Method and device for installing electrical wire harness clamp based on collaborative environment, computer equipment and medium

By automatically matching and assembling clamps based on the wiring harness installation model in a collaborative environment, the problems of data silos and human error in electrical wiring harness clamp management are solved, achieving efficient and accurate clamp installation and design consistency.

CN121859475APending Publication Date: 2026-04-14SHAANXI AIRCRAFT CORPORATION
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Patent Information

Application Number
CN202511754465.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-26
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

In existing technologies, the management and automatic installation of electrical wiring harness clamps suffer from data silos, leading to design version conflicts and missing parts. Furthermore, manual operation is prone to matching errors, affecting assembly reliability, and lacks cross-platform dynamic data synchronization capabilities.

Method used

By matching based on the wire harness installation model, a list of wire harness and wire harness clamp relationships is generated. The clamp part numbers that meet the conditions are obtained from the clamp resource library. Automatic installation is performed using the 3D model. The data synchronization mechanism in the integrated collaborative environment enables automatic matching and assembly of clamps.

Benefits of technology

It improves the design efficiency and accuracy of wire harness clamps, reduces manual intervention, enhances assembly precision and design consistency, and supports real-time multi-disciplinary collaboration and data traceability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention provides an electrical wiring harness hoop installation method and device based on a collaborative environment, computer equipment and a medium, and the method comprises the following steps: carrying out the matching of a wiring harness and a wiring harness hoop based on a wiring harness installation model, and generating a relation list of the wiring harness and the wiring harness hoop; acquiring a hoop part number meeting the condition from the hoop resource library, and acquiring a 3d model of the wire harness hoop corresponding to the wire harness hoop through the hoop part number; and installing the wire harness hoop in the wire harness installation model through the 3d model of the wire harness hoop and the relation list of the wire harness and the wire harness hoop, and generating a wire harness installation model comprising the wire harness hoop. According to the scheme, automatic matching extraction and assembly completion of the clamp in a collaborative environment are achieved through industrial software, and the design efficiency and accuracy of the wire harness clamp are improved.
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Description

Technical Field

[0001] This invention relates to the field of aviation electrical design technology, and in particular to an installation method, device, computer equipment, and medium for electrical harness clamps based on a collaborative environment. Background Technology

[0002] In traditional electrical wiring harness design, the management and automated installation of clamp components face the following technical bottlenecks: 1. Data silos: The local clamp resource library and the aircraft collaborative database lack a real-time synchronization mechanism, resulting in design version conflicts or missing parts (clamp parts are stored in the clamp resource library, but actually need to be obtained from the aircraft collaborative database).

[0003] 2. Inefficient operation: Designers need to manually input the wire harness diameter, look up the clamp part number, and manually replace and install matching clamps one by one, which is time-consuming and labor-intensive.

[0004] 3. High error risk: Manual operation is prone to part mismatch (such as diameter mismatch) or incorrect installation parameters, which affects assembly reliability.

[0005] While existing technologies include automatic clamp assembly tools based on local databases, they lack deep integration capabilities with collaborative platforms and cannot solve the problem of dynamic data synchronization across platforms. Summary of the Invention

[0006] In view of this, embodiments of the present invention provide an installation method for electrical harness clamps based on a collaborative environment, to solve the technical problem of cross-platform dynamic data synchronization that cannot be solved in the prior art. The method includes: Based on the wire harness installation model, the wire harnesses are matched with the wire harness clamps to generate a list of relationships between the wire harnesses and the wire harness clamps. Obtain the clamp part number that meets the conditions from the clamp resource library, and obtain the 3D model of the wire harness clamp corresponding to the clamp through the clamp part number; Using the 3D model of the wire harness clamp and the list of relationships between the wire harness and the wire harness clamp, the wire harness clamp is installed in the wire harness installation model to generate a wire harness installation model including the wire harness clamp.

[0007] This invention also provides an installation device for electrical harness clamps based on a collaborative environment, to solve the technical problem of cross-platform dynamic data synchronization that cannot be solved in the prior art. The device includes: The relationship list generation module is used to match wire harnesses with wire harness clamps based on the wire harness installation model and generate a relationship list between wire harnesses and wire harness clamps. The 3D model acquisition module is used to obtain the clamp part number that meets the conditions from the clamp resource library, and to obtain the 3D model of the wire harness clamp corresponding to the clamp through the clamp part number; The clamp installation module is used to install the wire harness clamp in the wire harness installation model using the 3D model of the wire harness clamp and the list of relationships between the wire harness and the wire harness clamp, thereby generating a wire harness installation model including the wire harness clamp.

