Method of making a nylon glass fiber composite flexure hinge

By acquiring the type and size specifications of the nylon-glass fiber composite flexible hinge, and combining this with the environmental and mechanical data input by the operator, the material and process parameters during the manufacturing process are adjusted. This solves the problem that traditional nylon-glass fiber composite flexible hinges cannot be precisely customized, and enables personalized performance adaptation.

CN120588405BActive Publication Date: 2026-04-17ZHEJIANG LONGJI AUTO PARTS
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-26
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

In the traditional manufacturing process of nylon-glass fiber composite flexible hinges, it is difficult to precisely customize them according to specific needs, resulting in performance that cannot fully meet the user's requirements.

Method used

By acquiring data on the type and size specifications of the nylon-glass fiber composite flexible hinge, as well as environmental and mechanical data input by the operator, the material and process parameters in the manufacturing process are adjusted to meet the specific needs of the user.

Benefits of technology

It enables personalized customization of the performance of nylon-glass fiber composite flexible hinges, ensuring that they meet user needs under different environmental and mechanical conditions.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application relates to the field of nylon glass fiber preparation technology, and particularly to a method for preparing a nylon glass fiber composite flexible hinge. The method includes: acquiring composite data; adjusting the composite data and input data from the operator to obtain preparation data; and initiating the preparation process of the nylon glass fiber composite flexible hinge based on the preparation data and a start command from the operator. The nylon glass fiber composite flexible hinge preparation method provided by this application solves the problem that in traditional nylon glass fiber composite flexible hinge preparation processes, the use of general specifications and processes often makes precise customization according to specific needs difficult, resulting in the performance of the prepared nylon glass fiber composite flexible hinge not fully meeting the user's requirements.
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Description

Technical Field

[0001] This application belongs to the field of nylon glass fiber preparation technology, and particularly relates to a method for preparing a nylon glass fiber composite flexible hinge. Background Technology

[0002] Nylon-glass fiber composite flexible hinges are flexible connectors made of nylon (such as polyamide) and glass fiber reinforcement materials. They are commonly used in machinery, electronics, automobiles and other fields to connect and transmit motion.

[0003] In the traditional process of manufacturing nylon-glass fiber composite flexible hinges, general specifications and processes are often used, making it difficult to precisely customize them according to specific needs (such as stress, environment, etc.). As a result, the performance of the manufactured nylon-glass fiber composite flexible hinges cannot fully meet the user's needs. Summary of the Invention

[0004] This application provides a method for preparing a nylon-glass fiber composite flexible hinge, which can solve the problem that in the traditional process of preparing nylon-glass fiber composite flexible hinges, it is often based on general specifications and processes, making it difficult to accurately customize according to specific needs, thus resulting in the performance of the prepared nylon-glass fiber composite flexible hinges not being able to fully meet the user's needs.

[0005] In a first aspect, embodiments of this application provide a method for preparing a nylon-glass fiber composite flexible hinge, comprising:

[0006] Acquire composite data; wherein the composite data includes information reflecting the type of the prepared nylon-glass fiber composite flexible hinge and the dimensional specifications of the prepared nylon-glass fiber composite flexible hinge.

[0007] Adjustments are made based on the composite data and the input data input by the operator to obtain the preparation data; wherein, the input data is used to reflect the environmental type of the prepared nylon glass fiber composite flexible hinge and the forces it bears during use;

[0008] The fabrication process of the nylon-glass fiber composite flexible hinge is initiated based on the prepared data and the start command input by the operator.

[0009] The technical solutions described in this application embodiment have at least the following technical effects:

[0010] The method for preparing nylon-glass fiber composite flexible hinges provided in this application allows for the adjustment of the design and performance of the nylon-glass fiber composite flexible hinges by acquiring data reflecting the type and dimensional specifications of the prepared nylon-glass fiber composite flexible hinges, as well as data input by the operator reflecting the environmental type and the forces borne by the prepared nylon-glass fiber composite flexible hinges during use. This ensures that the performance of the subsequently prepared nylon-glass fiber composite flexible hinges can meet the user's usage requirements.

[0011] In one possible implementation of the first aspect, after initiating the fabrication process of the nylon-glass fiber composite flexible hinge based on the fabrication data and a start command input by the operator, the method further includes:

[0012] In the case of nylon matrix and glass fiber composite, when the number of composite interruption events exceeds the target amount, the current composite process is interrupted, and the composite process is tested in the case of interruption to request the continuation of the previous composite process; wherein, the number of composite interruption events is calculated from the time of the initial interruption of the composite process of nylon matrix and glass fiber, and the number of events is calculated once for each composite interruption event.

[0013] When the occurrence quantity of the composite interruption event is greater than a preset quantity, if the time period from the moment when the occurrence quantity of the composite interruption event is greater than the preset quantity to the moment when the initial composite interruption of the nylon matrix and the glass fiber is less than a target time period, then the temperature information of the nylon matrix and the glass fiber in the preparation equipment is obtained; wherein, the preset quantity is greater than the target quantity;

[0014] If the temperature information reflects the target index, then the composite process information is generated; wherein, the composite process includes the preparation area data corresponding to the nylon matrix and the glass fiber;

[0015] Based on the aforementioned composite process information, continue processing the previous composite process.

[0016] In one possible implementation of the first aspect, the method further includes:

[0017] When continuing to process the previous composite process based on the aforementioned composite process information, the occurrence quantity of the composite interruption event is discarded, and the previously stored moments when the occurrence quantity of the composite interruption event is greater than a preset quantity are also discarded.

[0018] In one possible implementation of the first aspect, the method further includes:

[0019] If the temperature of the nylon matrix and the glass fiber is not within the target temperature range during the composite process, the composite interruption event is generated; or, if the movement of the melt corresponding to the nylon matrix and the glass fiber is not detected within a specified time period, the composite interruption event is generated.

[0020] In one possible implementation of the first aspect, the target index is used to indicate that the temperature of the nylon matrix and the glass fiber during the composite process is within a target temperature range, or to indicate that the temperature of the nylon matrix and the glass fiber during the composite process is within a target temperature range for a specified time, or to indicate that the temperature of the nylon matrix and the glass fiber during the composite process is within a target temperature range for a specified time, and x temperatures obtained within the specified time are all reflected as effective temperatures; wherein, the effective temperature is the temperature at which the difference between the currently obtained temperature and the previously obtained temperature is less than a preset difference, and the currently obtained temperature is greater than the previously obtained temperature, and x is a positive integer greater than 5.

