Medium-voltage switch cabinet-oriented component installation process optimization method and system
Through the optimization method and system of components installation process for medium voltage switch cabinets, the installation layout and assembly process are optimized, and the virtual collaborative assembly is used for automation equipment, and the process flow is optimized through installation test feedback, which solves the problems of low installation efficiency and unstable quality in the existing technology, achieving more efficient and consistent installation quality.
Patent Information
- Application Number
- CN202510252454.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-05
- Publication Date
- 2025-06-27
AI Technical Summary
The prior art lacks optimization based on the overall process flow in the components installation of medium-voltage switch cabinets, resulting in low installation efficiency and unstable quality.
By providing components installation process optimization methods and systems for medium voltage switch cabinets, including information acquisition modules, installation layout modules, collaborative assembly modules and installation test modules, the installation layout and assembly process of components are optimized, and the virtual collaborative assembly is used for automation equipment, and the process flow is optimized through installation test feedback.
The installation efficiency and quality of medium-voltage switch cabinet components are improved, human errors and construction period delays are reduced, and a more consistent and efficient installation process is achieved.
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Figure CN120218311A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of installation process optimization, and particularly to a method and system for optimizing the installation process of components for medium-voltage switchgear cabinets. Background Art
[0002] Medium-voltage switchgear cabinets are important equipment in the power system, and the installation process of their components directly affects the operation efficiency and safety of the equipment. Traditional installation processes usually rely on manual experience, lack standardization and automation, and are prone to non-standard component installation, project schedule delays, and installation quality problems. In the prior art, although there are technical solutions to complete the installation through manual operations and drawing guidance, there are still large operation errors and time waste when facing complex components and relatively cumbersome installation processes. Especially in the mass production and large-scale installation of medium-voltage switchgear cabinets, process inconsistencies and operator skill differences will lead to fluctuations in equipment quality. The closest prior art mostly focuses on the simple installation and connection of components, lacks optimization from the overall process flow, and fails to fully consider means to improve installation efficiency and reduce human errors. Summary of the Invention
[0003] This application provides a method and system for optimizing the installation process of components for medium-voltage switchgear cabinets, solves the technical problem that the prior art focuses on the simple installation and connection of components, lacks optimization from the overall process flow, and has low installation efficiency, and achieves the technical effect of improving the installation efficiency and quality of components for medium-voltage switchgear cabinets.
[0004] This application provides a method for optimizing the installation process of components for medium-voltage switchgear cabinets. The method is applied to a system for optimizing the installation process of components for medium-voltage switchgear cabinets and includes: selecting multiple target component information according to the medium-voltage switchgear cabinet; formulating a first installation process flow, arranging and installing the medium-voltage switchgear cabinet according to the multiple target component information in accordance with the first installation process flow to obtain an installation distribution diagram; introducing an automated equipment group to perform virtual collaborative assembly according to the installation distribution diagram to generate an assembly result; performing an installation test on the medium-voltage switchgear cabinet based on the assembly result to generate an installation test report, and feeding back the installation test report to the first installation process flow for update and optimization to determine a second installation process flow.
[0005] In a possible implementation manner, when selecting multiple target component information according to the medium-voltage switchgear cabinet, the following processing is performed: obtaining the electrical demand information and cabinet compatibility data of the medium-voltage switchgear cabinet; performing automatic component selection according to the electrical demand information and the cabinet compatibility data to determine the installation demand information; screening multiple component information according to the installation demand information to determine the multiple target component information.
[0006] In a possible implementation, a first installation process flow is formulated, and the multiple target component information is used to install and layout the medium-voltage switchgear according to the first installation process flow to obtain an installation distribution diagram. The following processing is performed: The multiple target component information is arranged according to the installation requirement information to determine an installation sequence; spatial dimension data and spatial structure data of the medium-voltage switchgear are obtained; installation analysis is performed based on the spatial dimension data and the spatial structure data, and the installation sequence is updated according to the analysis result to formulate the first installation process flow; the installation positions of the multiple target component information are adjusted according to the first installation process flow to determine multiple installation points, and the multiple installation points are drawn according to the connection method to obtain the installation distribution diagram.
