Busbar trepanning method, electronic equipment and storage medium
By obtaining the busbar parameters input by the user and the pre-configured hole template library, determining the adapted hole parameters and generating visual effects, the existing busbar processing methods are solved, and more efficient and intuitive hole processing is achieved.
Patent Information
- Application Number
- CN202510155329.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-12
- Publication Date
- 2025-05-13
AI Technical Summary
The existing busbar processing methods are not flexible enough and complex in operation, making it difficult to deal with design changes, and cannot visually display the opening effect.
A busbar opening method is provided, by obtaining the busbar parameters input by the user and a pre-configured hole template library, the adapted hole parameters are determined, and a visual effect of performing hole opening operations on the busbar are generated.
Improves the quality and intuitiveness of busbar opening processing, improves the efficiency and flexibility of processing, allowing users to intuitively view the opening effect before the actual opening operation.
Smart Images

Figure CN119989449A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of electrical technology, and in particular to a busbar opening method, an electronic device and a storage medium. Background Art
[0002] In the field of electrical engineering, busbars are used in distribution cabinets, substations and various power equipment as the core component of electrical connections. The design and manufacture of busbars directly affect the performance, safety and economy of electrical systems. The hole opening process of busbars is an important part of achieving electrical connection and heat dissipation.
[0003] Traditional busbar processing methods usually rely on large CNC machine tools and special equipment. These devices control the tools through complex programs to perform hole processing. The operation process is cumbersome and requires professional technicians to program and operate, which has high production costs. In addition, since these devices can only execute preset processing programs, it is difficult to cope with design changes, has poor flexibility, and cannot intuitively display the hole effect.
[0004] Therefore, the existing busbar processing method lacks flexibility and is complicated to operate. Summary of the invention
[0005] The purpose of the present application is to provide a busbar opening method, electronic device and storage medium to address the deficiencies in the above-mentioned prior art, so as to solve the practical problems of the busbar processing methods in the prior art being insufficiently flexible and complicated to operate.
[0006] To achieve the above purpose, the technical solution adopted in the embodiment of the present application is as follows:
[0007] In a first aspect, an embodiment of the present application provides a busbar opening method, the method comprising:
[0008] Obtain busbar parameters input by the user, wherein the busbar parameters include: busbar width and busbar shape;
[0009] Determine a first target hole opening parameter according to the busbar parameter and a pre-configured hole template library, wherein the hole template library includes: a correspondence between a busbar width and a hole opening parameter, and the hole opening parameter includes a combined hole parameter and / or a single hole parameter;
[0010] A visualization effect of performing a hole drilling operation on the busbar is generated according to the first target hole drilling parameter.
[0011] As an optional implementation, before obtaining the busbar parameters input by the user, the method further includes:
[0012] Determine the hole parameters corresponding to each preset busbar width; the combination hole is composed of a plurality of single holes, and the types of the combination hole include one or more of the following: two right oblique holes, two left oblique holes, two vertical holes, two horizontal holes, and four holes;
[0013] The hole template library is configured according to each of the preset busbar widths and corresponding hole opening parameters.
[0014] As an optional implementation manner, each of the preset busbar widths in the hole template library corresponds to a specified hole opening parameter and at least one candidate hole opening parameter.
[0015] As an optional implementation, determining the first target hole opening parameter according to the busbar parameter and a preconfigured hole template library includes:
[0016] Determine whether the busbar shape in the busbar parameters is a preset shape;
[0017] If so, the hole module library is called, and the first target hole opening parameter is determined according to the busbar width in the busbar parameters.
[0018] As an optional implementation manner, determining the first target opening parameter according to the busbar width in the busbar parameter includes:
[0019] Determining whether the busbar width is a preset busbar width;
[0020] If yes, determining the first target hole opening parameter according to the designated hole opening parameter corresponding to the busbar width and each candidate hole opening parameter;
[0021] Otherwise, the hole opening parameters input by the user are obtained, and the hole opening parameters input by the user are used as the first target hole opening parameters.
[0022] As an optional implementation, determining the first target hole opening parameter according to the specified hole opening parameter corresponding to the busbar width and each candidate hole opening parameter includes:
[0023] Performing a first rendering operation on the designated opening parameters corresponding to the busbar width in the first area;
[0024] Performing a second rendering operation on each candidate opening parameter corresponding to the busbar width in the second area;
[0025] In response to a first selection operation of the user on the first area, taking the designated hole opening parameter corresponding to the busbar width as the first target hole opening parameter;
[0026] Alternatively, in response to a second selection operation of the user on the second area, the candidate hole opening parameter corresponding to the busbar row width is used as the first target hole opening parameter.
[0027] As an optional implementation, the busbar includes a head end segment, a middle segment and a terminal segment;
[0028] The generating, according to the first target hole-drilling parameter, a visualization effect of performing a hole-drilling operation on the busbar includes:
[0029] According to the first target hole opening parameter, a visualization effect of performing a first hole opening operation on the head end segment and the tail end segment of the busbar is generated, wherein the first target hole opening parameter is used to characterize the target hole opening parameters on the head end segment and the tail end segment.
[0030] As an optional implementation, after generating the visualization effect of performing the first hole opening operation on the head end segment and the end segment of the busbar according to the first target hole opening parameter, the method further includes:
[0031] In response to a click operation of a user on the middle segment, obtaining a hole shape input by the user;
[0032] Determine the second target hole opening parameter according to the hole shape and the busbar width; wherein the second target hole opening parameter is used to characterize the target hole opening parameter on the middle segment;
[0033] According to the second target hole opening parameter, a visualization effect of performing a second hole opening operation on the middle segment of the busbar is generated.
[0034] In a second aspect, an embodiment of the present application provides a busbar opening device, the device comprising:
[0035] An acquisition module is used to acquire busbar parameters input by a user, wherein the busbar parameters include: busbar width and busbar shape;
[0036] A determination module, configured to determine a first target hole opening parameter according to the busbar parameter and a pre-configured hole template library, wherein the hole template library includes: a correspondence between a busbar width and a hole opening parameter, and the hole opening parameter includes a combined hole parameter and / or a single hole parameter;
[0037] A generation module is used to generate a visualization effect of performing a hole drilling operation on the busbar according to the first target hole drilling parameter.
[0038] As an optional implementation manner, the determining module is specifically used for:
[0039] Determine the hole parameters corresponding to each preset busbar width; the combination hole is composed of a plurality of single holes, and the types of the combination hole include one or more of the following: two right oblique holes, two left oblique holes, two vertical holes, two horizontal holes, and four holes;
[0040] The hole template library is configured according to each of the preset busbar widths and corresponding hole opening parameters.