[0021] In one possible implementation of the first aspect, the method further includes:

[0022] If the temperature information is not reflected in the target indicator, the composite process will not be tested, and the determination of whether the temperature information is reflected in the target indicator will continue.

[0023] In one possible implementation of the first aspect, the method further includes:

[0024] If high-performance information exists before the composite process, then the temperature range corresponding to the high-performance information is determined as the target temperature range.

[0025] If high-performance information is not available before the composite process, the temperature range corresponding to the ordinary performance information is determined as the target temperature range.

[0026] In one possible implementation of the first aspect, preparation data is obtained by adjusting the composite data and input data input by the operator, including:

[0027] Fiber orientation data is determined based on the composite data; wherein, the fiber orientation data is used to reflect the arrangement direction and density distribution of glass fibers in the prepared nylon-glass fiber composite flexible hinge;

[0028] If it is determined that there is no reinforcing data in the input data, then stress distribution data is obtained based on the input data and the fiber orientation data; wherein, the stress distribution data is used to reflect the internal stress concentration and deformation in the stress area of ​​the prepared nylon glass fiber composite flexible hinge;

[0029] Based on the stress distribution data, the set data in the preparation data is obtained; wherein, the set data is used to instruct the preparation equipment to adjust the glass fiber laying process and the injection molding parameters of the nylon matrix.

[0030] In one possible implementation of the first aspect, after determining the fiber orientation data based on the composite data, the method further includes:

[0031] If it is determined that there is reinforcing data in the input data, then interface bonding data is obtained based on the reinforcing data; wherein, the reinforcing data carries reinforcing region data and the friction coefficient of the reinforcing material; the interface bonding data is used to reflect the required reinforcing structure on the surface of the prepared nylon glass fiber composite flexible hinge;

[0032] Based on the interface combined with the data, the target data in the preparation data is obtained; wherein, the target data is used to instruct the preparation equipment to adjust the surface treatment process or the composite method of the reinforcing material.

[0033] In a second aspect, embodiments of this application provide a nylon-glass fiber composite flexible hinge fabrication system for implementing the nylon-glass fiber composite flexible hinge fabrication method described in any one of the first aspects above. The nylon-glass fiber composite flexible hinge fabrication system is applied to a nylon-glass fiber composite flexible hinge fabrication equipment, and the system includes:

[0034] An acquisition unit is used to acquire composite data; wherein, the composite data includes information reflecting the type of the prepared nylon-glass fiber composite flexible hinge and the size specifications of the prepared nylon-glass fiber composite flexible hinge.

[0035] The adjustment unit is used to adjust the composite data and the input data input by the operator to obtain the preparation data; wherein, the input data is used to reflect the environmental type of the prepared nylon glass fiber composite flexible hinge and the force it is subjected to during use;

[0036] The start-up unit is used to start the preparation process of the nylon-glass fiber composite flexible hinge according to the preparation data and the start-up command input by the operator.

[0037] Thirdly, embodiments of this application provide a nylon-glass fiber composite flexible hinge manufacturing apparatus, 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 the nylon-glass fiber composite flexible hinge manufacturing method described in any one of the first aspects above.

[0038] Fourthly, embodiments of this application provide a computer-readable storage medium storing a computer program that, when executed by a processor, implements the method described in any of the first aspects above.

[0039] It is understood that the beneficial effects of the second to fourth aspects mentioned above can be found in the relevant descriptions in the first aspect mentioned above, and will not be repeated here. Attached Figure Description

[0040] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art 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.

[0041] Figure 1 This is a schematic flowchart of a method for preparing a nylon-glass fiber composite flexible hinge according to an embodiment of this application;

[0042] Figure 2 This is a schematic diagram of the process for determining whether the occurrence amount of composite interruption events is greater than the target amount in the method for preparing a nylon-glass fiber composite flexible hinge according to an embodiment of this application.

[0043] Figure 3 This is a schematic diagram of the process for determining whether the occurrence of a composite interruption event is greater than a preset amount in the method for preparing a nylon-glass fiber composite flexible hinge according to an embodiment of this application.

[0044] Figure 4 This is a schematic diagram of the nylon-glass fiber composite flexible hinge manufacturing system provided in the embodiments of this application;

[0045] Figure 5 This is a schematic diagram of the nylon-glass fiber composite flexible hinge manufacturing equipment provided in the embodiments of this application. Detailed Implementation

[0046] In the following description, specific details such as particular system architectures and techniques are set forth for illustrative purposes and not for limitation, in order to provide a thorough understanding of the embodiments of this application. However, those skilled in the art will understand that this application may also be implemented in other embodiments without these specific details. In other instances, detailed descriptions of well-known systems, apparatuses, circuits, and methods have been omitted so as not to obscure the description of this application with unnecessary detail.

[0047] It should be understood that, when used in this application specification and the appended claims, the term "comprising" indicates the presence of the described features, integrals, steps, operations, elements and / or components, but does not exclude the presence or addition of one or more other features, integrals, steps, operations, elements, components and / or a collection thereof.

[0048] It should also be understood that the term “and / or” as used in this application specification and the appended claims means any combination of one or more of the associated listed items and all possible combinations, and includes such combinations.

[0049] As used in this application specification and the appended claims, the term "if" may be interpreted, depending on the context, as "when," "once," "in response to determination," or "in response to detection." Similarly, the phrase "if determined" or "if the described condition or event is detected" may be interpreted, depending on the context, as "once determined," "in response to determination," "once the described condition or event is detected," or "in response to the detection of the described condition or event."

[0050] Furthermore, in the description of this application and the appended claims, the terms "first," "second," "third," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0051] References to "one embodiment" or "some embodiments" as described in this specification mean that one or more embodiments of this application include a specific feature, structure, or characteristic described in connection with that embodiment. Therefore, the phrases "in one embodiment," "in some embodiments," "in other embodiments," "in still other embodiments," etc., appearing in different parts of this specification do not necessarily refer to the same embodiment, but rather mean "one or more, but not all, embodiments," unless otherwise specifically emphasized. The terms "comprising," "including," "having," and variations thereof mean "including but not limited to," unless otherwise specifically emphasized.

[0052] In related technologies, nylon-glass fiber composite flexible hinges are flexible connectors made of nylon (such as polyamide) and glass fiber reinforcement materials. They are commonly used in machinery, electronics, automobiles and other fields to connect and transmit motion.

