system through the model link reference interface to be used as view reference.
1) Universal editing module
The universal editing module serves as a core foundation of the platform, covers key operation in daily modeling, and provides strong flexibility for the platform. Through this function, the platform supports the free adjustment, placement and combination of various elements to accommodate different project requirements. The high degree of customization and adaptability enables the platform to be widely applied to various complex scenes, and modeling efficiency and project quality are improved.
The method specifically comprises the following steps:
the moving tool is used for placing the selected graphic element at any formulated position of the current view, and is further provided with a coordinate parameter input function of a moving tracker for realizing the movement of the graphic element according to the coordinate value input by the user in order to meet the pursuit of the user on the accuracy, and the moving tool is used for allowing the user to realize the accurate movement of the graphic element by inputting the accurate coordinate value. The functional design not only enhances the convenience of user operation, but also greatly improves the accuracy and efficiency of graphic editing.
The copying tool is used for copying the selected graphic element to any formulated position of the current view, and is provided with a copying tracker coordinate parameter input function which is used for copying the graphic element according to the coordinate value input by a user, and allowing the user to realize accurate and rapid copying of the graphic element by inputting an accurate coordinate value, so that the modeling accuracy is ensured.
The continuous copying tool can continuously copy the same element on the basis of the copying tool, so that the flexibility and the high efficiency of user drawing are ensured. The working efficiency is improved by reducing the repeated drawing time, so that all copied objects are ensured to be completely consistent with the original objects, and the accuracy and the professionality of the design are improved.
The rotation tool is used for rotating the selected graphic element to a set position of the current view by a certain angle, and is provided with a rotation tracker coordinate parameter input function which is used for realizing the rotation of the graphic element according to the rotation angle input by a user, and the rotation tool provides great convenience and flexibility in the mouse interaction process, so that the operation can quickly change the drawing plane and can rotate and adjust the graphic element under different view angles and orientations. In this way, the user can more intuitively observe and modify the design, ensuring that the graphical elements are presented on the drawing in an optimal manner.
The mirror image tool is used for determining a mirror image axis and a corresponding space mirror image plane according to the selected two points, and further carrying out mirror image operation on the selected image;
I.e. it serves to determine the mirror axis and the corresponding spatial mirror plane by means of two points specified by the user, and thus to perform an accurate mirror operation on the selected graphical element. This function has greatly promoted flexibility and the efficiency of design for the designer can be according to actual conditions quick adjustment mirror image effect, satisfies diversified design demand.
The array tool is used for copying and arranging the primitives according to the selected one or more primitives and formulating array types and array parameters;
The user may first select one or more primitives and then specify the type of array (linear, rectangular, or arc) and associated parameters (e.g., spacing, number, etc.).
Specifically, the array types in the array tool include:
the linear array is used for equidistantly arranging the selected graphic elements along a straight line to form one or more rows of the same graphic elements, and in the forming process of the linear array, the direction and the distance of the array are controlled by the movement of a mouse or the setting of the direction and the distance of the array is carried out by inputting the distance and the angle;
in the array process, the direction and the distance of the array are controlled by the movement of the mouse, and the distance and the angle can be input, so that the rapidness and the accuracy degree of drawing are ensured.
The rectangular array is used for arranging the selected primitives in a rectangular area and determining arrangement parameters according to the formulated number of rows and columns;
The array effect can be adjusted by a user through modifying the row number, the column number, the angle and the like in the head-up column, and when the array is in the modeling interface, array preview can be realized, so that an adjustment result can be more intuitively grasped, and accurate positioning is facilitated.
The circular arc array is used for arranging the selected primitives along a circular arc path, the configuration of the circular arc path is completed through the specified radius and angle in the forming process of the circular arc array, and the arrangement of a plurality of circular arc paths is completed through the number and angle of the specified array;
That is, an arcuate arrangement having a particular radius and angular spacing may be created. After the number and the angle of the arrays are specified by a user, the arrays can be flexibly arranged according to indoor specific conditions.
2) Basic primitive modeling module
In the embodiment, 25 basic primitives are provided by combing the power grid engineering geometric model, and the primitive splicing is completed by plane-based arrangement and parameter parameters. Including stretching, lofting, etc.
3) Parameterized component module
The parameterized component module is specifically used for creating parameterized components, carrying out parameter updating on the parameterized components, integrating the created parameterized components into a project environment, and classifying and displaying the parameterized components by category in a component list mode.
In this embodiment, the component obtained by the parameterized component module may be stored in a local. Gac file, and various parameterized components may be created through UI interaction by the component editor function, which is the only tool to edit the component geometry.
In the component modeling environment, a user can freely create components according to own requirements so as to meet the requirements of different projects, and when corresponding equipment is updated, the user can update the components according to the requirements. The successfully created components can be integrated into a project environment, and classified and displayed according to the types in a component list mode, so that a user can conveniently check and arrange examples at any time, newly added component users in a component library can be directly arranged in corresponding projects, and the working efficiency is greatly improved. By creating a model based on parameterized components, the mechanisms of substation equipment model arrangement, attribute binding, project parameters and the like accelerate the function, performance verification and iterative optimization of the platform in actual engineering.
4) Model integrated module
For the disclosed data formats such as IFC and DWG (AutoCAD), the model integration module adopts a third-party plug-in mode to realize integration. The user may perform secondary development on the relevant design software (e.g., revit), derive identifiable model data formats through plug-ins using interfaces and functions provided internally in the software, and then import these data into the underlying enabling platform for further modeling and design operations. The model integration function is compatible with the mainstream drawing software in the current industry, and integrates the data in the model integration function onto a platform for unified analysis, so that unified management of the data and rapid follow-up work are facilitated.