[0041] As an optional implementation manner, each of the preset busbar widths in the hole template library corresponds to a specified hole opening parameter and at least one candidate hole opening parameter.
[0042] As an optional implementation manner, the determining module is specifically used for:
[0043] Determine whether the busbar shape in the busbar parameters is a preset shape;
[0044] If so, the hole module library is called, and the first target hole opening parameter is determined according to the busbar width in the busbar parameters.
[0045] As an optional implementation manner, the determining module is specifically used for:
[0046] Determining whether the busbar width is a preset busbar width;
[0047] If yes, determining the first target hole opening parameter according to the designated hole opening parameter corresponding to the busbar width and each candidate hole opening parameter;
[0048] Otherwise, the hole opening parameters input by the user are obtained, and the hole opening parameters input by the user are used as the first target hole opening parameters.
[0049] As an optional implementation manner, the determining module is specifically used for:
[0050] Performing a first rendering operation on the designated opening parameters corresponding to the busbar width in the first area;
[0051] Performing a second rendering operation on each candidate opening parameter corresponding to the busbar width in the second area;
[0052] In response to a first selection operation of the user on the first area, taking the designated hole opening parameter corresponding to the busbar width as the first target hole opening parameter;
[0053] Alternatively, in response to a second selection operation of the user on the second area, the candidate hole opening parameter corresponding to the busbar row width is used as the first target hole opening parameter.
[0054] As an optional implementation, the generating module is specifically used for:
[0055] According to the first target hole opening parameter, a visualization effect of performing a first hole opening operation on the head end segment and the tail end segment of the busbar is generated, wherein the first target hole opening parameter is used to characterize the target hole opening parameters on the head end segment and the tail end segment.
[0056] As an optional implementation, the generating module is specifically used for:
[0057] In response to a click operation of a user on the middle segment, obtaining a hole shape input by the user;
[0058] Determine the second target hole opening parameter according to the hole shape and the busbar width; wherein the second target hole opening parameter is used to characterize the target hole opening parameter on the middle segment;
[0059] According to the second target hole opening parameter, a visualization effect of performing a second hole opening operation on the middle segment of the busbar is generated.
[0060] In a third aspect, an embodiment of the present application provides an electronic device, comprising: a processor, a memory and a bus, wherein the memory stores machine-readable instructions executable by the processor, and when the electronic device is running, the processor communicates with the memory through the bus, and the processor executes the machine-readable instructions to perform the steps of the busbar opening method described in the first aspect above.
[0061] In a fourth aspect, an embodiment of the present application provides a computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, the steps of the busbar opening method described in the first aspect are executed.
[0062] The beneficial effects of this application are:
[0063] The present application provides a busbar opening method, an electronic device and a storage medium, which obtain the busbar parameters input by the user according to the actual electrical needs, including the busbar width and the busbar shape. Based on the correspondence between the busbar width and the opening parameters stored in the pre-configured hole template library, and the busbar parameters input by the user, the first target opening parameters matching the busbar width are determined, and the first target opening parameters can be a combined hole parameter or a single hole parameter. According to the determined first target opening parameters, the first target opening parameters are converted into an intuitive graphical display, and a visualization effect of the opening operation on the busbar is generated, so that before the actual opening operation, the rendering effect of the opening on the busbar can be intuitively seen, thereby improving the quality and intuitiveness of the busbar opening processing. Through the pre-configured hole template library, the opening parameters corresponding to the busbar width can be quickly matched, thereby improving the efficiency and flexibility of the busbar opening processing. BRIEF DESCRIPTION OF THE DRAWINGS
[0064] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings required for use in the embodiments will be briefly introduced below. It should be understood that the following drawings only show certain embodiments of the present application and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other related drawings can be obtained based on these drawings without paying creative work.
[0065] Figure 1 A schematic diagram of a process for a busbar hole opening method provided in an embodiment of the present application;
[0066] Figure 2 A schematic diagram of an interface for generating a visualization effect of performing a hole opening operation on a busbar provided in an embodiment of the present application;
[0067] Figure 3 A schematic diagram of a process for configuring a hole template library for a busbar hole opening method provided in an embodiment of the present application;
[0068] Figure 4 A schematic diagram of the structure of various types of combined holes provided in the embodiments of the present application;
[0069] Figure 5 A schematic diagram of a process for determining a first target hole opening parameter of a busbar hole opening method provided in an embodiment of the present application;
[0070] Figure 6 A schematic diagram of the structure of each preset shape of the busbar provided in the embodiment of the present application;
[0071] Figure 7 Another schematic diagram of a process for determining first target hole opening parameters of the busbar hole opening method provided in an embodiment of the present application;
[0072] Figure 8 Another schematic diagram of a process for determining a first target hole opening parameter of the busbar hole opening method provided in an embodiment of the present application;
[0073] Fig. 9 A schematic diagram of the interface between the first area and the second area provided in an embodiment of the present application;
[0074] Fig.10 A schematic flow chart of a busbar opening method provided in an embodiment of the present application for generating a visualization effect of a second opening operation on a middle segment of the busbar;
[0075] Fig.11 Another schematic diagram of the process of the busbar opening method provided in an embodiment of the present application;
[0076] Fig.12 A module structure diagram of a busbar opening device provided in an embodiment of the present application;
[0077] Fig.13A schematic diagram of the structure of an electronic device provided in an embodiment of the present application. DETAILED DESCRIPTION
[0078] To make the purpose, technical scheme and advantages of the embodiments of the present application clearer, the technical scheme in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application. It should be understood that the drawings in the present application only serve the purpose of explanation and description and are not used to limit the scope of protection of the present application. In addition, it should be understood that the schematic drawings are not drawn in real proportion. The flowchart used in this application shows the operations implemented according to some embodiments of the present application. It should be understood that the operations of the flowchart can be implemented out of sequence, and the steps without logical context can be reversed in order or implemented simultaneously. In addition, those skilled in the art can add one or more other operations to the flowchart under the guidance of the content of the present application, or remove one or more operations from the flowchart.
[0079] In addition, the described embodiments are only a part of the embodiments of the present application, rather than all of the embodiments. The components of the embodiments of the present application described and shown in the drawings here can be arranged and designed in various configurations. Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the application claimed for protection, but merely represents the selected embodiments of the present application. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without making creative work belong to the scope of protection of the present application.
[0080] It should be noted that the term "comprising" will be used in the embodiments of the present application to indicate the existence of the features declared thereafter, but does not exclude the addition of other features.