[0053] In the traditional process of manufacturing nylon-glass fiber composite flexible hinges, general specifications and processes are often used, making it difficult to precisely customize them according to specific needs (such as stress, environment, etc.). As a result, the performance of the manufactured nylon-glass fiber composite flexible hinges cannot fully meet the user's needs.

[0054] To address the aforementioned issues, this application provides a method for preparing a nylon-glass fiber composite flexible hinge.

[0055] In this method, by acquiring data reflecting the type of the prepared nylon-glass fiber composite flexible hinge and the size specifications of the prepared nylon-glass fiber composite flexible hinge, as well as data input by the operator reflecting the environmental type of the prepared nylon-glass fiber composite flexible hinge and the forces it bears during use, the design and performance of the nylon-glass fiber composite flexible hinge can be adjusted so that the performance of the subsequently prepared nylon-glass fiber composite flexible hinge can meet the user's usage requirements.

[0056] The method for preparing nylon glass fiber composite flexible hinges provided in this application embodiment can be applied to a nylon glass fiber composite flexible hinge preparation equipment. In this case, the nylon glass fiber composite flexible hinge preparation equipment is the main body for executing the nylon glass fiber composite flexible hinge preparation method provided in this application embodiment. This application embodiment does not impose any restrictions on the specific type of nylon glass fiber composite flexible hinge preparation equipment.

[0057] For example, a nylon-glass fiber composite flexible hinge manufacturing equipment may include a nylon-glass fiber composite flexible hinge manufacturing device and a control device electrically connected to the nylon-glass fiber composite flexible hinge manufacturing device. For example, the nylon-glass fiber composite flexible hinge manufacturing device may include a feeder (for conveying raw materials to a heating device), a heating device (for heating the raw materials to a molten state), a forming device (such as an extrusion molding machine, for extruding the molten raw materials into the shape of a hinge), and a curing oven (for curing the material after hinge forming). The control device can control the feeder to convey the raw materials to the heating device, control the heating device to heat the raw materials to a molten state, control the forming device to extrude the molten raw materials into the shape of a hinge, and control the curing oven to cure the material after hinge forming, to obtain the finished nylon-glass fiber composite flexible hinge.

[0058] For example, the control device can be a microcontroller, mobile phone, tablet computer, laptop computer, ultra-mobile personal computer (UMPC), netbook, desktop computer, computing device, or computer, laptop computer, handheld communication device, handheld computing device, etc. connected to a wireless modem.

[0059] To better understand the method for preparing nylon glass fiber composite flexible hinges provided in the embodiments of this application, the specific implementation process of the method for preparing nylon glass fiber composite flexible hinges provided in the embodiments of this application will be described by way of example below.

[0060] Figure 1A schematic flowchart of the method for preparing a nylon-glass fiber composite flexible hinge according to an embodiment of this application is shown. The method for preparing a nylon-glass fiber composite flexible hinge includes:

[0061] S100, Obtain composite data. The composite data includes information reflecting the type of the fabricated nylon-glass fiber composite flexible hinge and its dimensional specifications.

[0062] It is understandable that key dimensions (such as hinge thickness, spacing, and width) of the nylon-glass fiber composite flexible hinge sample provided by the user can be measured in real time using a laser rangefinder or optical scanner to obtain composite data. Alternatively, the type and size specifications of the fabricated nylon-glass fiber composite flexible hinge can be obtained from design documents or product specifications. Nylon-glass fiber composite flexible hinges can be classified by structure into single-axis flexible hinge types (e.g., a flexible connection with only one axis of rotation, allowing free rotation in one direction) and multi-axis flexible hinge types (e.g., having two or more axes of rotation, allowing free rotation in two directions).

[0063] This setup allows for real-time acquisition of size and type data, providing data support for subsequent process adjustments and ensuring that the nylon-glass fiber composite flexible hinges produced later are consistent with expectations in terms of size and type. This ensures that the performance of the nylon-glass fiber composite flexible hinges produced later can meet the user's needs.

[0064] S200: Adjustments are made based on the composite data and the input data provided by the operator to obtain the preparation data. The input data reflects the environmental type of the prepared nylon-glass fiber composite flexible hinge and the forces it experiences during use.

[0065] It is understandable that the environments in which nylon-glass fiber composite flexible hinges operate can include temperature-sensitive environments, humidity-sensitive environments, and chemically corrosive environments. The forces they withstand during use can include tensile force, compressive force, torque, and shear force. Manufacturing data includes material proportions, processing parameters, and dimensional tolerance ranges.

[0066] For example, based on environmental conditions and mechanical requirements, a suitable material ratio is selected, and all adjusted parameters are summarized to form a complete data file. For instance, in high-temperature environments, the glass fiber content can be increased to improve the hinge's rigidity and heat resistance; in corrosive environments, corrosion-resistant additives can be added or coating techniques can be employed. If the input data indicates that the hinge needs to withstand high pressure or long-term use, the manufacturing process can be adjusted, for example, by optimizing the injection molding process or improving the heat treatment process.

[0067] This setup, by adjusting the material and structural parameters according to the actual environment (temperature, humidity, corrosion, etc.) and stress conditions (tension, compression, torque, etc.), helps the performance of the subsequently prepared nylon-glass fiber composite flexible hinge to meet the user's needs.

[0068] S300 initiates the fabrication process of the nylon-glass fiber composite flexible hinge based on the preparation data and the start command input by the operator.

[0069] It is understandable that the start command input by the operator may include start time, production quantity, batch of materials used, and production priority.

[0070] For example, the system can verify that all preparation data (such as material ratios, processing techniques, dimensional tolerances, etc.) are complete and meet the requirements of the start-up command. For instance, if the start-up command requires the production of hinges suitable for high-temperature environments, the system needs to confirm that the appropriate glass fiber content, nylon formulation, and other necessary adjustments (such as heat-resistant additives) have been selected. Based on the preparation data, the system sets the corresponding production process parameters, such as the temperature setting of the heating device and the curing time of the curing oven.

[0071] By acquiring data reflecting the type and dimensional specifications of the prepared nylon-glass fiber composite flexible hinge, as well as data input by the operator reflecting the environmental type and forces experienced by the prepared nylon-glass fiber composite flexible hinge during use, the design and performance of the nylon-glass fiber composite flexible hinge can be adjusted so that the performance of subsequently prepared nylon-glass fiber composite flexible hinges can meet the user's needs.