[0008] This invention also provides a computer device, including a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, it implements any of the above-mentioned installation methods for electrical harness clamps based on a collaborative environment, thereby solving the technical problems in the prior art.

[0009] This invention also provides a computer-readable storage medium storing a computer program that executes any of the above-described installation methods for electrical harness clamps based on a collaborative environment, in order to solve the technical problem of the inability to dynamically synchronize data across platforms in the prior art.

[0010] Compared with the prior art, the beneficial effects that at least one technical solution adopted in the embodiments of this specification can achieve include at least: Industrial software enables automatic matching, extraction, and assembly of clamps in a collaborative environment, improving the design efficiency and accuracy of wire harness clamps. Attached Figure Description

[0011] To more clearly illustrate the technical solutions of the embodiments of this application, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0012] Figure 1 This is a flowchart of an installation method for electrical harness clamps based on a collaborative environment, provided by an embodiment of the present invention; Figure 2 This is a flowchart illustrating the calling of clamp parts provided in an embodiment of the present invention; Figure 3 This is a flowchart of the clamp installation provided in an embodiment of the present invention; Figure 4 This is a structural block diagram of a computer device provided in an embodiment of the present invention; Figure 5 This is a structural block diagram of an electrical harness clamp installation device based on a collaborative environment, provided in an embodiment of the present invention. Detailed Implementation

[0013] The embodiments of this application will now be described in detail with reference to the accompanying drawings.

[0014] The following specific examples illustrate the implementation of this application. Those skilled in the art can easily understand other advantages and effects of this application from the content disclosed in this specification. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of them. This application can also be implemented or applied through other different specific embodiments, and the details in this specification can also be modified or changed based on different viewpoints and applications without departing from the spirit of this application. It should be noted that, in the absence of conflict, the following embodiments and features in the embodiments can be combined with each other. Based on the embodiments in this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0015] In this embodiment of the invention, an installation method for electrical harness clamps based on a collaborative environment is provided, such as... Figure 1 As shown, the method includes: Step S101: Based on the wire harness installation model, match the wire harness with the wire harness clamp to generate a list of wire harness and wire harness clamp relationships; Step S102: Obtain the clamp part number that meets the conditions from the clamp resource library, and obtain the 3D model of the wire harness clamp corresponding to the clamp through the clamp part number; Step S103: Using the 3D model of the wire harness clamp and the list of relationships between the wire harness and the wire harness clamp, install the wire harness clamp in the wire harness installation model to generate a wire harness installation model including the wire harness clamp.

[0016] In practice, the following steps are used to match wire harnesses with wire harness clamps based on the wire harness installation model, generating a list of relationships between wire harnesses and wire harness clamps: Based on the wire harness installation model, the maximum outer diameter of the wire harness segment is obtained analytically. A wire harness allowance is set, and the wire harness diameter is calculated using the maximum outer diameter of the wire harness segment and the wire harness allowance, where the wire harness diameter is the sum of the maximum outer diameter of the wire harness segment and the wire harness allowance. The relationship between the wire harness and wire harness clamps in the wire harness installation model is analyzed. Based on the wire harness diameter, it is determined whether the diameter of the wire harness clamps in the wire harness installation model matches the diameter of the wire harness. If they do not match, other wire harness clamps are matched with the wire harness based on the wire harness diameter. If they match, the wire harness segment is bound to the clamp, and the generated binding relationship is saved to the wire harness and wire harness clamp relationship list.

[0017] In specific implementation, the following steps are used to obtain the clamp part number that meets the conditions from the clamp resource library, and then obtain the 3D model of the wire harness clamp corresponding to the clamp using the clamp part number: According to the parameter matching rules of the wire harness clamp, a matching clamp part number is retrieved from the clamp resource library. The parameter matching rules include diameter range and material requirements. Using the clamp part number, the system verifies whether the clamp part number already exists in the current 3D model project in the aircraft collaborative database. If it exists, the system retrieves the 3D model of the wire harness clamp corresponding to the current clamp part number from the aircraft collaborative database and loads the 3D model of the wire harness clamp into the current 3D model project. If it does not exist, the system calls the synchronization interface between the aircraft collaborative database and the clamp resource library to push the 3D model of the wire harness clamp corresponding to the current clamp part number from the clamp resource library to the current 3D model project.