[0081] In the field of electrical engineering, the busbar drilling process can achieve electrical connection and heat dissipation. Traditional busbar processing methods often rely on large CNC machine tools and special equipment. These devices use complex programs to control the tools to perform drilling processing. The operation process is cumbersome and requires professional technicians to program and operate. The production cost is high. In addition, these devices can only execute preset processing programs, making it difficult to cope with design changes, with poor flexibility and unable to intuitively display the drilling effect. Therefore, the existing busbar processing methods have the limitations of insufficient flexibility and intuitiveness and complex operation.
[0082] Based on the above-mentioned problems, an embodiment of the present application proposes a busbar processing method, which pre-configures a hole template library including the correspondence between the busbar width and the hole opening parameters, determines the adapted hole opening parameters based on the busbar parameters input by the user and the pre-configured hole template library, and renders a visualization effect of performing hole opening operations at both ends and / or in the middle on the busbar based on the adapted hole opening parameters, thereby enhancing the flexibility, intuitiveness and operability of the busbar hole opening process.
[0083] Figure 1 This is a schematic diagram of the process flow of the busbar processing method provided in the embodiment of the present application. The execution subject of the method can be any electronic device with computing and processing capabilities. Figure 1 As shown, the method includes:
[0084] S101. Obtain busbar parameters input by a user, where the busbar parameters include: busbar width and busbar shape.
[0085] Optionally, the busbar is a conductive bar that transmits current in electrical equipment. The user enters busbar parameters, including busbar width and busbar shape, on the interactive interface provided by the electronic device according to actual electrical needs. Specifically, the busbar width is the width dimension of the busbar cross section, which will affect the busbar's current carrying capacity, mechanical strength and other performance. The busbar shape is the shape style of the busbar, for example, it can be a straight shape, L-shaped shape, Z-shaped shape, arc shape, and special-shaped shape. Among them, the special-shaped shape is a non-standard busbar shape, that is, a special-shaped busbar shape with multiple bends and different angle combinations.
[0086] The electronic device responds to the user's input operation on the busbar width and busbar shape to obtain busbar parameters. The electronic device may be a mobile device such as a smart phone or a tablet computer, and this application does not make any specific restrictions here.
[0087] S102. Determine first target hole opening parameters according to busbar parameters and a pre-configured hole template library, wherein the hole template library includes: a correspondence between busbar width and hole opening parameters, and the hole opening parameters include one or more of combined hole parameters and / or single hole parameters.
[0088] Optionally, a hole template library is pre-configured, in which the correspondence between the busbar width and the hole opening parameters is stored, wherein the hole opening parameters include one or more of the combined hole parameters and / or the single hole parameters, and the combined hole is obtained by combining multiple single holes in different combinations.
[0089] Based on the correspondence between the busbar width and the opening parameters stored in the hole template library, and the busbar width and busbar shape in the busbar parameters input by the user, the opening parameters matching the busbar width are determined as the first target opening parameters, so as to perform opening visualization rendering and opening operations on the busbar based on the first target opening parameters. The first target opening parameters may be combined hole parameters or single hole parameters.
[0090] S103. Generate a visualization effect of performing a hole drilling operation on the busbar according to the first target hole drilling parameter.
[0091] Optionally, the electronic device uses computer graphics technology to convert the first target hole opening parameters into an intuitive graphic display based on the determined first target hole opening parameters, and accurately renders the corresponding hole opening effects on a virtual two-dimensional or three-dimensional busbar model to generate a visualization effect of the hole opening operation on the busbar. Figure 2 A schematic diagram of an interface for generating a visualization effect of performing a hole opening operation on a busbar provided in an embodiment of the present application, such as Figure 2 As shown in FIG. 1 , if the first target hole opening parameter is a single hole parameter, a visualization effect of performing a single hole opening operation on the busbar is generated. Figure 2 This is a visualization of a single hole opened at the beginning and end of the busbar for rendering.
[0092] Based on this, before the actual drilling operation, you can intuitively see the rendering effect of the drilling on the busbar, and discover possible problems in advance, such as whether the location of the drilling conflicts with other components and whether the drilling layout is reasonable, so as to timely adjust and optimize the first target drilling parameters and reduce the error rate of the busbar drilling processing.
[0093] It is worth noting that the electronic device can generate a hole-opening instruction based on the adjusted and optimized first target hole-opening parameters. The hole-opening instruction can contain detailed hole-opening operation information, such as the specific position coordinates of each hole, the processing order of the holes, the processing depth, and the selection of the tool, etc., and transmit the generated hole-opening instruction to the control system of the hole-opening device through serial communication or network communication. After receiving the hole-opening instruction, the control system of the hole-opening device parses and verifies it to ensure the correctness and completeness of the hole-opening instruction, and accurately controls the movement and operation of various components of the hole-opening device according to the parsed hole-opening instruction. For example, control the tool to move to the specified hole-opening position, adjust the rotation speed and speed of the tool, and perform hole-opening processing of the busbar according to the depth and shape specified by the hole-opening instruction to ensure the accuracy and quality of the hole.
[0094] In this embodiment, the busbar parameters input by the user according to the actual electrical requirements are obtained, including the busbar width and the busbar shape. Based on the correspondence between the busbar width and the opening parameters stored in the pre-configured hole template library, and the busbar parameters input by the user, the first target opening parameters matching the busbar width are determined. The first target opening parameters can be a combined hole parameter or a single hole parameter. According to the determined first target opening parameters, the first target opening parameters are converted into an intuitive graphical display to generate a visualization effect of the opening operation on the busbar, so that before the actual opening operation, the rendering effect of the opening on the busbar can be intuitively seen, thereby improving the quality and intuitiveness of the busbar opening processing. Through the pre-configured hole template library, the opening parameters corresponding to the busbar width can be quickly matched, thereby improving the efficiency and flexibility of the busbar opening processing.
[0095] Figure 3A schematic diagram of a process for configuring a hole template library for a busbar hole opening method provided in an embodiment of the present application, such as Figure 3 As shown, before obtaining the busbar parameters input by the user in the above step S101, the following is also included:
[0096] S301, determining the hole opening parameters corresponding to each preset busbar width; the combination hole is composed of multiple single holes, and the types of the combination hole include one or more of the following: two right oblique holes, two left oblique holes, two vertical holes, two horizontal holes and four holes.
[0097] Optionally, the single holes are pre-combined in different combinations to form different types of combination holes, that is, the combination hole is planned in combination according to specific application scenarios and design requirements, and is formed by combining multiple single holes according to certain rules and methods. The types of combination holes include one or more of the following: two right oblique holes, two left oblique holes, two vertical holes, two horizontal holes, and four holes. Figure 4 The schematic diagram of the structure of various types of combined holes provided in the embodiments of the present application is as follows: Figure 4 As shown, the positions of multiple single holes in each type of combination hole have been fixed, so that the combination hole can be directly called when drilling, without having to call out multiple single holes separately and then adjust the positions.