[0072] In one possible implementation, after step S300, when the fabrication process of the nylon-glass fiber composite flexible hinge is initiated based on the fabrication data and the start command input by the operator, the fabrication method of the nylon-glass fiber composite flexible hinge further includes:

[0073] S310, in the case of nylon matrix and glass fiber composite, when the number of composite interruption events exceeds the target amount, the current composite process is interrupted, and the composite process is re-run while the composite process is interrupted to request the continuation of the previous composite process. Specifically, the number of composite interruption events is calculated starting from the initial interruption of the nylon matrix and glass fiber composite process, and the number is calculated once for each composite interruption event.

[0074] Scenario 1: During the fabrication process, fabrication is permitted when the temperature of the nylon matrix and glass fiber in the fabrication equipment is within the target temperature range (e.g., the target temperature range could be 240°C to 270°C). Fabrication is interrupted when the temperature of the nylon matrix and glass fiber in the fabrication equipment is not within the target temperature range. When the temperature of the nylon matrix and glass fiber in the preparation equipment is within the critical temperature range (where the critical temperature range can be the range immediately adjacent to the end of the target temperature range, for example, the critical temperature range can be 239° to 241°), due to the potential interference of air, the temperature may fluctuate within a short period of time. For example, the temperature may be within the target temperature range at one moment (e.g., 240°), but not at the next moment (e.g., 239°), then back to the target temperature range (e.g., 241°), and then again not at the next moment (e.g., 239.5°). This results in a situation where preparation is carried out when the temperature is within the target temperature range, but is interrupted when the temperature is not within the target temperature range (i.e., a compound interruption), and so on, with the temperature returning to the target temperature range and then again not being within the target temperature range (i.e., a compound interruption). In other words, several preparation interruptions may occur consecutively within a short period of time.

[0075] It should be noted that, in order to ensure the continuity of the preparation process during the composite process interruption, the conventional design is to test run the composite process at regular intervals (e.g., every 10 seconds). When the temperature of the nylon matrix and glass fiber in the preparation equipment is within the critical temperature range, instructions to run the composite process will be generated without a purpose, resulting in several consecutive preparation interruptions.

[0076] In summary, steps S310, S320, S330 and S340 of this application can solve the problem described in scenario 1. For specific implementation steps, please refer to the relevant description below.

[0077] It is understandable that composite interruption events are used to indicate that the preparation process is interrupted because the temperature does not meet the preparation conditions. Each time a composite interruption event is obtained, the occurrence amount can be calculated. By comparing the calculated occurrence amount with the target amount, it can be determined whether the occurrence amount of the composite interruption event is greater than the target amount.

[0078] For example, in the case of nylon matrix and glass fiber composite, if the number of composite interruption events is greater than the target amount, then the current temperature of the nylon matrix and glass fiber in the preparation equipment may be in the critical temperature range, which may interrupt the current composite process.

[0079] Scenario 2: In the event of consecutive fabrication interruptions, the temperature of the nylon matrix and glass fiber in the fabrication equipment at the next moment might be within the target temperature range (i.e., the temperature of the nylon matrix and glass fiber in the fabrication equipment at the next moment does not continue to be within the critical temperature range; that is, the fabrication interruption is only occasional, not continuous). Therefore, in the event of an interrupted composite process, a trial run of the composite process can be conducted to request the resumption of the previous composite process. If the temperature of the nylon matrix and glass fiber in the fabrication equipment at the next moment is still within the critical temperature range, then several more fabrication interruptions will still occur. If the temperature of the nylon matrix and glass fiber in the fabrication equipment at the next moment does not continue to be within the critical temperature range, then several more fabrication interruptions will not occur. Thus, in the event of an interrupted composite process, a trial run of the composite process can provide an opportunity for trial and error in the case of occasional fabrication interruptions.

[0080] This setup allows for a trial-and-error opportunity in the event of occasional preparation interruptions.

[0081] S320, when the number of composite interruption events is greater than a preset amount, if the time interval from the moment when the number of composite interruption events exceeds the preset amount to the moment when the initial composite interruption of the nylon matrix and glass fiber occurs is less than a target time interval, then the temperature information of the nylon matrix and glass fiber in the preparation equipment is acquired. The preset amount is greater than the target amount.

[0082] It is understandable that when the number of composite interruption events exceeds the preset amount, if the time interval between the moment when the number of composite interruption events exceeds the preset amount and the moment when the composite process of the nylon matrix and glass fiber is first interrupted is shorter than the target time interval, it indicates that the temperature of the nylon matrix and glass fiber in the preparation equipment is very likely to be within the critical temperature range, and very unlikely to be an occasional occurrence of preparation interruption, rather than a continuous occurrence of preparation interruption. In this case, the composite process can be re-run after the temperature meets certain indicators. This is because if the temperature does not meet certain indicators, even if the composite process is re-run, the preparation will still be interrupted due to the temperature not meeting the preparation conditions, meaning that the preparation will still be interrupted several times.

[0083] This setup allows for the determination of whether the temperature meets the specifications when the nylon matrix and glass fiber are in the critical temperature range of the preparation equipment, without the need for the conventional design of running the composite process at regular intervals. This avoids generating instructions to run the composite process without a clear purpose, which could lead to several consecutive interruptions in the preparation process.

[0084] S330, if the temperature information reflects the target indicator, then the composite process information is generated. This composite process includes data on the preparation areas corresponding to the nylon matrix and glass fiber.

[0085] It is understood that the target index is used to indicate whether the temperature of the nylon matrix and glass fiber is within the target temperature range during the composite process, or to indicate whether the temperature of the nylon matrix and glass fiber is within the target temperature range for a specified time during the composite process, or to indicate whether the temperature of the nylon matrix and glass fiber is within the target temperature range for a specified time during the composite process, and all x temperatures obtained within the specified time are reflected as valid temperatures. The valid temperature is the difference between the currently obtained temperature and the previously obtained temperature that is less than a preset difference. x is a positive integer greater than 5. The preparation equipment includes multiple preparation areas, and each preparation area can independently run a composite process.

[0086] For example, if the temperature information reflects the target index, it means that the current temperature of the nylon matrix and glass fiber in the preparation equipment is within the target temperature range. That is, the instruction to run the composite process at this time will not result in several consecutive preparation interruptions. Therefore, the information to run the composite process can be generated to instruct the nylon matrix and glass fiber composite process to run in the corresponding preparation area that meets the index.