[0018] In specific implementation, the feature is achieved through the following steps: Based on the parameter matching rules of the wire harness clamps, a matching clamp part number is retrieved from the clamp resource library, including: According to the parameter matching rules, multiple candidate clamp part numbers are retrieved from the clamp resource library; historical performance data corresponding to each candidate clamp part number is obtained from the clamp history database associated with the aircraft collaborative database, wherein the historical performance data includes failure rate and project usage frequency; based on the historical performance data, a recommended clamp part number is determined from the multiple candidate clamp part numbers.

[0019] In specific implementation, the recommended clamp part number is determined from the multiple candidate clamp part numbers based on the historical performance data through the following steps: Obtain preset recommendation weights, which include a failure rate weight and a versatility weight, the versatility weight being determined based on the project's usage frequency; for each candidate clamp part number, calculate a comprehensive score for the wire harness clamp based on the corresponding failure rate, failure rate weight, project usage frequency, and versatility weight; sort the candidate clamp part numbers according to the comprehensive score from high to low to generate a sorted list of recommended clamp part numbers; and determine the top-ranked clamp part numbers in the sorted list as the recommended clamp part numbers.

[0020] In specific implementation, the following steps are used to install the wire harness clamps in the wire harness installation model using the 3D model of the wire harness clamps and the list of relationships between the wire harness and the wire harness clamps, thereby generating a wire harness installation model including the wire harness clamps: The entire harness includes all harness segments through the harness clamp relationship list. The harness clamp is installed on each harness segment passing through the clamp until all harness segments are processed, generating a harness installation model including the clamps. Using the 3D model of the clamps, the routing points of the clamps on the harness segments are read, and the harness routing direction is obtained from these points. The clamp direction is obtained from the 3D model of the clamps. The angle between the harness routing direction and the clamp direction is calculated. If the angle is less than 90°, the clamp is installed in the forward direction; if the angle is greater than 90°, the clamp is installed in the reverse direction.

[0021] Specifically, for forward installation, the open side of the clamp faces the direction from which the wiring harness is laid or the main maintenance direction. For reverse installation, the open side of the clamp faces the direction from which the wiring harness is laid.

[0022] In practice, the interference of the wire harness is handled through the following steps: Using the 3D model of the wire harness clamp and the list of relationships between the wire harness and the wire harness clamp, before installing the wire harness clamp in the wire harness installation model, the following operations are performed: Obtain the 3D models of all wire harness clamps and the wire harness in the wire harness installation model to generate a global environment model; based on the 3D models of the wire harness clamps and the preset installation positions and directions of the wire harness segments, perform collision detection analysis in the global environment model; if interference is detected, calculate at least one new installation position and / or a new installation direction that does not interfere with the global environment model on the path of the wire harness segment; update the installation position of the wire harness clamp to the new installation position, and / or update the installation direction of the wire harness clamp to the new installation direction.

[0023] In one embodiment of the present invention, such as Figure 2 As shown, the installation method of electrical wiring harness clamps includes the following steps: Step 1: Match the clamp diameter.

[0024] Step 1.1: Calculate the wire harness diameter (output: wire harness diameter).

[0025] Based on the wire harness installation model in industrial software, the maximum outer diameter of the wire harness segment is analyzed, and the wire harness diameter is calculated as: maximum outer diameter of wire harness segment + allowance.

[0026] Step 1.2: Match clamps (Output: List of relationships between wire harnesses and wire harness clamps).

[0027] Input: Harness diameter.

[0028] Analyze the relationship between the wire harness and clamps in the wire harness installation model, and determine if the clamp diameter matches the wire harness diameter. If they do not match, re-apply the clamps; if they match, maintain the current state.

[0029] Step 2: Call up the clamp parts.

[0030] Step 2.1: Dynamic query of clamp resource library (output: query results).

[0031] Input: A list of relationships between wire harnesses and wire harness clamps. Based on parameter matching rules (such as diameter range, material requirements, etc.), retrieve the clamp part numbers that meet the conditions from the clamp resource library.

[0032] Link a clamp history database to the clamp resource library. The clamp history database not only stores the 3D model of the clamp, but also continuously records and links the historical installation data (such as the number of installations and installation projects) of each clamp part number, the field failure rate (such as the number of reported loosening and wear), and maintenance records (such as the replacement cycle and the reason for replacement).