[0098] The number of openings, size of openings, and position of openings of busbars with different row widths are all different, mainly depending on the devices to be connected to the busbar and the stability of mechanical fixation. According to the actual electrical equipment requirements, industry standards, and commonly used specifications in actual production, multiple busbar row widths are preset, and for each preset busbar row width, the corresponding opening parameters are determined. For example, the preset busbar row width can be 40mm, 60mm, 80mm, 100mm, etc., covering the common width range of busbars in different application scenarios. Among them, the opening parameters include one or more of the combined hole parameters and / or single hole parameters. In order to meet the requirements of electrical connection, mechanical fixation, etc., a wider busbar may require a larger size or a larger number of holes to ensure good electrical connection and stable mechanical fixation.
[0099] S302: According to each preset busbar width and corresponding hole opening parameters, a hole template library is configured.
[0100] Optionally, each preset busbar width and its corresponding hole opening parameter are entered into a specific database or data set to obtain a hole template library. During the entry process, a clear correspondence is established for each preset busbar width and its corresponding hole opening parameter, so that the hole opening parameter corresponding to the busbar width can be quickly queried and called later. In other words, it is only necessary to quickly find the corresponding hole opening parameter from the hole template library according to the actual busbar width input by the user, which greatly improves the efficiency of determining the hole opening parameter.
[0101] Table 1 shows the correspondence between each preset busbar width and each hole opening parameter in the hole template library. As shown in Table 1, the hole opening parameters may include: hole shape, hole shape, hole specification, upper and lower boundaries, left and right boundaries, horizontal and vertical hole spacing, and default preset values. For example, referring to Table 1, when the preset busbar width is 125mm, it may correspond to 1 hole opening parameter, and the hole opening parameter is a combined hole parameter; when the preset busbar width is 80mm, it may correspond to 2 hole opening parameters, and the hole opening parameters are all combined hole parameters; when the preset busbar width is 40mm, it may correspond to 5 hole opening parameters, and the hole opening parameters include 4 combined hole parameters and 1 single hole parameter.
[0102] Table 1: Correspondence between preset busbar widths and opening parameters in the hole template library
[0103]
[0104] In this embodiment, single holes are combined together in different combinations to form different types of combination holes, including two right oblique holes, two left oblique holes, two vertical holes, two horizontal holes, and four-hole combination holes. A plurality of busbar widths are preset, and for each preset busbar width, the corresponding hole opening parameters are determined. Each preset busbar width and its corresponding hole opening parameter are entered into a specific database or data set, and a clear correspondence is established for each preset busbar width and its corresponding hole opening parameter, and a hole template library is configured. By combining single holes into various types of combination holes, the combination hole can be directly called when opening a hole. Based on the hole template library configured with each preset busbar width and the corresponding hole opening parameter, the hole opening parameters corresponding to the busbar width can be quickly queried and called, thereby improving the efficiency of determining the hole opening parameters and thus improving the hole opening efficiency.
[0105] As an optional implementation, each preset busbar width in the hole template library corresponds to a specified hole opening parameter and at least one candidate hole opening parameter.
[0106] Optionally, continue to refer to Table 1, and in the process of configuring the hole template library, set the default preset value in the hole opening parameter according to the actual electrical requirements. For example, if the default preset value in a hole opening parameter of the hole template library is 1, it means that the hole opening parameter is the designated hole opening parameter of the corresponding busbar width, and other hole opening parameters corresponding to the busbar width are candidate hole opening parameters. In other words, each preset busbar width in the hole template library can correspond to a designated hole opening parameter and at least one candidate hole opening parameter, so as to improve the flexibility and diversity of hole opening parameter selection during busbar processing.
[0107] Exemplarily, referring to Table 1, when the preset busbar width in the hole template library is 80 mm, it corresponds to one designated hole parameter and one candidate hole parameter; when the preset busbar width is 40 mm, it corresponds to one designated hole parameter and four candidate hole parameters.
[0108] In this embodiment, each preset busbar width in the hole template library corresponds to a specified hole opening parameter and at least one candidate hole opening parameter, and the specified hole opening parameter and each candidate hole opening parameter corresponding to each preset busbar width are distinguished according to the default preset value of the hole opening parameter. This improves the flexibility and diversity of hole opening parameter selection during busbar processing and enriches the selection range of hole opening parameters.
[0109] It is worth noting that each preset busbar width in the hole template library can also correspond to only one specified hole opening parameter, without corresponding to the candidate hole opening parameter. For example, referring to Table 1, when the preset busbar width in the hole template library is 125mm / 120mm / 100mm, it only corresponds to one specified hole opening parameter, and there is no corresponding candidate hole opening parameter.
[0110] The following is a detailed description of the process of determining the first target hole opening parameters according to the busbar parameters and the pre-configured hole template library.
[0111] Figure 5 A schematic diagram of a process for determining a first target hole opening parameter of a busbar hole opening method provided in an embodiment of the present application, such as Figure 5 As shown, in the above step S102, the first target hole opening parameter is determined according to the busbar parameter and the pre-configured hole template library, including:
[0112] S501. Determine whether the busbar shape in the busbar parameters is a preset shape.
[0113] Optionally, based on the busbar shape in the busbar parameters input by the user, the geometric shape of the busbar is identified by graphic recognition technology, and it is determined whether the busbar shape is a preset shape. The preset shape may be a lapped busbar shape, which means that the busbar has an overlapping area at the connection, which is used to enhance the electrical connection or mechanical strength. Exemplarily, the lapped busbar shape may be a two-end lapped busbar shape. In actual applications, the busbar shape in the power distribution cabinet is usually a two-end lapped busbar shape.
[0114] Figure 6 The schematic diagram of the structure of each preset shape of the busbar provided in the embodiment of the present application is as follows: Figure 6 As shown, the busbar shapes are all special-shaped busbar shapes with overlapped ends. The red marked parts of each busbar are the overlapping areas of the overlapped ends, so that they can be overlapped with other busbars after holes are opened at these positions.
[0115] S502: If yes, call the hole module library and determine the first target hole opening parameter according to the busbar width in the busbar parameters.
[0116] Optionally, if the busbar shape is determined to be a preset shape, the pre-configured hole template library is called, and based on the busbar width input by the user and the correspondence between the busbar width and the opening parameters stored in the hole template library, the opening parameters corresponding to the busbar width are searched from the hole template library to obtain the first target opening parameters.
[0117] The first target hole opening parameter may be a specified hole opening parameter or a candidate hole opening parameter corresponding to the busbar width.