[0007] In a possible implementation, the installation positions of the multiple target component information are adjusted according to the first installation process flow to determine multiple installation points, and the multiple installation points are drawn according to the connection method to obtain an installation distribution diagram. The following processing is performed: The multiple target component information is traversed to match and identify the fixed points of the medium-voltage switchgear to obtain the installation positions of the multiple target component information; the installation positions of the multiple target component information are updated according to the first installation process flow to determine multiple installation points; the wiring paths of the multiple target component information are obtained according to the first installation process flow, and the connection methods of the multiple target component information are determined based on the wiring paths; the multiple installation points are mapped to the medium-voltage switchgear according to the connection method to obtain the installation distribution diagram.
[0008] In a possible implementation, an automated equipment group is introduced to perform virtual collaborative assembly according to the installation distribution diagram to generate an assembly result. The following processing is performed: A virtual assembly environment is built according to the installation distribution diagram, and the automated equipment group is controlled and programmed according to the virtual assembly environment to generate multiple equipment assembly tasks; the multiple equipment assembly tasks are assigned to the automated equipment group for collaborative determination to generate effective collaborative assembly data; the automated equipment group is started to perform virtual collaborative assembly according to the effective collaborative assembly data to generate the assembly result.
[0009] In a possible implementation, the medium-voltage switchgear is installed and tested based on the assembly result to generate an installation test report. The following processing is performed: An installation evaluation of the medium-voltage switchgear is performed according to the assembly result to obtain multiple assembly scores; quality inspection of the medium-voltage switchgear is performed based on the multiple assembly scores to generate assembly quality data; installation performance testing is performed according to the assembly quality data to obtain low-performance assembly data, and the low-performance assembly data is added to the installation test report.
[0010] In a possible implementation, the installation test report is fed back to the first installation process flow for update and optimization, and a second installation process flow is determined. The following processing is performed: using the low-performance assembly data as an index, traversing the first installation process flow to determine multiple low-performance processes; verifying the multiple low-performance processes, and optimizing the first installation process flow according to the verification results to determine the second installation process flow.
[0011] The present application also provides a component installation process optimization system for medium-voltage switchgear, including: an information acquisition module for selecting multiple target component information according to the medium-voltage switchgear; an installation layout module for formulating a first installation process flow, installing and laying out the medium-voltage switchgear according to the first installation process flow with the multiple target component information to obtain an installation distribution diagram; a collaborative assembly module for introducing an automated equipment group to perform virtual collaborative assembly according to the installation distribution diagram to generate an assembly result; an installation test module for performing an installation test on the medium-voltage switchgear based on the assembly result to generate an installation test report, and feeding back the installation test report to the first installation process flow for update and optimization to determine a second installation process flow.
[0012] One or more technical solutions provided in the present application have at least the following technical effects or advantages:
[0013] The component installation process optimization method and system for medium-voltage switchgear provided in the present application relate to the technical field of installation process optimization, solve the technical problem that the prior art focuses on the simple installation and connection of components and lacks optimization starting from the overall process flow, and has the technical effect of improving the installation efficiency and quality of components of medium-voltage switchgear. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] To more clearly illustrate the technical solutions of the embodiments of the present application, the drawings of the embodiments of the present application will be briefly introduced below. Flowcharts are used in the present application to illustrate the operations performed by the system according to the embodiments of the present application. It should be understood that the operations before or below do not necessarily need to be performed precisely in sequence. On the contrary, according to needs, they can be performed in reverse order or simultaneously. At the same time, other operations can also be added to these processes, or one or several steps of operations can be removed from these processes.
[0015] Figure 1 It is a schematic flow chart of the component installation process optimization method for medium-voltage switchgear provided by the embodiment of the present application;
[0016] Figure 2 It is a schematic structural diagram of the component installation process optimization system for medium-voltage switchgear provided by the embodiment of the present application. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0017] The above description is only an overview of the technical solution of the present application. In order to understand the technical means of the present application more clearly, it can be implemented according to the content of the specification. And in order to make the above and other purposes, features and advantages of the present application more obvious and understandable, the specific embodiments of the present application are specifically exemplified below.
[0018] In order to make the purpose, technical solution and advantages of the present application clearer, the present application will be further described in detail below with reference to the accompanying drawings. The described embodiments should not be regarded as limitations of the present application. All other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present application.