[0033] When multiple candidate clamp part numbers that meet the criteria are retrieved from the clamp resource library based on parameter matching rules (such as diameter and material), the recommendation engine is activated. The engine calls data from the clamp historical database and scores and ranks the candidate clamps based on preset optimization objectives (such as minimizing the failure rate or maximizing versatility), thereby recommending the optimal clamp part number.

[0034] Each clamp part number and its corresponding 3D model in the clamp resource library is version-identified, enabling version management and rollback. The clamp resource library records the clamp versions used in each project. When the models in the resource library are updated (e.g., due to design improvements), version rollback is performed on the older versions used in historical projects to ensure consistency in design and maintenance. If a clamp model that has been used is marked or updated due to a high failure rate, a replacement suggestion is proactively sent to all projects using that model, along with a recommended new clamp part number.

[0035] Step 2.2, Verify the existence of the clamp part number (output: verification result).

[0036] Enter the query results and call the aircraft collaborative database to verify whether the part already exists in the current project environment.

[0037] Step 2.3, Dynamic Synchronization (Output: Synchronization Status).

[0038] Step 2.3.1: Input the verification result. If the part exists: directly load the model data from the aircraft collaborative database to complete the call.

[0039] Step 2.3.2: Input the verification result. If the part does not exist: trigger the aircraft collaborative database synchronization interface, push the clamp part model from the clamp resource library to the current project environment, and return the synchronization status (success / failure). After successful synchronization, the call is completed and the installation process is executed automatically; If synchronization fails, push detailed error information (such as "resource library connection timeout" or "part version conflict") to the industrial software and terminate the process.

[0040] Step 2.4, Closed-loop feedback mechanism: All operation records (such as feature parameters and synchronization status) are written to the aircraft collaborative database log, supporting subsequent traceability and analysis.

[0041] Step 3, Installation of clamp parts (e.g.) Figure 3 (As shown).

[0042] Input: Synchronization status, list of relationships between harnesses and harness clamps.

[0043] Successfully synchronized clamps are installed based on the list of wire harness clamps parsed. Clamps are then installed on each harness segment that passes through them. The routing points of the clamps on the harness segments are read to calculate the wire harness routing direction and the clamp installation direction, completing the installation.

[0044] In this embodiment, a computer device is provided, such as Figure 4 As shown, it includes a memory 401, a processor 402, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, it implements any of the above-mentioned installation methods for electrical harness clamps based on a collaborative environment.

[0045] Specifically, the computer device can be a computer terminal, a server, or a similar computing device.

[0046] In this embodiment, a computer-readable storage medium is provided, which stores a computer program that executes any of the above-described installation methods for electrical harness clamps based on a cooperative environment.

[0047] Specifically, computer-readable storage media include both permanent and non-permanent, removable and non-removable media, which can store information using any method or technology. Information can be computer-readable instructions, data structures, modules of programs, or other data. Examples of computer-readable storage media include, but are not limited to, phase-change memory (PRAM), static random access memory (SRAM), dynamic random access memory (DRAM), other types of random access memory (RAM), read-only memory (ROM), electrically erasable programmable read-only memory (EEPROM), flash memory or other memory technologies, CD-ROM, digital versatile optical disc (DVD) or other optical storage, magnetic tape, magnetic disk storage or other magnetic storage devices, or any other non-transferable medium that can be used to store information accessible by a computing device. As defined herein, computer-readable storage media do not include transient media, such as modulated data signals and carrier waves.

[0048] Based on the same inventive concept, this invention also provides an installation device for electrical harness clamps based on a collaborative environment, as described in the following embodiments. Since the principle of the installation device for electrical harness clamps based on a collaborative environment is similar to that of the installation method for electrical harness clamps based on a collaborative environment, the implementation of the installation device for electrical harness clamps based on a collaborative environment can refer to the implementation of the installation method for electrical harness clamps based on a collaborative environment; repeated details will not be elaborated further. As used below, the terms "unit" or "module" can refer to a combination of software and / or hardware that performs a predetermined function. Although the device described in the following embodiments is preferably implemented in software, hardware implementation, or a combination of software and hardware, is also possible and contemplated.

[0049] Figure 5 This is a structural block diagram of an installation device for electrical harness clamps based on a collaborative environment, according to an embodiment of the present invention. Figure 5 As shown, it includes: a relationship list generation module 501, a 3D model acquisition module 502, and a clamp installation module 503. The structure is described below.