[0118] In this embodiment, it is determined whether the busbar shape in the busbar parameters input by the user is a preset shape. If so, the pre-configured hole template library is called, and the hole opening parameters corresponding to the busbar width are searched according to the busbar width input by the user and the corresponding relationship between the busbar width and the hole opening parameters in the hole template library, and the first target hole opening parameters are determined. Based on the corresponding relationship between the busbar width and the hole opening parameters in the hole template library, the efficiency of determining the first target hole opening parameters corresponding to the busbar width is improved.
[0119] The following describes in detail the process of determining the first target hole opening parameter according to the busbar width in the busbar parameters.
[0120] Figure 7 Another schematic diagram of a process for determining the first target hole opening parameter of the busbar hole opening method provided in an embodiment of the present application is as follows: Figure 7 As shown, in the above step S502, the first target hole opening parameter is determined according to the busbar width in the busbar parameter, including:
[0121] S701. Determine whether the busbar width is a preset busbar width.
[0122] Optionally, the busbar width input by the user is compared one by one with the values of each preset busbar width in the hole template, which can be achieved through a loop structure in a programming language, and whether the busbar width is the preset busbar width is determined based on the returned result.
[0123] For example, referring to Table 1, if the busbar width input by the user is 40 mm, which is consistent with the preset busbar width of 40 mm in the hole template library, the busbar width input by the user is determined to be the preset busbar width. If the busbar width input by the user is 70 mm, which is inconsistent with the preset busbar widths in the hole template library, the busbar width input by the user is determined not to be the preset busbar width.
[0124] S702: If yes, determine the first target hole parameters according to the designated hole parameters corresponding to the busbar width and each candidate hole parameters.
[0125] Optionally, if it is determined that the busbar width input by the user is a preset busbar width, it means that the hole opening parameter corresponding to the busbar width can be queried from the hole template library to determine the first target hole opening parameter. Specifically, since the hole opening parameter corresponding to the busbar width includes a specified hole opening parameter and at least one candidate hole opening parameter, the specified hole opening parameter corresponding to the busbar width and each candidate hole opening parameter are screened, and an hole opening parameter is selected from the specified hole opening parameter corresponding to the busbar width and each candidate hole opening parameter as the first target hole opening parameter.
[0126] Continuing to refer to Table 1, if the busbar width input by the user is 80 mm, the first target hole parameter is selected from a specified hole parameter and a candidate hole parameter corresponding to 80 mm. If the busbar width input by the user is 40 mm, the first target hole parameter is selected from a specified hole parameter and four candidate hole parameters corresponding to 40 mm.
[0127] It is worth noting that if the hole opening parameter corresponding to the busbar width includes only one specified hole opening parameter, the specified hole opening parameter is directly used as the first target hole opening parameter. For example, referring to Table 1, if the busbar width input by the user is 125mm / 120mm / 100mm, the specified hole opening parameter corresponding to the busbar width is directly used as the first target hole opening parameter.
[0128] S703 . Otherwise, obtain the hole opening parameters input by the user, and use the hole opening parameters input by the user as the first target hole opening parameters.
[0129] Optionally, if it is determined that the busbar width input by the user is not the preset busbar width, it means that the first target hole opening parameter cannot be determined by calling the correspondence between the preset busbar widths and the hole opening parameters in the hole template library. At this time, the electronic device can pop up a prompt to the user that the input busbar width is not the preset busbar width in the hole template library, and obtain the hole opening parameters input by the user through the interactive interface, including hole shape, hole shape, hole specification, upper and lower boundaries, left and right boundaries, and horizontal and vertical hole spacing, and use the hole opening parameters input by the user as the first target hole opening parameters.
[0130] Among them, the hole opening parameters input by the user can be obtained through appropriate input interface elements, such as text boxes, drop-down menus, radio buttons, etc. For example, for hole specifications, upper and lower boundaries, left and right boundaries, and horizontal and vertical hole spacing, a numeric input box is provided for the user to enter specific values; for hole shapes, a drop-down menu is used to list common shapes for the user to choose.
[0131] In this embodiment, by comparing the busbar width input by the user with the values of each preset busbar width in the hole template, it is determined whether the busbar width is the preset busbar width. If so, it means that the hole opening parameter corresponding to the busbar width can be queried from the hole template library to determine the first target hole opening parameter, and then an hole opening parameter is selected from the specified hole opening parameter corresponding to the busbar width and each candidate hole opening parameter as the first target hole opening parameter. Otherwise, the hole opening parameter input by the user is obtained, and the hole opening parameter input by the user is used as the first target hole opening parameter. The flexibility and efficiency of determining the first target hole opening parameter of the busbar are improved.
[0132] The following describes in detail the process of determining the first target hole parameters according to the designated hole parameters corresponding to the busbar width and each candidate hole parameters.
[0133] Figure 8 Another flow chart of determining the first target hole opening parameter of the busbar hole opening method provided in the embodiment of the present application is as follows: Figure 8 As shown, in the above step S702, the first target hole parameter is determined according to the specified hole parameter corresponding to the busbar width and each candidate hole parameter, including:
[0134] S801 , performing a first rendering operation on designated opening parameters corresponding to the busbar width in a first area.
[0135] Optionally, the first area is a specific area in the interactive interface for displaying the specified hole parameters corresponding to the busbar width, and the electronic device performs a first rendering operation on the specified hole parameters corresponding to the busbar width in the first area of the interactive interface, and displays the specified hole parameters corresponding to the busbar width in the first area in a preview manner. The first area may be located on the busbar.
[0136] Fig. 9 The interface diagram of the first area and the second area provided in the embodiment of the present application is as follows: Fig. 9 As shown, a first rendering operation is performed on the designated opening parameters corresponding to the busbar width in the first area on the busbar, that is, a preview effect of opening four holes is rendered on the busbar.
[0137] S802 , performing a second rendering operation on each candidate opening parameter corresponding to the busbar width in the second area.
[0138] Optionally, the second area is another specific area in the interactive interface for displaying the candidate hole parameters corresponding to the busbar width, and the electronic device performs a second rendering operation on the candidate hole parameters corresponding to the busbar width in the second area of the interactive interface, and displays the candidate hole parameters corresponding to the busbar width in the second area in a preview manner. The second area may be located in a blank area other than the busbar.
[0139] For example, refer to Fig. 9 , the second area can be located directly below the busbar, and the second rendering operation is performed on each candidate hole opening parameter corresponding to the busbar width in the second area, that is, a preview effect of opening two vertical holes of various specifications is rendered on the busbar. If the candidate hole opening parameters corresponding to the busbar width are multiple types of holes, multiple types of holes can also be switched and displayed in the second area, so that the user can compare and select the preview effects rendered by each candidate hole opening parameter.