[0019] In the following description, "some embodiments" are involved, which describe a subset of all possible embodiments. However, it can be understood that "some embodiments" can be the same subset or different subsets of all possible embodiments, and can be combined with each other without conflict. The terms "first / second" involved are only used to distinguish similar objects and do not represent a specific order for the objects. The terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusion. For example, a process, method, system, product or server including a series of steps or units does not necessarily have to be limited to those steps or units clearly listed, but may include other steps or modules not clearly listed or inherent to these processes, methods, products or devices. Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the technical field to which the present application belongs. The terms used herein are only for the purpose of describing the embodiments of the present application.
[0020] The embodiment of the present application provides a method for optimizing the component installation process for medium-voltage switchgear. The method is applied to a system for optimizing the component installation process for medium-voltage switchgear, as Figure 1 shown, the method includes:
[0021] Step A100, select multiple target component information according to the medium-voltage switchgear; in a possible implementation, step A100 further includes step A110, obtain the electrical demand information and cabinet compatibility data of the medium-voltage switchgear; execute step A120, perform automatic component selection according to the electrical demand information and the cabinet compatibility data to determine the installation demand information; execute step A130, screen the multiple component information according to the installation demand information to determine the multiple target component information.
[0022] By extracting the electrical requirement information and cabinet compatibility data of important switchgear, the electrical requirement information may include voltage level, rated current, short-circuit current, load type, protection requirements, etc., and the cabinet compatibility data includes the size, installation method, incoming and outgoing line methods, environmental conditions (such as temperature, humidity, altitude), etc. Then, according to the electrical requirement information and cabinet compatibility data, the appropriate medium-voltage switchgear model is automatically selected. Automatic model selection can be carried out by matching the voltage level, matching the rated current, etc. According to the selected switchgear model, the installation is determined to obtain the installation requirement information, and the installation requirement information may include the installation location and space requirements of the switchgear, the basic size and load-bearing requirements of the switchgear, etc.
[0023] Furthermore, the component information that meets the requirements is screened out according to the installation requirement information. Exemplarily, appropriate circuit breakers, etc. can be selected according to parameters such as rated current and short-circuit current, and multiple target component information is determined. The multiple target component information may include component model, technical parameters, component quantity and other information, so as to better optimize the component installation process of the later medium-voltage switchgear.
[0024] Execute step A200 to formulate the first installation process flow, and install and layout the medium-voltage switchgear according to the multiple target component information according to the first installation process flow to obtain an installation distribution map; in a possible implementation manner, step A200 further includes step A210, arranging the multiple target component information according to the installation requirement information to determine the installation sequence; execute step A220 to obtain the space size data and space structure data of the medium-voltage switchgear; execute step A230 to perform installation analysis based on the space size data and the space structure data, and update the installation sequence according to the analysis result to formulate the first installation process flow;
[0025] Arrange the multiple target component information according to the described installation requirement information, which can be arranged according to the function priority, that is, arranged in the functional order of the components in the circuit. For example, the incoming line side components (such as disconnectors) are installed first, then the main circuit breaker, and finally the outgoing line side components (such as current transformers) to generate a preliminary installation sequence list and determine the installation sequence. Further, according to the space dimension data, that is, the total dimensions of the switchgear (such as width, height, depth), the internal compartment dimensions, the position of the installation rails, etc., and the space structure data, that is, the internal structure layout of the switchgear, such as the position distribution of the circuit breaker compartment, the cable compartment, and the instrument compartment, as well as the specific positions of the mounting plates, rails, and supports. At the same time, perform installation analysis based on the space dimension data and the space structure data, which means checking whether the size of each component is suitable for its installation position, so as to ensure that heavy components (such as circuit breakers) are installed in areas with sufficient load-bearing capacity, and heat-generating components (such as circuit breakers) are installed in well-ventilated areas to avoid heat accumulation. On this basis, adjust the preliminary installation sequence according to the installation analysis results, that is, if there is insufficient installation space for a certain component, it may be necessary to adjust its installation order or position, so as to determine the first installation process flow.
[0026] Execute step A240, adjust the installation positions of the multiple target component information according to the first installation process flow, determine multiple installation points, and draw the multiple installation points according to the connection method to obtain the installation distribution diagram.
