New energy photovoltaic power generation cable manufacturing method, system and equipment

Through the coordinated work of the first manufacturing device and the second manufacturing device, the manufacturing process parameters are updated in a timely manner and outdated information is cleared, which solves the product quality problems caused by changes in manufacturing requirements in traditional methods and realizes efficient and accurate manufacturing of photovoltaic power generation cables.

CN118553477BActive Publication Date: 2025-09-26HANGLAN CABLE TECH CO LTD
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Patent Information

Application Number
CN202410821266.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-06-24
Publication Date
2025-09-26
Estimated Expiration
2044-06-24

AI Technical Summary

Technical Problem

The traditional manufacturing method of cables for new energy photovoltaic power generation cannot update the manufacturing process in a timely manner due to changes in manufacturing needs, resulting in affected product quality.

Method used

The first manufacturing device receives and sends manufacturing information, coordinates with the second manufacturing device to adjust process parameters, and records and clears outdated information to ensure the real-time and accuracy of the manufacturing process.

Benefits of technology

Improves the quality and efficiency of the manufacturing process, reduces manual intervention errors, and ensures product consistency and compliance with design standards.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application is applicable to the field of cable manufacturing technology, and in particular relates to a method, system and equipment for manufacturing cables for new energy photovoltaic power generation, the method comprising: a first manufacturing device receives first manufacturing information; the first manufacturing device sends the first manufacturing information to a second manufacturing device, and the manufacturing tasks of the first manufacturing device and the second manufacturing device are to manufacture the same type of cables for new energy photovoltaic power generation; in response to the first operation, the first manufacturing device receives the first control information sent by the second manufacturing device; when the first manufacturing device receives the first adjustment information sent by the second manufacturing device, the first manufacturing device manufactures according to the first adjustment information and the adjustment process information. The method for manufacturing cables for new energy photovoltaic power generation provided by the present application can solve the problem that the manufacturing process cannot be updated in time due to changes in manufacturing requirements during the manufacturing process, thereby affecting the quality of the manufactured products.
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Description

Technical Field

[0001] The present application belongs to the field of cable manufacturing technology, and in particular relates to a method, system and equipment for manufacturing cables for new energy photovoltaic power generation. Background Art

[0002] New energy photovoltaic power generation cables are cables specially used in solar photovoltaic power generation systems. They are used to connect photovoltaic modules, inverters, distribution boxes and other equipment to transmit DC or AC power generated by solar power generation equipment.

[0003] The traditional manufacturing method of new energy photovoltaic power generation cables cannot update the manufacturing process in a timely manner due to changes in manufacturing requirements during the manufacturing process (for example, the information transmission of manufacturing requirements relies on manual communication or written records, which may cause information confusion due to human subjective factors or the manufacturing process information is not updated in a timely manner, resulting in the use of wrong information, outdated or invalid information in the manufacturing process), which in turn affects the quality of the manufactured products. Summary of the Invention

[0004] The embodiments of the present application provide a method, system and equipment for manufacturing cables for new energy photovoltaic power generation, which can solve the problem that the manufacturing process cannot be updated in time due to changes in manufacturing requirements during the manufacturing process, thereby affecting the quality of the manufactured products.

[0005] In a first aspect, an embodiment of the present application provides a method for manufacturing a cable for new energy photovoltaic power generation, which is applied to a cable manufacturing device for new energy photovoltaic power generation, wherein the cable manufacturing device for new energy photovoltaic power generation includes a first manufacturing device and a second manufacturing device, wherein the first manufacturing device and the second manufacturing device are electrically connected, and the method includes:

[0006] The first manufacturing device receives first manufacturing information; wherein the first manufacturing information is used to indicate the manufacturing process of the new energy photovoltaic power generation cable to be manufactured;

[0007] The first manufacturing device sends the first manufacturing information to the second manufacturing device, and the manufacturing tasks of the first manufacturing device and the second manufacturing device are to manufacture the same type of new energy photovoltaic power generation cable;

[0008] In response to a first operation, the first manufacturing device receives first control information sent by the second manufacturing device; wherein the first operation is used to instruct the second manufacturing device to adjust process parameters based on the first manufacturing information;

[0009] After receiving the first control information, the first manufacturing device generates and stores adjustment process information corresponding to the first control information;

[0010] In response to the operation of erasing the first manufacturing information, the first manufacturing device erases the first manufacturing information and sends a first erasure message to the second manufacturing device; wherein the operation of erasing the first manufacturing information is used to instruct the first manufacturing device to clear the first manufacturing information, and the first erasure message is used to instruct the second manufacturing device to clear the first manufacturing information;

[0011] When the first manufacturing device receives the first adjustment information sent by the second manufacturing device, the first manufacturing device performs manufacturing according to the first adjustment information and the adjustment process information.