[0140] For example, when the busbar width in Table 1 is 60 mm, the four holes rendered by the specified hole parameters are displayed in the first area on the busbar, and the four holes of another specification and the two horizontal holes of two specifications rendered by the candidate hole parameters are displayed in the second area. The user can switch the hole display type by moving the mouse below the second area. Fig. 9 In the gray part, when two vertical holes are selected, the preview effect of two vertical holes of various specifications is rendered in the second area.
[0141] S803: In response to a first selection operation of the user on the first area, a specified hole opening parameter corresponding to the busbar width is used as a first target hole opening parameter.
[0142] Optionally, based on the preview effect of the specified opening parameters displayed in the first area and the preview effect of each candidate opening parameter displayed in the second area, the user compares the effects and performs a first selection operation on the specified opening parameters rendered in the first area, such as clicking on the first area, where the click can be a single click or a double click, and the present application does not impose any specific restrictions on this.
[0143] In response to the user's first selection operation on the designated hole opening parameters rendered on the first area, the electronic device uses the designated hole opening parameters corresponding to the busbar width as the first target hole opening parameters, and subsequent busbar hole opening processing will be performed in accordance with the first target hole opening parameters, i.e., the designated hole opening parameters.
[0144] S804 , or, in response to a second selection operation of the user on the second area, taking the candidate hole opening parameter corresponding to the busbar width as the first target hole opening parameter.
[0145] Optionally, based on the preview effect of the specified hole parameters displayed in the first area and the preview effect of each candidate hole parameters displayed in the second area, the user compares the effects and performs a second selection operation on the target candidate hole parameters rendered in the second area, such as clicking on the hole rendered by the target candidate hole parameters in the second area, where the click can be a single click or a double click, and the present application does not impose any specific restrictions on this.
[0146] In response to the user's second selection operation on the target candidate opening parameters rendered on the second area, the electronic device uses the target candidate opening parameters corresponding to the busbar width as the first target opening parameters, and subsequent busbar opening processing will be carried out in accordance with the first target opening parameters, i.e., the target candidate opening parameters.
[0147] In this embodiment, a first rendering operation is performed on the designated hole opening parameters corresponding to the busbar width in the first area, and the designated hole opening parameters corresponding to the busbar width are displayed in the first area in a preview manner. A second rendering operation is performed on each candidate hole opening parameter corresponding to the busbar width in the second area, and each candidate hole opening parameter corresponding to the busbar width is displayed in the second area in a preview manner. In response to the user's first selection operation on the first area, the designated hole opening parameter corresponding to the busbar width is used as the first target hole opening parameter; or, in response to the user's second selection operation on the second area, the target candidate hole opening parameter corresponding to the busbar width is used as the first target hole opening parameter, so that subsequent hole opening processing of the busbar is performed according to the first target hole opening parameter.
[0148] As an optional implementation, the busbar includes a head end segment, a middle segment and a terminal segment.
[0149] Optionally, the busbar includes a head end segment, a middle segment and a terminal segment, wherein the busbar is mainly connected to other components at both ends through the head end segment and the terminal segment. Figure 2 The two segments in the vertical direction are the head segment and the end segment of the busbar, and the one segment in the horizontal direction is the middle segment of the busbar.
[0150] The following describes in detail the process of generating a visualization effect of performing a hole drilling operation on a busbar according to the first target hole drilling parameter.
[0151] As an optional implementation, in the above step S103, generating a visualization effect of performing a hole drilling operation on the busbar according to the first target hole drilling parameter includes:
[0152] According to the first target hole opening parameters, a visualization effect of performing the first hole opening operation on the head end segment and the tail end segment of the busbar is generated, wherein the first target hole opening parameters are used to characterize the target hole opening parameters on the head end segment and the tail end segment.
[0153] Optionally, the first target hole opening parameters represent the target hole opening parameters that need to be followed when performing hole opening operations on the head end segment and the end segment of the busbar, covering hole modeling, hole shape, hole specifications, upper and lower boundaries, left and right boundaries, and horizontal and vertical hole spacing. Based on the first target hole opening parameters, the electronic device adds hole opening visualization elements to the head end segment and the end segment of the busbar, and renders the busbar with the added hole opening visualization elements to make it have a more realistic visualization effect, and displays the generated visualization effect of the first hole opening operation on the head end segment and the end segment of the busbar on the interactive interface. It is convenient for users to intuitively see the effect of performing the first hole opening operation on the head end segment and the end segment of the busbar at the same time, and check whether the hole opening design at both ends of the busbar is reasonable before the actual hole opening process.
[0154] Exemplarily, for a three-dimensional busbar model, the recessed effect of the opening can be simulated on the three-dimensional busbar model by Boolean operations and other methods; for a two-dimensional busbar model, specific graphic symbols (such as circles and ellipses) can be used to represent the opening effect.
[0155] In this embodiment, the first target hole-opening parameter represents the target hole-opening parameter to be followed when performing hole-opening operations on the head end segment and the end segment of the busbar. Based on the first target hole-opening parameter, a hole-opening visualization element is added to the head end segment and the end segment of the busbar, and the busbar with the hole-opening visualization element added is rendered to generate a visualization effect of performing the first hole-opening operation on the head end segment and the end segment of the busbar. This allows the user to check whether the hole-opening design at both ends of the busbar is reasonable before the actual hole-opening process, thereby improving the accuracy and efficiency of the hole-opening process at both ends of the busbar.
[0156] Fig.10 The busbar opening method provided in the embodiment of the present application is a flow chart showing the visualization effect of performing a second opening operation on the middle segment of the busbar, as shown in FIG. Fig.10 As shown, after generating the visualization effect of performing the first hole opening operation on the head end segment and the end segment of the busbar according to the first target hole opening parameter in the above steps, the following further includes:
[0157] S1001. Respond to a user's click operation on a middle segment and obtain a hole shape input by the user.
[0158] Optionally, when the user needs to open a hole on the middle segment of the busbar to overlap other components according to actual electrical needs, the user clicks on the middle segment of the busbar. In response to the user's click operation on the middle segment of the busbar, the electronic device prompts the user to input a hole shape through an interactive interface, and the user inputs the hole shape that is expected to be opened in the middle segment of the busbar according to actual needs. The hole shape input by the user can be various types of combined holes or single holes stored in the hole template library, or holes of other shapes.
[0159] S1002. Determine a second target hole opening parameter according to the hole shape and the busbar width; wherein the second target hole opening parameter is used to characterize the target hole opening parameter on the middle segment.