The model integration module comprises:
The IFC importing function is used for connecting an IFC file in the hard disk to the current model and placing the IFC file in a drawing area to perform scene components;
Specifically, this function can mainly connect the IFC file in the hard disk to the current model. This operation does not empty the current graphic information, but rather fuses the imported graphic with the original model. The imported IFC file content will be placed in the drawing area as a built model, which the user can view and modify as other model elements are manipulated. By importing multiple IFC files into the same model, a user can construct a more flexible scene for more comprehensive design and analysis.
The DWG importing function is used for importing the DWG file in the hard disk into the current model, and modifying and perfecting the current model file by comparing the DWG file with the current model file;
Specifically, the function can mainly guide the DWG file in the hard disk into the current model, and the corresponding drawing can be more accurately perfected by comparing the DWG file with the modeling file, so that the whole project can be intuitively checked and modified, and the design error is reduced.
5) Link reference module
The link reference module includes:
A linking function for integrating the local file into the current model through a model linking reference interface to be used as a view reference;
Specifically, the platform supports seamless integration of local files into the current model through the model link reference interface. After the link is successful, the files can be used as view references and directly applied to the current model, so that the details and the layers of the model are enriched. The integration mode not only improves the efficiency and accuracy of model construction, but also provides more flexible and convenient model operation experience for users.
The link manager is used for providing a view for managing the linked model files, saving the names, the link states, the last modification time, the storage paths and the current nesting mode information of the corresponding model files, carrying out link position modification, adding new links, unloading and reloading the link files on the linked model files, and setting reference relations for the link files;
In particular, the link model manager provides a comprehensive view to the user for managing the linked model files. In the manager, a user can intuitively view information such as the name, the link state, the last modification time, the storage path, the current nesting mode and the like of the file. In addition, the user also has fine-grained control over the link files, including modifying link positioning, adding new links, unloading and reloading the link files, and setting reference relationships for the link files. These functions greatly enhance the flexibility and convenience of the platform in processing and managing model files.
Through the data integration capability, the basic enabling platform can conveniently import and integrate power grid model data in different formats, including compatible support for IFC, GIM, RVT, DWG formats and the like. The flexibility and the compatibility enable the platform to adapt to the requirements of different design software and data sources, provide a unified modeling environment and workflow, and facilitate modeling and design work of power grid engineering for users.
Example 2
As shown in fig. 2, the present embodiment provides a power grid engineering basic design method of the power grid engineering basic design system based on the general function module according to embodiment 1, which includes the following steps;
S1, selecting a required basic primitive in a basic primitive modeling module, and carrying out position arrangement and parameter adjustment on the selected basic primitive according to requirements;
s2, freely adjusting, placing and combining the selected primitives through a universal editing module;
s3, creating a parameterized component in a UI interaction mode through a parameterized component module;
s4, constructing a current model file according to the created graphic element and the parameterized component;
s5, importing a disclosed data format through a model integration module by an interface so as to be fused with a current model file and modified well;
And S6, integrating the local file into a current model in the system through a model link reference interface by a link reference module to serve as view reference so as to modify the current model file until editing of the current model file is completed.
It will be appreciated by those skilled in the art that embodiments of the present application may be provided as a method, system, or computer program product. Accordingly, the present application may take the form of an entirely hardware embodiment, an entirely software embodiment or an embodiment combining software and hardware aspects. Furthermore, the present application may take the form of a computer program product embodied on one or more computer-usable storage media (including, but not limited to, disk storage, CD-ROM, optical storage, and the like) having computer-usable program code embodied therein. The scheme in the embodiment of the application can be realized by adopting various computer languages, such as object-oriented programming language Java, an transliteration script language JavaScript and the like.
The present application is described with reference to flowchart illustrations and/or block diagrams of methods, apparatus (systems) and computer program products according to embodiments of the application. It will be understood that each flow and/or block of the flowchart illustrations and/or block diagrams, and combinations of flows and/or blocks in the flowchart illustrations and/or block diagrams, can be implemented by computer program instructions. These computer program instructions may be provided to a processor of a general purpose computer, special purpose computer, embedded processor, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, create means for implementing the functions specified in the flowchart flow or flows and/or block diagram block or blocks.
These computer program instructions may also be stored in a computer-readable memory that can direct a computer or other programmable data processing apparatus to function in a particular manner, such that the instructions stored in the computer-readable memory produce an article of manufacture including instruction means which implement the function specified in the flowchart flow or flows and/or block diagram block or blocks.
These computer program instructions may also be loaded onto a computer or other programmable data processing apparatus to cause a series of operational steps to be performed on the computer or other programmable apparatus to produce a computer implemented process such that the instructions which execute on the computer or other programmable apparatus provide steps for implementing the functions specified in the flowchart flow or flows and/or block diagram block or blocks.
While preferred embodiments of the present application have been described, additional variations and modifications in those embodiments may occur to those skilled in the art once they learn of the basic inventive concepts. It is therefore intended that the following claims be interpreted as including the preferred embodiments and all such alterations and modifications as fall within the scope of the application.
It will be apparent to those skilled in the art that various modifications and variations can be made to the present application without departing from the spirit or scope of the application. Thus, it is intended that the present application also include such modifications and alterations insofar as they come within the scope of the appended claims or the equivalents thereof.
Claims (10)
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