[0050] The relationship list generation module 501 is used to match wire harnesses with wire harness clamps based on the wire harness installation model and generate a relationship list between wire harnesses and wire harness clamps. The 3D model acquisition module 502 is used to obtain the clamp part number that meets the conditions from the clamp resource library, and obtain the 3D model of the wire harness clamp corresponding to the clamp through the clamp part number; The clamp installation module 503 is used to install the wire harness clamp in the wire harness installation model using the 3D model of the wire harness clamp and the list of relationships between the wire harness and the wire harness clamp, thereby generating a wire harness installation model including the wire harness clamp.

[0051] In one embodiment, the relationship list generation module includes: The maximum outer diameter unit is analyzed to obtain the maximum outer diameter of the wire harness segment based on the wire harness installation model. A wire harness diameter calculation unit is used to set the wire harness allowance and calculate the wire harness diameter by using the maximum outer diameter of the wire harness segment and the wire harness allowance, wherein the wire harness diameter is the sum of the maximum outer diameter of the wire harness segment and the wire harness allowance; The matching detection unit is used to analyze the relationship between the wire harness and the wire harness clamp in the wire harness installation model, and to analyze whether the diameter of the wire harness clamp in the wire harness installation model matches the diameter of the wire harness based on the diameter of the wire harness. A clamp harness matching unit is used to match other harness clamps to the harness based on the harness diameter if they do not match. The clamp-on harness binding unit is used to bind harness segments to clamps if they match, and then save the generated binding relationship to the harness-clip relationship list.

[0052] In one embodiment, the 3D model acquisition module includes: The part number acquisition unit is used to retrieve the matching part number of the clamp from the clamp resource library according to the parameter matching rules of the wire harness clamp, wherein the parameter matching rules include diameter range and material requirements; The clamp part number verification unit is used to verify whether the clamp part number already exists in the current 3D model project in the aircraft collaborative database. If it exists, the unit retrieves the 3D model of the wire harness clamp corresponding to the current clamp part number from the aircraft collaborative database and loads the 3D model of the wire harness clamp into the current 3D model project. The 3D model push unit is used to, if the model does not exist, call the synchronization interface between the aircraft collaborative database and the clamp resource library to push the 3D model of the wire harness clamp corresponding to the current clamp part number from the clamp resource library to the current 3D model project.

[0053] In one embodiment, the part number acquisition unit is further configured to retrieve multiple candidate clamp part numbers from the clamp resource library according to the parameter matching rules; obtain historical performance data corresponding to each candidate clamp part number from the clamp history database associated with the aircraft collaborative database, wherein the historical performance data includes failure rate and project usage frequency; and determine a recommended clamp part number from the multiple candidate clamp part numbers based on the historical performance data.

[0054] In one embodiment, the part number acquisition unit is further configured to acquire a preset recommendation weight, the recommendation weight including a failure rate weight and a versatility weight, the versatility weight being determined based on the project usage frequency; for each candidate clamp part number, a comprehensive score for the wire harness clamp is calculated based on the failure rate, the failure rate weight, the project usage frequency, and the versatility weight corresponding to the candidate clamp part number; the candidate clamp part numbers are sorted in descending order of the comprehensive score to generate a sorted list of recommended clamp part numbers; and the highest-ranked clamp part numbers in the sorted list of recommended clamp part numbers are determined as the recommended clamp part numbers.

[0055] In one embodiment, the clamp mounting module includes: The loop unit is used to obtain all wire harness segments included in the entire wire harness through the wire harness clamp relationship list, install the wire harness clamp on each wire harness segment that passes through the wire harness clamp, until all wire harness segments have been processed, and generate a wire harness installation model including the wire harness clamps: A single reading routing direction unit is used to read the routing point of the wire harness clamp on the wire harness segment through the 3D model of the wire harness clamp, and obtain the wire harness routing direction through the routing point; A clamp direction acquisition unit is used to acquire the clamp direction of the wire harness clamp through the 3D model of the wire harness clamp; The first mounting clamp unit is used to calculate the angle between the wiring harness routing direction and the clamp direction, and to install the wiring harness clamp in the forward direction when the angle is less than 90°. The second mounting clamp unit is used to install the wire harness clamp in the reverse direction when the included angle is greater than 90°.

[0056] In one embodiment, the clamp mounting module further includes a collision analysis unit.