[0027] In a possible implementation manner, step A240 further includes step A241, traverse the multiple target component information to match and identify the fixed points of the medium-voltage switchgear to obtain the installation positions of the multiple target component information; execute step A242, update the installation positions of the multiple target component information according to the first installation process flow to determine multiple installation points; execute step A243, obtain the wiring paths of the multiple target component information according to the first installation process flow, and determine the connection methods of the multiple target component information based on the wiring paths; execute step A244, map the multiple installation points to the medium-voltage switchgear according to the connection method to obtain the installation distribution diagram.
[0028] The fixed points of the medium-voltage switchgear can include the positions and dimensions of the mounting plates, rails, brackets, reserved hole positions, etc. inside the switchgear. Matching and identifying multiple target component information with the fixed points of the medium-voltage switchgear can be carried out according to the matching of the mounting dimensions of the components with the dimensions of the fixed points, the load-bearing capacity of the fixed points meeting the weight requirements of the components, the positions of the fixed points conforming to the functional requirements of the components, etc., generating an installation position identification table for each target component, determining the installation positions of multiple target component information, and at the same time adjusting the installation sequence of multiple target component information according to the first installation process flow to ensure a reasonable spatial relationship between the installation points and avoid conflicts. Re-check the installation points of each component. If conflicts are found (such as insufficient space or complex connection paths), adjust the installation points to obtain multiple installation points. Further, according to the first installation process flow, define the electrical connection paths between the components, including the routing of busbars and cables, determine the wiring paths of multiple target component information. On this basis, carry out connection analysis according to the wiring paths, which can include busbar connections, i.e., for high-current paths, and cable connections, i.e., for low-current paths, so as to determine the connection methods of multiple target components. Finally, mark the installation points of each component in the floor plan or 3D model of the switchgear, and map the multiple installation points to the medium-voltage switchgear according to the connection methods, which means generating an installation distribution diagram by drawing wiring paths and marking connection methods in the diagram.
[0029] Execute step A300, introduce an automated equipment group to perform virtual collaborative assembly according to the installation distribution diagram, and generate an assembly result; in a possible implementation manner, step A300 further includes step A310, build a virtual assembly environment according to the installation distribution diagram, control and write the automated equipment group according to the virtual assembly environment, and generate multiple equipment assembly tasks; execute step A320, allocate the multiple equipment assembly tasks to the automated equipment group for collaborative determination, and generate effective collaborative assembly data; execute step A330, start the automated equipment group to perform virtual collaborative assembly according to the effective collaborative assembly data, and generate the assembly result.
[0030] Use virtual assembly software (such as DELMIA, Tecnomatix, Unity3D) or CAD software (such as SolidWorks, AutoCAD) to build a virtual assembly environment based on the installation distribution map. Import the 3D models of medium-voltage switchgear and multiple target components into the virtual assembly environment according to the installation distribution map. Further, decompose the assembly process into multiple subtasks (such as grasping components, placing components, fixing bolts), and at the same time define the actions of the equipment for each subtask (such as the robotic arm moving to a specified position and grasping components), define the execution sequence and time of the equipment actions, determine multiple equipment assembly tasks, and allocate the multiple equipment assembly tasks to the automated equipment group for collaborative judgment, which means judging whether the automated equipment can complete multiple assembly tasks through collaboration. When there are assembly tasks that can be completed through collaboration, generate valid collaborative assembly data, and based on the valid collaborative assembly data, start the automated equipment group in the virtual assembly environment, simulate the actions of the equipment according to the task list and timing control, and monitor the assembly process in real time to check whether there are any conflicts or errors, so as to generate the assembly result of virtual collaborative assembly.
[0031] Execute step A400, conduct an installation test on the medium-voltage switchgear based on the assembly result, generate an installation test report, and feedback the installation test report to the first installation process flow for update and optimization to determine the second installation process flow.
[0032] In a possible implementation manner, step A400 further includes step A410, conduct an installation evaluation on the medium-voltage switchgear according to the assembly result to obtain multiple assembly scores; execute step A420, conduct a quality inspection on the medium-voltage switchgear based on the multiple assembly scores to generate assembly quality data; execute step A430, conduct an installation performance test according to the assembly quality data to obtain low-performance assembly data, and add the low-performance assembly data to the installation test report.