[0087] This setup allows for the elimination of the need for conventional design-based trial runs of the composite process at regular intervals when the nylon matrix and glass fiber are exposed to very high temperatures within the critical temperature range of the preparation equipment. Instead, it determines whether the temperature meets the specifications and generates information to run the composite process when the temperature meets the specifications. This avoids the situation where the composite process is interrupted several times in a row due to the random generation of instructions to run the composite process.

[0088] S340, based on the information from the running composite process, continues processing the previous composite process.

[0089] It is understandable that each preparation area in the preparation equipment can be traversed to find the same area as the composite process information. When the same area is found, an instruction to run the composite process is generated to indicate that the previous composite process should continue.

[0090] This setup avoids misidentifying the preparation area. If other preparation areas also have the problem described in Scenario 1, it can cause several preparation interruptions in those areas, thus affecting the preparation process.

[0091] In one possible implementation, the method for fabricating the nylon-glass fiber composite flexible hinge further includes:

[0092] When continuing to process the previous composite process based on the information from the composite process, discard the occurrence of composite interruption events and discard the moments when the occurrence of previously stored composite interruption events exceeds a preset amount.

[0093] Scenario 2: When continuing to process the previous composite process, occasional interruptions may occur, rather than continuous interruptions (i.e., the temperature of the nylon matrix and glass fiber in the fabrication equipment is in the critical temperature range at the current moment, but the temperature of the nylon matrix and glass fiber in the fabrication equipment does not continue to be in the critical temperature range at the next moment). If the previous occurrence rate is continued to be used, the current occurrence rate will be greater than the preset rate. That is, when a composite interruption event is obtained, the step of judging whether the temperature information is reflected in the target indicator is directly triggered, and no trial and error opportunity is given to occasional fabrication interruptions.

[0094] Scenario 3: When continuing to process the previous composite process based on the running composite process information, the current composite process may not have any abnormalities (i.e. the current composite process is completed successfully). When processing the next composite process, if the previous occurrence amount is continued, it will also cause the current occurrence amount to be greater than the preset amount. That is, when a composite interruption event is obtained, the step of judging whether the temperature information is reflected as the target indicator is directly triggered, and no trial and error opportunity is given for occasional preparation interruptions.

[0095] Therefore, when continuing to process the previous composite process based on the information of the running composite process, the occurrence of composite interruption events can be discarded (for example, the occurrence can be recalculated, that is, after continuing to process the previous composite process, the occurrence can be calculated separately for each composite interruption event obtained), and the times when the occurrence of composite interruption events stored previously are greater than a preset amount can be discarded, for example, the times when the occurrence of composite interruption events is greater than a preset amount after continuing to process the previous composite process can be obtained.

[0096] This setting avoids the current occurrence of composite interruption events continuing to use the previous occurrence amount, which would cause the step of judging whether the temperature information is reflected as the target indicator to be triggered directly when a composite interruption event is obtained, and would not give occasional preparation interruptions a chance to try and fail.

[0097] In one possible implementation, the method for fabricating the nylon-glass fiber composite flexible hinge further includes:

[0098] A composite interruption event is generated if the temperatures of the nylon matrix and glass fiber are not within the target temperature range during the composite process. Alternatively, a composite interruption event is generated if no molten movement of the corresponding nylon matrix and glass fiber is detected within a specified time period.

[0099] It is understandable that if the temperatures of the nylon matrix and glass fiber are not within the target temperature range during the lamination process, lamination cannot continue. Therefore, a lamination interruption event can be generated to indicate that the preparation process is interrupted due to the temperature not meeting the preparation conditions. If no molten movement of the nylon matrix and glass fiber is observed within a specified time, it indicates that the current temperature has not heated the nylon matrix and glass fiber to a molten state. In this case, lamination cannot continue, and a lamination interruption event can be generated to indicate that the preparation process is interrupted due to the temperature not meeting the preparation conditions.

[0100] This setup avoids continuing preparation under unsuitable conditions, ensuring the quality of the final product.

[0101] In one possible implementation, the target index is used to indicate whether the temperature of the nylon matrix and glass fiber is within a target temperature range during the lamination process, or to indicate whether the temperature of the nylon matrix and glass fiber is within a target temperature range for a specified time during the lamination process, or to indicate whether the temperature of the nylon matrix and glass fiber is within a target temperature range for a specified time during the lamination process, and all x temperatures obtained within the specified time are considered valid temperatures. Here, a valid temperature is defined as the difference between the currently obtained temperature and the previously obtained temperature being less than a preset difference, and the currently obtained temperature being greater than the previously obtained temperature, where x is a positive integer greater than 5.

[0102] It is understandable that during the composite process, the temperatures of the nylon matrix and glass fiber are within the target temperature range for a specified time, and all x temperatures obtained within the specified time are reflected as effective temperatures. This indicates that the possibility of the current temperature being close to the end of the target temperature range is very small, meaning that the possibility of the current temperature being stable within the target temperature range is very high.

[0103] This setting provides data support for subsequent judgments on whether the temperature meets the target, and helps generate information for running the composite process when the temperature meets the target. It can avoid generating instructions to run the composite process aimlessly, which could lead to several consecutive interruptions in the preparation process.

[0104] In one possible implementation, the method for fabricating the nylon-glass fiber composite flexible hinge further includes:

[0105] If the temperature information does not reflect the target indicator, the composite process will not be tested, and it will be necessary to continue to determine whether the temperature information reflects the target indicator.

[0106] It's understandable that if the temperature information doesn't reflect the target performance, it means the nylon matrix and glass fiber are within the critical temperature range in the fabrication equipment. In this case, if the conventional design involves running the composite process at regular intervals (e.g., every 10 seconds), it will generate commands to run the composite process without a clear purpose, leading to several consecutive fabrication interruptions. Therefore, it's advisable not to run the composite process again and continue to determine whether the temperature information reflects the target performance.

[0107] This setting can prevent the random generation of instructions to run the composite process, which could lead to several consecutive interruptions in the preparation process.

[0108] In one possible implementation, the method for fabricating the nylon-glass fiber composite flexible hinge further includes:

[0109] If high-performance information exists before composite processing (S350), then the temperature range corresponding to the high-performance information is determined as the target temperature range.

[0110] Understandably, high-performance information typically includes the material’s optimal processing parameters, such as the optimal melting temperature.

[0111] For example, an ideal temperature range is extracted from the high-performance information, meaning the temperature range within which the material achieves optimal performance. Based on this high-performance information, a safe and efficient upper and lower limit for the temperature range is determined to avoid negative impacts on the composite performance caused by excessively high or low temperatures. The obtained temperature range is then used as the target temperature range in the composite process for real-time monitoring to ensure that the temperature meets the process requirements.