[0160] Optionally, according to the hole shape input by the user and the row width of the busbar, the hole template library is called to determine whether there is a matching hole shape in each hole opening parameter corresponding to the row width of the busbar in the hole template library, and the second target hole opening parameter is determined according to the matching result. If not, the hole opening parameter input by the user is obtained through the interactive interface, and the hole opening parameter input by the user is used as the second target hole opening parameter. The second target hole opening parameter represents the target hole opening parameter that needs to be followed when performing the hole opening operation in the middle segment of the busbar.
[0161] If so, the second target hole opening parameter is determined according to the number of matched hole shapes. Specifically, if there is only one matching hole shape among the hole opening parameters corresponding to the busbar width in the hole template library, the hole opening parameter to which the hole shape belongs is directly used as the second target hole opening parameter. If there are multiple matching hole shapes among the hole opening parameters corresponding to the busbar width in the hole template library, the preview effect of the hole opening parameter to which each matched hole shape belongs is displayed in a preview manner, and the second target hole opening parameter is determined in response to the user's selection operation for each preview effect, and the hole opening parameter to which the hole shape selected by the user belongs is used as the second target hole opening parameter.
[0162] S1003. Generate a visualization effect of performing a second hole opening operation on the middle segment of the busbar according to the second target hole opening parameters.
[0163] Optionally, the electronic device adds a visualization element of the opening on the middle segment of the busbar based on the second target opening parameter, and renders the busbar with the added visualization element of the opening to give it a more realistic visualization effect, and displays the generated visualization effect of the second opening operation on the middle segment of the busbar on the interactive interface. This allows the user to intuitively see the effect of the second opening operation on the middle segment of the busbar, and to check whether the design of the middle opening of the busbar is reasonable before the actual opening process.
[0164] In this embodiment, in response to the user's click operation on the middle segment of the busbar, the hole shape that the user expects to open in the middle segment of the busbar according to actual needs is obtained. The hole template library is called according to the hole shape and busbar width input by the user, and it is determined whether there is a matching hole shape in each hole opening parameter corresponding to the busbar width in the hole template library, and the second target hole opening parameter is determined according to the matching result. The second target hole opening parameter represents the target hole opening parameter that needs to be followed when performing a hole opening operation in the middle segment of the busbar. Based on the second target hole opening parameter, a visualization element of the hole opening is added to the middle segment of the busbar, and the busbar with the added visualization element of the hole opening is rendered to generate a visualization effect of performing the second hole opening operation on the middle segment of the busbar. So that the user can check whether the design of the middle hole opening of the busbar is reasonable before the actual hole opening processing, and improve the accuracy and efficiency of the middle hole opening processing of the busbar.
[0165] Fig.11 Another schematic diagram of the process of the busbar opening method provided in the embodiment of the present application, referring to Fig.11 , the complete process of the busbar opening method of the present application is described. Fig.11 As shown, the busbar parameters input by the user are obtained, including the busbar shape and busbar width, and it is determined whether the busbar shape input by the user is a preset shape (overlap row shape). If so, it is further determined whether the busbar width input by the user is the preset busbar width in the pre-configured hole template library. If so, the hole template library is called to determine the first target hole opening parameter according to the busbar width in the busbar parameters. If not, the two-end hole opening parameters input by the user are obtained as the first target hole opening parameters, and the visualization effect of opening holes on the head end segment and the end segment of the busbar is generated based on the first target hole opening parameters. After that, it is continued to detect whether the user needs to open holes in the middle segment. If not, the hole opening design of the busbar is directly terminated. If so, the hole shape input by the user is obtained, and the hole template library is called to match the hole template library based on the hole shape and the busbar width to determine the second target hole opening parameter. The visualization effect of opening holes on the middle segment of the busbar is generated based on the second target hole opening parameter. The visual effects of opening holes in the head section, middle section and end section of the busbar can be displayed intuitively, improving the efficiency and flexibility of hole opening design.
[0166] Based on the same inventive concept, a busbar opening device corresponding to the busbar opening method is also provided in the embodiment of the present application. Since the principle of solving the problem by the device in the embodiment of the present application is similar to the above-mentioned busbar opening method in the embodiment of the present application, the implementation of the device can refer to the implementation of the method, and the repeated parts will not be repeated.
[0167] Fig.12 The module structure diagram of the busbar opening device provided in the embodiment of the present application is as follows: Fig.12 As shown, the device comprises:
[0168] The acquisition module 1201 is used to acquire busbar parameters input by the user, and the busbar parameters include: busbar width and busbar shape.
[0169] The determination module 1202 is used to determine the first target hole opening parameters according to the busbar parameters and the pre-configured hole template library, wherein the hole template library includes: the correspondence between the busbar width and the hole opening parameters, and the hole opening parameters include the combined hole parameters and / or the single hole parameters;
[0170] The generating module 1203 is used to generate a visualization effect of performing a hole drilling operation on the busbar according to the first target hole drilling parameter.
[0171] As an optional implementation, the determining module 1202 is specifically configured to:
[0172] Determine the hole opening parameters corresponding to each preset busbar width; the combination hole is composed of multiple single holes, and the types of the combination holes include one or more of the following: two right-slanted holes, two left-slanted holes, two vertical holes, two horizontal holes and four holes.
[0173] According to each preset busbar width and corresponding opening parameters, a hole template library is configured.
[0174] As an optional implementation, each preset busbar width in the hole template library corresponds to a specified hole opening parameter and at least one candidate hole opening parameter.
[0175] As an optional implementation, the determining module 1202 is specifically configured to:
[0176] Determines whether the busbar shape in the busbar parameters is a preset shape.
[0177] If so, the hole module library is called, and the first target hole opening parameter is determined according to the busbar width in the busbar parameters.
[0178] As an optional implementation, the determining module 1202 is specifically configured to:
[0179] Determine whether the busbar width is the preset busbar width.
[0180] If so, the first target hole parameters are determined according to the designated hole parameters corresponding to the busbar width and the candidate hole parameters.
[0181] Otherwise, the hole opening parameters input by the user are obtained, and the hole opening parameters input by the user are used as the first target hole opening parameters.
[0182] As an optional implementation, the determining module 1202 is specifically configured to:
[0183] A first rendering operation is performed on the designated opening parameters corresponding to the busbar width in the first area.
[0184] A second rendering operation is performed on each candidate opening parameter corresponding to the busbar width in the second area.
[0185] In response to a first selection operation of the user on the first area, the designated opening parameter corresponding to the busbar width is used as the first target opening parameter.
[0186] Alternatively, in response to a second selection operation of the user on the second area, the candidate opening parameter corresponding to the busbar width is used as the first target opening parameter.