[0057] In one embodiment, the collision analysis unit is used to perform the following operations in the wire harness installation model before installing the wire harness clamp, based on the 3D model of the wire harness clamp and the list of relationships between the wire harness and the wire harness clamp: obtaining the 3D models of all wire harness clamps and the wire harness in the wire harness installation model to generate a global environment model; performing collision detection analysis in the global environment model based on the preset installation positions and installation directions of the wire harness clamps on the wire harness segments; if interference is detected, calculating at least one new installation position and / or a new installation direction that does not interfere with the global environment model on the path of the wire harness segments; updating the installation position of the wire harness clamp to the new installation position, and / or updating the installation direction of the wire harness clamp to the new installation direction.

[0058] The embodiments of the present invention achieve the following technical effects: This invention discloses an intelligent installation method for electrical harness clamps based on 3D features and an aircraft collaborative database. This method integrates high-precision 3D modeling technology with an intelligent data management system to automatically identify, match, and assemble electrical harness clamps within a collaborative design platform. The system dynamically extracts the corresponding clamp model and installation location from the collaborative database based on the harness path, equipment interface location, and installation constraints, and verifies the assembly rationality using a rule engine and machine learning algorithms. This method not only significantly reduces manual intervention and improves assembly accuracy and design consistency, but also supports real-time multi-disciplinary collaboration and data traceability, significantly enhancing the efficiency and reliability of aircraft electrical wiring interconnection systems during the design phase. This invention is applicable to the collaborative design and digital assembly process of electrical systems in complex aviation equipment such as large passenger aircraft and military aircraft.

[0059] Obviously, those skilled in the art should understand that the modules or steps of the above-described embodiments of the present invention can be implemented using general-purpose computing devices. They can be centralized on a single computing device or distributed across a network of multiple computing devices. Optionally, they can be implemented using computer-executable program code, thereby storing them in a storage device for execution by a computing device. In some cases, the steps shown or described can be performed in a different order than those presented here, or they can be fabricated as separate integrated circuit modules, or multiple modules or steps can be fabricated as a single integrated circuit module. Thus, the embodiments of the present invention are not limited to any particular hardware and software combination.

[0060] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. For those skilled in the art, various modifications and variations of the embodiments of the present invention are possible. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. An installation method for electrical wiring harness clamps based on a collaborative environment, characterized in that, include: Based on the wire harness installation model, the wire harnesses are matched with the wire harness clamps to generate a list of relationships between the wire harnesses and the wire harness clamps. Obtain the clamp part number that meets the conditions from the clamp resource library, and obtain the 3D model of the wire harness clamp corresponding to the clamp through the clamp part number; Using the 3D model of the wire harness clamp and the list of relationships between the wire harness and the wire harness clamp, the wire harness clamp is installed in the wire harness installation model to generate a wire harness installation model including the wire harness clamp.

2. The installation method of electrical harness clamps based on a collaborative environment as described in claim 1, characterized in that, Based on the wire harness installation model, the wire harnesses are matched with the wire harness clamps to generate a list of wire harness-clip relationships, including: Based on the wire harness installation model, the maximum outer diameter of the wire harness segment is obtained analytically. The wire harness allowance is set, and the wire harness diameter is calculated by the maximum outer diameter of the wire harness segment and the wire harness allowance, wherein the wire harness diameter is the sum of the maximum outer diameter of the wire harness segment and the wire harness allowance; The relationship between the wire harness and the wire harness clamp in the wire harness installation model is analyzed. Based on the diameter of the wire harness, the diameter of the wire harness clamp in the wire harness installation model is analyzed to see if it matches the diameter of the wire harness. If they do not match, other wire harness clamps will be matched to the wire harness based on the wire harness diameter; If a match is found, the harness segment is bound to the clamp, and the resulting binding relationship is saved to the harness and harness clamp relationship list.

3. The installation method of electrical harness clamps based on a collaborative environment as described in claim 1, characterized in that, Obtain the clamp part number that meets the conditions from the clamp resource library, and obtain the 3D model of the wire harness clamp corresponding to the clamp using the clamp part number, including: According to the parameter matching rules of the wire harness clamp, the clamp part number that meets the conditions is retrieved from the clamp resource library, wherein the parameter matching rules include diameter range and material requirements; Using the clamp part number, verify whether the clamp part number already exists in the current 3D model project in the aircraft collaborative database. If it exists, retrieve the 3D model of the wire harness clamp corresponding to the current clamp part number from the aircraft collaborative database and load the 3D model of the wire harness clamp into the current 3D model project. If it does not exist, call the synchronization interface between the aircraft collaborative database and the clamp resource library to push the 3D model of the wire harness clamp corresponding to the current clamp part number from the clamp resource library to the current 3D model project.