[0112] This setting provides data support for subsequent judgments on whether the temperature meets the target, and helps generate information for running the composite process when the temperature meets the target. It can avoid generating instructions to run the composite process aimlessly, which could lead to several consecutive interruptions in the preparation process.

[0113] If no high-performance information is available before S360 is composited, then the temperature range corresponding to the ordinary performance information is determined as the target temperature range.

[0114] It is understandable that general performance information may include standard process parameters of materials, such as industry-standard processing temperature range information and temperature range information accumulated from past production experience.

[0115] For example, based on the temperature requirements provided in the general performance information, the system determines the suitable processing temperature range for the material. For instance, in the composite process of a common nylon matrix and glass fiber, if there are no high-performance requirements, a relatively lenient temperature range can be set. This range ensures effective composite formation without the risk of overheating or thermal degradation. Once a suitable temperature range is extracted from the general performance information, the system sets that temperature range as the target temperature range.

[0116] This setting provides data support for subsequent judgments on whether the temperature meets the target, and helps generate information for running the composite process when the temperature meets the target. It can avoid generating instructions to run the composite process aimlessly, which could lead to several consecutive interruptions in the preparation process.

[0117] In one possible implementation, S200 involves adjusting the preparation data based on the composite data and the input data input by the operator, including:

[0118] S201, Determine fiber orientation data based on composite data. Fiber orientation data reflects the arrangement direction and density distribution of glass fibers in the prepared nylon-glass fiber composite flexible hinge.

[0119] It is understandable that composite data also includes data such as material composition, fiber type, and size.

[0120] For example, composite data is input into a finite element analysis (such as FEA) or flow model to simulate melt flow trajectories and predict the orientation tensor of glass fibers during injection molding or molding. The calculated orientation tensor is converted into fiber orientation directions (angles) and fiber density distributions in each direction to reflect the fiber arrangement and density distribution in the flexible hinge. For instance, the orientation tensor can be decomposed into eigenvalues, with the largest eigenvalue representing the dominant fiber orientation direction. The direction angle of this vector (in two dimensions) or direction cosine (in three dimensions) is the dominant fiber orientation angle. The 0-180 degree range is divided into multiple intervals, and the fiber density percentage in each interval is calculated to reflect the density distribution.

[0121] This setup allows for the prediction of fiber arrangement and density distribution within the flexible hinge, providing data support for subsequent parameter adjustments.

[0122] S202, if no reinforcement data is found in the input data, stress distribution data is obtained based on the input data and fiber orientation data. This stress distribution data reflects the internal stress concentration and deformation within the stress-bearing area of ​​the prepared nylon-glass fiber composite flexible hinge.

[0123] It is understandable that the input data also includes the basic physical parameters of the material (such as the elastic modulus of the nylon matrix, Poisson's ratio, and the volume fraction of glass fiber).

[0124] For example, numerical calculation methods such as finite element analysis (FEA) are used, combined with input data and fiber orientation data, to simulate the stress concentration and deformation process of composite materials under stress. Through numerical simulation, the stress distribution and deformation of the composite material in different stress regions can be calculated. The calculation results are then post-processed to extract the stress concentration and deformation indices of key areas, generating stress distribution data to guide the adjustment of process parameters in the manufacturing equipment.

[0125] This setting provides data support for subsequent parameter adjustments.

[0126] S203, Based on the stress distribution data, the set data in the preparation data is obtained. The set data is used to instruct the preparation equipment to adjust the glass fiber laying process and the injection molding parameters of the nylon matrix.

[0127] It is understandable that identifying the areas with the highest stress and greatest deformation in the stress distribution data allows for adjusting the fiber layup direction based on the stress concentration direction, aligning the fiber's main direction with the stress direction to improve load-bearing capacity. Based on the deformation in the stress region, the injection temperature, pressure, and cooling rate are adjusted to optimize the bonding performance between the matrix and fibers, reducing internal stress and residual stress. For example, in high-stress areas, the injection pressure can be increased to ensure sufficient wetting and bonding between the matrix and fibers. This generates setting data to instruct the manufacturing equipment to adjust the glass fiber layup process and the injection parameters of the nylon matrix.

[0128] This setup, by adjusting the fiber placement direction and the injection molding process of the nylon matrix based on stress distribution data, enables the composite material to exhibit better mechanical properties in practical applications. It helps to improve the tensile strength, rigidity, and fatigue resistance of the material, thereby enhancing the load-bearing capacity and durability of the composite material.

[0129] In one possible implementation, after determining the fiber orientation data based on the composite data in step S201, the method for preparing the nylon-glass fiber composite flexible hinge further includes:

[0130] S211, if the input data includes reinforcement data, then the interface bonding data is obtained based on the reinforcement data. The reinforcement data carries data on the reinforcement region and the friction coefficient of the reinforcement material. The interface bonding data reflects the required reinforcement structure on the surface of the prepared nylon-glass fiber composite flexible hinge.

[0131] It is understandable that enhancement data can be data that identifies specific areas in a composite component that require surface enhancement, such as areas prone to wear or fatigue.

[0132] For example, based on the reinforcement region data, it is determined which regions have higher reinforcement material density or more important mechanical requirements. Then, based on these regions, it is determined which surfaces of the fabricated nylon-glass fiber composite flexible hinge require reinforcement structures, thus obtaining interfacial bonding data. For instance, if certain regions have a higher reinforcement material density, it indicates that these regions will bear a greater load, and therefore the interfacial bonding strength can be specifically optimized.

[0133] This setting provides data support for subsequent parameter adjustments.

[0134] S221, based on the interface combination data, the target data in the preparation data is obtained. The target data is used to indicate the adjustment of the surface treatment process or the composite method of the reinforcing materials in the preparation equipment.

[0135] Understandably, by analyzing the interface and data, it's possible to determine which areas require surface treatment. Specific surface treatment methods can include: increasing surface roughness to enhance the friction between the fiber and the matrix; applying an adhesive or reinforcing coating to the surface of the reinforcing material to improve interfacial adhesion; and treating the fiber or matrix surface using chemical methods to increase its affinity with the reinforcing material and enhance interfacial adhesion—that is, the target data in the preparation data.

[0136] This setup, based on the interface and combined data, yields the target data in the preparation data, enabling the composite material to exhibit better mechanical properties in practical applications, thus ensuring that the final product meets customer needs.