[0187] As an optional implementation manner, the generating module 1203 is specifically used for:
[0188] According to the first target hole opening parameters, a visualization effect of performing the first hole opening operation on the head end segment and the tail end segment of the busbar is generated, wherein the first target hole opening parameters are used to characterize the target hole opening parameters on the head end segment and the tail end segment.
[0189] As an optional implementation manner, the generating module 1203 is specifically used for:
[0190] In response to a click operation of the user on the middle segment, the hole shape input by the user is obtained.
[0191] According to the hole shape and the busbar width, the second target hole opening parameter is determined; wherein the second target hole opening parameter is used to characterize the target hole opening parameter on the middle segment.
[0192] According to the second target hole opening parameters, a visualization effect of performing a second hole opening operation on the middle segment of the busbar is generated.
[0193] The present application also provides an electronic device, such as Fig.13 1 is a schematic diagram of the structure of an electronic device provided in an embodiment of the present application, including: a processor 131, a memory 132 and a bus 133. The memory 132 stores machine-readable instructions executable by the processor 131 (for example, Fig.12 In the device, the execution instructions corresponding to the acquisition module 1201, the determination module 1202 and the generation module 1203 are generated, etc.), when the electronic device is running, the processor 131 communicates with the memory 132 through the bus 133, and when the machine-readable instructions are executed by the processor 131, the steps of the busbar opening method in the above embodiment are executed.
[0194] An embodiment of the present application further provides a computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, the steps of the busbar opening method in the above embodiment are executed.
[0195] Those skilled in the art can clearly understand that, for the convenience and simplicity of description, the specific working process of the system and device described above can refer to the corresponding process in the method embodiment, and will not be repeated in this application. In the several embodiments provided in this application, it should be understood that the disclosed system, device and method can be implemented in other ways. The device embodiments described above are merely schematic. For example, the division of the modules is only a logical function division. There may be other division methods in actual implementation. For example, multiple modules or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some communication interfaces, indirect coupling or communication connection of devices or modules, which can be electrical, mechanical or other forms.
[0196] In addition, each functional unit in each embodiment of the present application can be integrated into a processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. If the function is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present application is essentially or the part that contributes to the prior art or the part of the technical solution can be embodied in the form of a software product, and the computer software product is stored in a storage medium, including several instructions to enable an electronic device (which can be a personal computer, a server, or a network device, etc.) to perform all or part of the steps of the method described in each embodiment of the present application. The aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (ROM, Read-Only Memory), random access memory (RAM, Random Access Memory), disk or optical disk and other media that can store program code.
[0197] The above are only specific implementation methods of the present application, but the protection scope of the present application is not limited thereto. Any technician familiar with the technical field can easily think of changes or substitutions within the technical scope disclosed in the present application, which should be covered by the protection scope of the present application.
Claims
1. A busbar opening method, characterized in that: include: Obtain busbar parameters input by the user, wherein the busbar parameters include: busbar width and busbar shape; Determine a first target hole opening parameter according to the busbar parameter and a preconfigured hole template library, wherein the hole template library includes: a correspondence between a busbar width and a hole opening parameter, and the hole opening parameter includes one or more of a combined hole parameter and / or a single hole parameter; A visualization effect of performing a hole drilling operation on the busbar is generated according to the first target hole drilling parameter.
2. The method according to claim 1, characterized in that Before obtaining the busbar parameters input by the user, the method further includes: Determine the hole parameters corresponding to each preset busbar width; the combination hole is composed of a plurality of single holes, and the types of the combination hole include one or more of the following: two right oblique holes, two left oblique holes, two vertical holes, two horizontal holes, and four holes; The hole template library is configured according to each of the preset busbar widths and corresponding hole opening parameters.
3. The method according to claim 2, characterized in that Each of the preset busbar widths in the hole template library corresponds to a specified hole opening parameter and at least one candidate hole opening parameter.
4. The method according to claim 1, characterized in that: The determining of the first target hole opening parameter according to the busbar parameter and the pre-configured hole template library includes: Determine whether the busbar shape in the busbar parameters is a preset shape; If so, the hole module library is called, and the first target hole opening parameter is determined according to the busbar width in the busbar parameters.
5. The method according to claim 4, characterized in that The determining the first target opening parameter according to the busbar width in the busbar parameter includes: Determining whether the busbar width is a preset busbar width; If yes, determining the first target hole opening parameter according to the designated hole opening parameter corresponding to the busbar width and each candidate hole opening parameter; Otherwise, the hole opening parameters input by the user are obtained, and the hole opening parameters input by the user are used as the first target hole opening parameters.
6. The method according to claim 5, characterized in that The determining the first target hole opening parameter according to the designated hole opening parameter corresponding to the busbar width and each candidate hole opening parameter includes: Performing a first rendering operation on the designated opening parameters corresponding to the busbar width in the first area; Performing a second rendering operation on each candidate opening parameter corresponding to the busbar width in the second area; In response to a first selection operation of the user on the first area, taking the designated hole opening parameter corresponding to the busbar width as the first target hole opening parameter; Alternatively, in response to a second selection operation of the user on the second area, the candidate hole opening parameter corresponding to the busbar row width is used as the first target hole opening parameter.
7. The method according to claim 1, characterized in that The busbar comprises a head end section, a middle section and a terminal section; The generating, according to the first target hole-drilling parameter, a visualization effect of performing a hole-drilling operation on the busbar includes: According to the first target hole opening parameter, a visualization effect of performing a first hole opening operation on the head end segment and the tail end segment of the busbar is generated, wherein the first target hole opening parameter is used to characterize the target hole opening parameters on the head end segment and the tail end segment.
8. The method according to claim 7, characterized in that After generating the visualization effect of performing the first hole opening operation on the head end segment and the tail end segment of the busbar according to the first target hole opening parameter, the method further includes: In response to a click operation of a user on the middle segment, obtaining a hole shape input by the user; Determine the second target hole opening parameter according to the hole shape and the busbar width; wherein the second target hole opening parameter is used to characterize the target hole opening parameter on the middle segment; According to the second target hole opening parameter, a visualization effect of performing a second hole opening operation on the middle segment of the busbar is generated.
9. An electronic device, characterized in that: include: A processor, a memory and a bus, wherein the memory stores machine-readable instructions executable by the processor, and when the electronic device is running, the processor communicates with the memory via the bus, and the processor executes the machine-readable instructions to perform the steps of the busbar opening method as described in any one of claims 1 to 8.
10. A computer-readable storage medium, characterized in that: The computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the steps of the busbar opening method according to any one of claims 1 to 8 are executed.