[0033] First, define evaluation indicators based on historical installation record data, assign weights to the evaluation indicators according to the assembly impact, determine multiple weight coefficients, score the assembly results according to the evaluation indicators, and obtain multiple assembly scores through the comprehensive score = ∑(single-item score × weight). At the same time, conduct installation quality inspection on the medium-voltage switchgear based on multiple assembly scores, check the actual installation measurement values of multiple target components, and determine whether they meet the qualified standards, so as to determine the assembly quality data. Finally, test the installation performance of the medium-voltage switchgear according to the assembly quality data. The tested installation performance can include electrical performance, mechanical performance, environmental performance, etc., and define low performance for test results that do not meet the standards or are close to the lower limit of the standards and have potential risks. Finally, highlight and mark the low-performance assembly data and fill it into the installation test report, realizing systematic completion of the installation evaluation, quality inspection, and performance test of the medium-voltage switchgear, and generating an installation test report to lay a foundation for subsequent optimization of the first installation process flow.
[0034] In a possible implementation manner, step A400 further includes step A440: using the low-performance assembly data as an index, traversing the first installation process flow to determine multiple low-performance processes; performing step A450: verifying the multiple low-performance processes, and optimizing the first installation process flow according to the verification results to determine the second installation process flow.
[0035] According to the possible reasons in the low-performance assembly data, associate them with the relevant process steps in the first installation process flow. Exemplarily, unqualified withstand voltage test may be associated with process steps such as "installing insulating materials" or "connecting busbars". Traverse the first installation process flow for correlation analysis, extract and determine multiple low-performance processes according to the process data associated with the low-performance assembly data. Further, verifying the multiple low-performance processes may include checking whether the operation methods of multiple low-performance process steps meet the standards, and checking whether the materials, tools, and equipment used are qualified, so as to generate verification results of multiple low-performance processes. On this basis, optimize the first installation process flow. The second installation process flow can be determined by listing the verification contents and results of each low-performance process and performing an optimized matching on the first installation process flow, and clarify the improvement measures in the optimized second installation process flow, thereby improving the assembly quality and performance of the medium-voltage switchgear.
[0036] The embodiments of the present application solve the technical problem that the prior art focuses on the simple installation and connection of components, lacks optimization from the overall process flow, and has low installation efficiency, and achieve the technical effect of improving the installation efficiency and quality of components of the medium-voltage switchgear.
[0037] In the above text, with reference to Figure 1A method for optimizing the component installation process for medium-voltage switchgear according to an embodiment of the present application is described in detail. Next, reference will be made to Figure 2 Describe an optimization system for the component installation process for medium-voltage switchgear according to an embodiment of the present application.
[0038] The optimization system for the component installation process for medium-voltage switchgear according to an embodiment of the present application is used to solve the technical problem that the prior art focuses on the simple installation and connection of components and lacks optimization from the overall process flow, resulting in low installation efficiency, and achieve the technical effect of improving the installation efficiency and quality of components in medium-voltage switchgear. The optimization system for the component installation process for medium-voltage switchgear includes: an information acquisition module 10, an installation layout module 20, a collaborative assembly module 30, and an installation test module 40.
[0039] The information acquisition module 10 is used to select multiple target component information according to the medium-voltage switchgear;
[0040] The installation layout module 20 is used to formulate a first installation process flow, install and layout the medium-voltage switchgear according to the multiple target component information according to the first installation process flow, and obtain an installation distribution map;
[0041] The collaborative assembly module 30 is used to introduce an automated equipment group to perform virtual collaborative assembly according to the installation distribution map and generate an assembly result;
[0042] The installation test module 40 is used to perform an installation test on the medium-voltage switchgear based on the assembly result, generate an installation test report, feedback the installation test report to the first installation process flow for update and optimization, and determine a second installation process flow.
[0043] Next, the specific configuration of the information acquisition module 10 will be described in detail. As described above, multiple target component information is selected according to the medium-voltage switchgear. The information acquisition module 10 may further include: acquiring the electrical demand information and cabinet compatibility data of the medium-voltage switchgear; automatically selecting models according to the electrical demand information and the cabinet compatibility data to determine the installation demand information; screening multiple component information according to the installation demand information to determine the multiple target component information.