[0137] It should be understood that the sequence number of each step in the above embodiments does not imply the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this application.

[0138] Corresponding to the nylon glass fiber composite flexible hinge preparation method described in the above embodiments, this application also provides a nylon glass fiber composite flexible hinge preparation system, wherein each unit of the system can realize each step of the nylon glass fiber composite flexible hinge preparation method. Figure 4 A structural block diagram of the nylon-glass fiber composite flexible hinge manufacturing system provided in the embodiments of this application is shown. For ease of explanation, only the parts related to the embodiments of this application are shown.

[0139] Reference Figure 4 The nylon-glass fiber composite flexible hinge fabrication system includes:

[0140] An acquisition unit is used to acquire composite data. This composite data includes information reflecting the type and dimensions of the fabricated nylon-glass fiber composite flexible hinge.

[0141] The adjustment unit is used to adjust the data based on the composite data and the input data provided by the operator to obtain the preparation data. The input data reflects the environmental type of the prepared nylon-glass fiber composite flexible hinge and the forces it experiences during use.

[0142] The start-up unit is used to initiate the fabrication process of the nylon-glass fiber composite flexible hinge based on the fabrication data and the start-up command input by the operator.

[0143] It should be noted that the information interaction and execution process between the above systems / units are based on the same concept as the method embodiments of this application. For details on their specific functions and technical effects, please refer to the method embodiments section, and they will not be repeated here.

[0144] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the above-described division of functional units is merely an example. In practical applications, the above functions can be assigned to different functional units as needed, that is, the internal structure of the system can be divided into different functional units to complete all or part of the functions described above. The functional units in the embodiments can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software functional unit. Furthermore, the specific names of the functional units are only for easy differentiation and are not intended to limit the scope of protection of this application. The specific working process of the units in the above system can be referred to the corresponding process in the foregoing method embodiments, and will not be repeated here.

[0145] This application also provides an apparatus for preparing nylon-glass fiber composite flexible hinges. Figure 5 This is a schematic diagram of the structure of a nylon-glass fiber composite flexible hinge fabrication device provided in an embodiment of this application. Figure 5 As shown, the nylon-glass fiber composite flexible hinge fabrication apparatus 6 of this embodiment includes: at least one processor 60 ( Figure 5 Only one is shown in the image), at least one memory 61 ( Figure 5(Only one is shown in the image) and a computer program 62 stored in the at least one memory 61 and executable on the at least one processor 60. When the processor 60 executes the computer program 62, it causes the nylon glass fiber composite flexible hinge manufacturing equipment 6 to perform the steps in any of the above-described embodiments of the nylon glass fiber composite flexible hinge manufacturing methods, or causes the nylon glass fiber composite flexible hinge manufacturing equipment 6 to perform the functions of each unit in the above-described system embodiments.

[0146] Exemplarily, the computer program 62 may be divided into one or more units, which are stored in the memory 61 and executed by the processor 60 to complete this application. The one or more units may be a series of computer program instruction segments capable of performing a specific function, which describe the execution process of the computer program 62 in the nylon-glass fiber composite flexible hinge manufacturing device 6.

[0147] The nylon glass fiber composite flexible hinge manufacturing equipment 6 may include a nylon glass fiber composite flexible hinge manufacturing device and a control device electrically connected to the nylon glass fiber composite flexible hinge manufacturing device. For example, the nylon glass fiber composite flexible hinge manufacturing device may include a feeder (for conveying raw materials to a heating device), a heating device (for heating the raw materials to a molten state), a forming device (such as an extrusion molding machine, for extruding the molten raw materials into the shape of a hinge), and a curing oven (for curing the material after hinge forming). The control device may control the feeder to convey the raw materials to the heating device, or control the heating device to heat the raw materials to a molten state, or control the forming device to extrude the molten raw materials into the shape of a hinge, or control the curing oven to cure the material after hinge forming, to obtain the finished nylon glass fiber composite flexible hinge. The nylon glass fiber composite flexible hinge manufacturing equipment 6 may include, but is not limited to, a processor 60 and a memory 61. Those skilled in the art will understand that... Figure 5 This is merely an example of the nylon-glass fiber composite flexible hinge manufacturing equipment 6 and does not constitute a limitation on the nylon-glass fiber composite flexible hinge manufacturing equipment 6. It may include more or fewer components than shown in the figure, or combine certain components, or different components, such as input / output devices, network access devices, buses, etc.

[0148] The processor 60 can be a Central Processing Unit (CPU), or it can be other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor can be a microprocessor or any conventional processor.

[0149] In some embodiments, the memory 61 may be an internal storage unit of the nylon-glass fiber composite flexible hinge fabrication device 6, such as a hard drive or memory of the nylon-glass fiber composite flexible hinge fabrication device 6. In other embodiments, the memory 61 may be an external storage device of the nylon-glass fiber composite flexible hinge fabrication device 6, such as a plug-in hard drive, smart media card (SMC), secure digital (SD) card, flash card, etc., equipped on the nylon-glass fiber composite flexible hinge fabrication device 6. Further, the memory 61 may include both internal storage units and external storage devices of the nylon-glass fiber composite flexible hinge fabrication device 6. The memory 61 is used to store operating systems, applications, bootloaders, data, and other programs, such as the program code of the computer program. The memory 61 can also be used to temporarily store data that has been output or will be output.

[0150] This application also provides a computer-readable storage medium storing a computer program that, when executed by a processor, implements the steps in any of the above method embodiments.

[0151] This application provides a computer program product that, when run on a nylon-glass fiber composite flexible hinge manufacturing device, enables the nylon-glass fiber composite flexible hinge manufacturing device to perform the steps described in any of the above method embodiments.

[0152] If the integrated unit is implemented as 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, all or part of the processes in the methods of the above embodiments of this application can be implemented by a computer program instructing related hardware. The computer program can be stored in a computer-readable storage medium, and when executed by a processor, it can implement the steps of the various method embodiments described above. The computer program includes computer program code, which can be in the form of source code, object code, executable files, or certain intermediate forms. The computer-readable medium can include at least: any entity or device capable of carrying the computer program code to the nylon-glass fiber composite flexible hinge manufacturing equipment, a recording medium, a computer memory, a read-only memory (ROM), a random access memory (RAM), an electrical carrier signal, a telecommunication signal, and a software distribution medium. Examples include USB flash drives, portable hard drives, magnetic disks, or optical disks.