4. The installation method of electrical harness clamps based on a collaborative environment as described in claim 3, characterized in that, Based on the parameter matching rules of the wire harness clamps, retrieve the clamp part numbers that meet the conditions from the clamp resource library, including: Based on the parameter matching rules, multiple candidate clamp part numbers are retrieved from the clamp resource library; From the clamp history database associated with the aircraft collaborative database, obtain the historical performance data corresponding to each candidate clamp part number, wherein the historical performance data includes failure rate and project usage frequency; Based on the historical performance data, a recommended clamp part number is determined from the multiple candidate clamp part numbers.

5. The installation method of electrical harness clamps based on a collaborative environment as described in claim 4, characterized in that, Based on the historical performance data, a recommended clamp part number is determined from the plurality of candidate clamp part numbers, including: Obtain preset recommendation weights, which include failure rate weights and generality weights, wherein the generality weights are determined based on the frequency of use of the project; For each candidate clamp part number, a comprehensive score for the wire harness clamp is calculated based on the failure rate, failure rate weight, project usage frequency, and versatility weight corresponding to the candidate clamp part number. The candidate clamp part numbers are sorted according to the comprehensive score from high to low to generate a sorted list of recommended clamp part numbers. The top-ranked clamp part numbers in the sorted list of recommended clamp part numbers are determined as the recommended clamp part numbers.

6. The installation method of electrical harness clamps based on a collaborative environment as described in claim 1, characterized in that, Using the 3D model of the wire harness clamp and the list of relationships between the wire harness and the wire harness clamp, the wire harness clamp is installed in the wire harness installation model to generate a wire harness installation model including the wire harness clamp, including: Obtain all wire harness segments included in the entire wire harness from the wire harness clamp relationship list, install the wire harness clamp on each wire harness segment that passes through the wire harness clamp, until all wire harness segments have been processed, and generate a wire harness installation model including the wire harness clamps: Using the 3D model of the wire harness clamp, the routing points of the wire harness clamp on the wire harness segment are read, and the routing direction of the wire harness is obtained through the routing points; The clamping direction of the wire harness clamp is obtained through the 3D model of the wire harness clamp; Calculate the angle between the wiring harness routing direction and the clamp direction. When the angle is less than 90°, install the wiring harness clamp in the forward direction. When the included angle is greater than 90°, the wire harness clamp is installed in the reverse direction.

7. The installation method of electrical harness clamps based on a collaborative environment as described in claim 6, characterized in that, Also includes: Using the 3D model of the wire harness clamp and the list of relationships between the wire harness and the wire harness clamp, the following operations are performed in the wire harness installation model before installing the wire harness clamp: Obtain the 3D models of all wire harness clamps and the 3D model of the wire harness in the wire harness installation model, and generate a global environment model; Based on the 3D model of the wire harness clamp and the preset installation position and installation direction of the 3D model of the wire harness clamp on the wire harness segment, collision detection analysis is performed in the global environment model. If interference is detected, at least one new installation position and / or new installation direction that does not interfere with the global environment model is calculated on the path of the wire harness segment. Update the installation position of the wire harness clamp to the new installation position, and / or update the installation direction of the wire harness clamp to the new installation direction.

8. An installation device for electrical wiring harness clamps based on a collaborative environment, characterized in that, include: The relationship list generation module is used to match wire harnesses with wire harness clamps based on the wire harness installation model and generate a relationship list between wire harnesses and wire harness clamps. The 3D model acquisition module is used to obtain the clamp part number that meets the conditions from the clamp resource library, and to obtain the 3D model of the wire harness clamp corresponding to the clamp through the clamp part number; The clamp installation module is used to install the wire harness clamp in the wire harness installation model using the 3D model of the wire harness clamp and the list of relationships between the wire harness and the wire harness clamp, thereby generating a wire harness installation model including the wire harness clamp.

9. A computer device, comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that, When the processor executes the computer program, it implements the installation method of electrical harness clamps based on a collaborative environment as described in any one of claims 1 to 7.

10. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program that performs the installation method of electrical harness clamps based on a collaborative environment according to any one of claims 1 to 7.