[0044] Next, the specific configuration of the installation layout module 20 will be described in detail. As described above, a first installation process flow is formulated, and the installation layout of the medium-voltage switchgear is carried out for the multiple target component information according to the first installation process flow to obtain an installation distribution map. The installation layout module 20 may further include: arranging the multiple target component information according to the installation requirement information to determine an installation sequence; obtaining the spatial dimension data and spatial structure data of the medium-voltage switchgear; performing installation analysis based on the spatial dimension data and the spatial structure data, updating the installation sequence according to the analysis result to formulate the first installation process flow; adjusting the installation positions of the multiple target component information according to the first installation process flow to determine multiple installation points, and drawing the multiple installation points according to the connection method to obtain the installation distribution map.
[0045] Next, the specific configuration of the installation layout module 20 will be described in detail. As described above, the installation positions of the multiple target component information are adjusted according to the first installation process flow to determine multiple installation points, and the multiple installation points are drawn according to the connection method to obtain an installation distribution map. The installation layout module 20 may further include: traversing the multiple target component information to match and identify the fixed points of the medium-voltage switchgear to obtain the installation positions of the multiple target component information; updating the installation positions of the multiple target component information according to the first installation process flow to determine multiple installation points; obtaining the wiring paths of the multiple target component information according to the first installation process flow, and determining the connection methods of the multiple target component information based on the wiring paths; mapping the multiple installation points to the medium-voltage switchgear according to the connection method to obtain the installation distribution map.
[0046] Next, the specific configuration of the collaborative assembly module 30 will be described in detail. As described above, an automated equipment group is introduced to perform virtual collaborative assembly according to the installation distribution map to generate an assembly result. The collaborative assembly module 30 may further include: building a virtual assembly environment according to the installation distribution map, and controlling and programming the automated equipment group according to the virtual assembly environment to generate multiple equipment assembly tasks; allocating the multiple equipment assembly tasks to the automated equipment group for collaborative determination to generate effective collaborative assembly data; starting the automated equipment group to perform virtual collaborative assembly according to the effective collaborative assembly data to generate the assembly result.
[0047] Next, the specific configuration of the installation test module 40 will be described in detail. As described above, based on the assembly result, the medium-voltage switchgear is subjected to installation test to generate an installation test report. The installation test module 40 may further include: performing an installation evaluation on the medium-voltage switchgear according to the assembly result to obtain a plurality of assembly scores; performing a quality inspection on the medium-voltage switchgear based on the plurality of assembly scores to generate assembly quality data; performing an installation performance test according to the assembly quality data to obtain low-performance assembly data, and adding the low-performance assembly data to the installation test report.
[0048] Next, the specific configuration of the installation test module 40 will be described in detail. As described above, the installation test report is fed back to the first installation process flow for update and optimization to determine the second installation process flow. The installation test module 40 may further include: using the low-performance assembly data as an index to traverse the first installation process flow to determine a plurality of low-performance processes; verifying the plurality of low-performance processes, and optimizing the first installation process flow according to the verification result to determine the second installation process flow.
[0049] The component installation process optimization system for medium-voltage switchgear provided by the embodiments of the present application can execute the component installation process optimization method for medium-voltage switchgear provided by any embodiment of the present application, and has the corresponding functional modules and beneficial effects for executing the method.
[0050] Although the present application makes various references to certain modules in the system according to the embodiments of the present application, however, any number of different modules can be used and run on the user terminal and / or the server. The included individual units and modules are only divided according to the functional logic, but are not limited to the above division, as long as the corresponding functions can be realized; in addition, the specific names of the functional units are only for the convenience of mutual distinction and do not limit the protection scope of the present application.
[0051] The above specific implementation manners do not constitute a limitation to the protection scope of the present application. Those skilled in the art should understand that various modifications, combinations, and substitutions can be made according to design requirements and other factors. Any modifications, equivalent substitutions, and improvements made within the spirit and principle of the present application shall be included within the protection scope of the present application.
Claims
1. A component installation process optimization method for a medium voltage switch cabinet, characterized in that: The method comprises: Select multiple target component information according to the medium voltage switchgear; Formulate a first installation process flow, and install and layout the medium-voltage switchgear according to the information of the plurality of target components according to the first installation process flow to obtain an installation distribution diagram; Introducing an automated equipment group to perform virtual collaborative assembly according to the installation distribution diagram, and generating an assembly result; Based on the assembly result, the medium voltage switch cabinet is installed and tested, an installation test report is generated, the installation test report is fed back to the first installation process flow for updating and optimization, and a second installation process flow is determined.