[0153] In the above embodiments, the descriptions of each embodiment have different focuses. For parts that are not described in detail or recorded in a certain embodiment, please refer to the relevant descriptions of other embodiments.

[0154] Those skilled in the art will recognize that the units and algorithm steps of the various examples described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are implemented in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.

[0155] In the embodiments provided in this application, it should be understood that the disclosed nylon-glass fiber composite flexible hinge fabrication equipment, nylon-glass fiber composite flexible hinge fabrication system, and nylon-glass fiber composite flexible hinge fabrication method can be implemented in other ways. For example, the embodiments of the nylon-glass fiber composite flexible hinge fabrication equipment and nylon-glass fiber composite flexible hinge fabrication system described above are merely illustrative. For instance, the division of units is merely a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the displayed or discussed mutual coupling or direct coupling or communication connection may be an indirect coupling or communication connection through some interfaces, devices, or units, and may be electrical, mechanical, or other forms.

[0156] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0157] The above-described embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application, and should all be included within the protection scope of this application.

Claims

1. A method of making a nylon glass fiber composite flexure hinge, the method comprising: providing a glass fiber preform; providing a nylon preform; and combining the glass fiber preform and the nylon preform to form a nylon glass fiber composite flexure hinge. The method includes: Acquire composite data; wherein the composite data includes information reflecting the type of the prepared nylon-glass fiber composite flexible hinge and the dimensional specifications of the prepared nylon-glass fiber composite flexible hinge. Adjustments are made based on the composite data and the input data input by the operator to obtain the preparation data; wherein, the input data is used to reflect the environmental type of the prepared nylon glass fiber composite flexible hinge and the forces it bears during use; The preparation process of the nylon-glass fiber composite flexible hinge is initiated based on the preparation data and the start command input by the operator. The method further includes, after initiating the fabrication process of the nylon-glass fiber composite flexible hinge based on the fabrication data and the start command input by the operator: In the case of nylon matrix and glass fiber composite, preparation is allowed when the temperature of the nylon matrix and glass fiber in the preparation equipment is within the target temperature range. Preparation is interrupted when the temperature of the nylon matrix and glass fiber in the preparation equipment is not within the target temperature range. When the occurrence of composite interruption events is greater than the target amount, the current composite process is interrupted, and the composite process is run again in the case of interruption to request the continuation of the previous composite process. The occurrence of composite interruption events is calculated from the time of the initial interruption of the composite process of the nylon matrix and glass fiber, and the occurrence amount is calculated once for each composite interruption event. When the occurrence quantity of the composite interruption event is greater than a preset quantity, if the time period from the moment when the occurrence quantity of the composite interruption event is greater than the preset quantity to the moment when the initial composite interruption of the nylon matrix and the glass fiber is less than a target time period, then the temperature information of the nylon matrix and the glass fiber in the preparation equipment is obtained; wherein, the preset quantity is greater than the target quantity; If the temperature information reflects the target index, then the composite process information is generated; wherein, the composite process includes the preparation area data corresponding to the nylon matrix and the glass fiber; Based on the aforementioned composite process information, continue processing the previous composite process; The target index is used to indicate that the temperature of the nylon matrix and the glass fiber is within a target temperature range during the composite process, or to indicate that the temperature of the nylon matrix and the glass fiber is within a target temperature range for a specified time during the composite process, or to indicate that the temperature of the nylon matrix and the glass fiber is within a target temperature range for a specified time during the composite process, and x temperatures obtained within the specified time are all considered valid temperatures; wherein, the valid temperature is defined as the difference between the currently obtained temperature and the previously obtained temperature being less than a preset difference, and the currently obtained temperature being greater than the previously obtained temperature, and x is a positive integer greater than 5; Adjustments are made based on the composite data and the input data entered by the operator to obtain the preparation data, including: Fiber orientation data is determined based on the composite data; wherein, the fiber orientation data is used to reflect the arrangement direction and density distribution of glass fibers in the prepared nylon-glass fiber composite flexible hinge; If it is determined that there is no reinforcing data in the input data, then stress distribution data is obtained based on the input data and the fiber orientation data; wherein, the stress distribution data is used to reflect the internal stress concentration and deformation in the stress area of ​​the prepared nylon glass fiber composite flexible hinge; Based on the stress distribution data, the set data in the preparation data is obtained; wherein, the set data is used to instruct the preparation equipment to adjust the glass fiber laying process and the injection molding parameters of the nylon matrix.

2. The method of making a nylon glass fiber composite flexural hinge of claim 1, wherein, The method further includes: When continuing to process the previous composite process based on the aforementioned composite process information, the occurrence quantity of the composite interruption event is discarded, and the previously stored moments when the occurrence quantity of the composite interruption event is greater than a preset quantity are also discarded.

3. The method for preparing the nylon-glass fiber composite flexible hinge as described in claim 1, characterized in that, The method further includes: If the temperature of the nylon matrix and the glass fiber is not within the target temperature range during the composite process, the composite interruption event is generated; or, if the movement of the melt corresponding to the nylon matrix and the glass fiber is not detected within a specified time period, the composite interruption event is generated.

4. The method of making a nylon glass fiber composite flexural hinge of claim 1, wherein, The method further includes: If the temperature information is not reflected in the target indicator, the composite process will not be tested, and the determination of whether the temperature information is reflected in the target indicator will continue.

5. The method of making a nylon glass fiber composite flexural hinge of claim 3, wherein, The method further includes: If high-performance information exists before the composite process, then the temperature range corresponding to the high-performance information is determined as the target temperature range. If high-performance information is not available before the composite process, the temperature range corresponding to the ordinary performance information is determined as the target temperature range.

6. The method of making a nylon glass fiber composite flexural hinge of claim 1, wherein, After determining the fiber orientation data based on the composite data, the method further includes: If it is determined that there is reinforcing data in the input data, then interface bonding data is obtained based on the reinforcing data; wherein, the reinforcing data carries reinforcing region data and the friction coefficient of the reinforcing material; the interface bonding data is used to reflect the required reinforcing structure on the surface of the prepared nylon glass fiber composite flexible hinge; Based on the interface combined with the data, the target data in the preparation data is obtained; wherein, the target data is used to instruct the preparation equipment to adjust the surface treatment process or the composite method of the reinforcing material.

7. A computer-readable storage medium storing a computer program, characterized in that, When the computer program is executed by a processor, it implements the method as described in any one of claims 1 to 6.

Citation Information

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