2. The component installation process optimization method for medium voltage switch cabinet according to claim 1, characterized in that: Selecting multiple target component information according to a medium voltage switchgear, the method includes: Obtain electrical requirement information and cabinet compatibility data of medium voltage switchgear; Automatically select the model according to the electrical requirement information and the cabinet compatibility data to determine the installation requirement information; The plurality of component information are screened according to the installation requirement information to determine the plurality of target component information.
3. The component installation process optimization method for medium voltage switch cabinet according to claim 2, characterized in that: Formulate a first installation process flow, install and layout the medium-voltage switch cabinet according to the plurality of target component information according to the first installation process flow, and obtain an installation distribution diagram, the method comprising: Arrange the plurality of target component information according to the installation requirement information to determine an installation sequence; Obtain the spatial dimension data and spatial structure data of the medium voltage switchgear; Performing installation analysis based on the spatial dimension data and the spatial structure data, and updating the installation sequence according to the analysis result to formulate the first installation process flow; The installation positions of multiple target component information are adjusted according to the first installation process flow, multiple installation points are determined, and the multiple installation points are drawn according to the connection method to obtain an installation distribution map.
4. The component installation process optimization method for medium voltage switch cabinet according to claim 1, characterized in that: The method includes adjusting the installation positions of multiple target component information according to the first installation process flow, determining multiple installation points, and drawing the multiple installation points according to the connection mode to obtain an installation distribution map. Traversing the plurality of target component information and matching and identifying the fixed points of the medium voltage switch cabinet to obtain the installation positions of the plurality of target component information; According to the first installation process flow, the installation positions of the plurality of target component information are updated to determine a plurality of installation points; Acquire a wiring path of the plurality of target component information according to the first installation process flow, and determine a connection mode of the plurality of target component information based on the wiring path; The multiple installation points are mapped to the medium voltage switch cabinet according to the connection mode to obtain the installation distribution map.
5. The component installation process optimization method for medium voltage switch cabinet according to claim 1 is characterized in that: The automated equipment group performs virtual collaborative assembly according to the installation distribution diagram to generate an assembly result, and the method includes: Building a virtual assembly environment according to the installation distribution diagram, and controlling and programming the automation equipment group according to the virtual assembly environment to generate a plurality of equipment assembly tasks; Allocating the plurality of equipment assembly tasks to the automation equipment group for collaborative determination to generate effective collaborative assembly data; The automated equipment group is started to perform virtual collaborative assembly according to the effective collaborative assembly data to generate the assembly result.
6. The component installation process optimization method for medium voltage switch cabinet according to claim 1, characterized in that: Performing an installation test on the medium voltage switchgear based on the assembly result and generating an installation test report, the method comprising: Performing installation evaluation on the medium voltage switchgear according to the assembly results to obtain a plurality of assembly scores; Performing quality inspection on the medium voltage switchgear based on the multiple assembly scores to generate assembly quality data; An installation performance test is performed according to the assembly quality data to obtain low-performance assembly data, and the low-performance assembly data is added to the installation test report.
7. The component installation process optimization method for medium voltage switch cabinet according to claim 6, characterized in that: Feeding back the installation test report to the first installation process flow for updating and optimization, and determining a second installation process flow, the method comprising: Using the low-performance assembly data as an index, traversing the first installation process flow to determine a plurality of low-performance processes; The multiple low-performance processes are verified, the first installation process flow is optimized according to the verification result, and the second installation process flow is determined.
8. The component installation process optimization system for medium voltage switchgear is characterized by: The system is used to implement the component installation process optimization method for medium-voltage switchgear according to any one of claims 1 to 7, and the system includes: An information acquisition module, used for selecting multiple target component information according to the medium voltage switchgear; An installation layout module is used to formulate a first installation process flow, and to install and layout the medium-voltage switch cabinet according to the information of the plurality of target components according to the first installation process flow to obtain an installation distribution diagram; A collaborative assembly module, used to introduce an automated equipment group to perform virtual collaborative assembly according to the installation distribution diagram to generate an assembly result; The installation test module is used to perform installation test on the medium voltage switchgear based on the assembly result, generate an installation test report, feed back the installation test report to the first installation process flow for updating and optimization, and determine the second installation process flow.