[0012] The above technical solutions in the embodiments of the present application have at least the following technical effects:

[0013] The present application provides a method for manufacturing a new energy photovoltaic power generation cable. First, by receiving the first manufacturing information including the manufacturing process of the new energy photovoltaic power generation cable to be manufactured by the first manufacturing device, the manufacturing requirements can be obtained in a timely manner, the subjective judgment of manual communication or written records can be reduced, and the errors and uncertainties caused by human intervention can be reduced, which helps to improve the quality of the manufactured products. Secondly, the first manufacturing device sends the first manufacturing information to the second manufacturing device. The manufacturing tasks of the first manufacturing device and the second manufacturing device are to manufacture the same type of new energy photovoltaic power generation cable. The first manufacturing information can be shared, which helps the subsequent first manufacturing device and the second manufacturing device to work together to complete the manufacturing task together, which helps to reduce errors in manual communication or written records, thereby reducing errors and rework in the manufacturing process, and helps to improve the quality of the manufactured products. Thirdly, in response to the first operation, the first manufacturing device receives the first control information sent by the second manufacturing device, which helps the first manufacturing device and the second manufacturing device to work together to optimize the process parameters to produce better quality products, which helps to improve overall manufacturing efficiency and quality. Then, after receiving the first control information, the first manufacturing device generates and stores adjustment process information corresponding to the first control information, creating a historical record so that every adjustment in the manufacturing process is recorded. This traceability facilitates subsequent data analysis and problem troubleshooting, and helps improve the quality of the manufacturing process. Then, in response to the operation of erasing the first manufacturing information, the first manufacturing device erases the first manufacturing information and sends the first erasure information to the second manufacturing device. This can prevent outdated or invalid data from interfering with the manufacturing process, and avoid manufacturing problems and errors caused by data inconsistency, helping to improve the quality of the manufacturing process. Finally, when the first manufacturing device receives the first adjustment information sent by the second manufacturing device, the first manufacturing device performs manufacturing according to the first adjustment information and the adjustment process information, allowing the first manufacturing device to quickly respond and make corresponding manufacturing adjustments based on the real-time adjustment information sent by the second manufacturing device, avoiding manufacturing delays caused by message delays, and helping to improve the quality of the manufacturing process.

[0014] In a possible implementation of the first aspect, the method for manufacturing a new energy photovoltaic power generation cable further includes:

[0015] After the first manufacturing device performs manufacturing according to the first adjustment information and the adjustment process information, the first manufacturing device sends a manufacturing response to the second manufacturing device;

[0016] The second manufacturing device sends second control information to the first manufacturing device based on the manufacturing response;

[0017] After receiving the second control information, the first manufacturing device erases the adjustment process information.

[0018] In a possible implementation of the first aspect, after the first manufacturing device receives the first control information, generates and stores the adjusted process information corresponding to the first control information, the method further includes:

[0019] In a case where the interactive operation of the interactive interface of the second manufacturing device is canceled, the first manufacturing device receives the second control information sent by the second manufacturing device; wherein the interactive interface includes a modification selection box for the first adjustment information;

[0020] After receiving the second control information, the first manufacturing device erases the adjustment process information.

[0021] In a possible implementation of the first aspect, the method for manufacturing a new energy photovoltaic power generation cable further includes:

[0022] In a case where the interactive operation of the interactive interface of the second manufacturing device is canceled, the first manufacturing device receives the first adjustment information and the third control information sent by the second manufacturing device;

[0023] After receiving the third control information, the first manufacturing device erases the adjusted process information if manufacturing has been completed according to the first adjustment information and the adjusted process information;

[0024] In a case where the manufacturing is not completed according to the first adjustment information and the adjustment process information, the adjustment process information is erased when the manufacturing is completed according to the first adjustment information and the adjustment process information.

[0025] In a possible implementation of the first aspect, after receiving the first control information, the first manufacturing device generates and stores adjustment process information corresponding to the first control information, including:

[0026] The first manufacturing device parses the control content of the first control information according to the first information identifier; wherein the first information identifier is the information identifier corresponding to the first control information;

[0027] The first manufacturing device stores the control content of the first control information to store the adjustment process information corresponding to the first control information and the corresponding relationship between the adjustment process information and the first information identifier.

[0028] In a possible implementation of the first aspect, the method for manufacturing a new energy photovoltaic power generation cable further includes:

[0029] In a case where the manufacturing process does not need to be adjusted, in response to a second operation, restoring the first manufacturing information;

[0030] The first manufacturing device and the second manufacturing device perform collaborative manufacturing based on the first manufacturing information.

[0031] In a possible implementation of the first aspect, the method for manufacturing a new energy photovoltaic power generation cable further includes:

[0032] Generate a manufacturing request according to the first adjustment information and the adjustment process information; wherein the manufacturing request is used to request the first manufacturing device and the second manufacturing device to perform a manufacturing task;

[0033] Determining, based on the manufacturing request, whether the manufacturing request indicates manufacturing of a primary product; wherein the primary product is a primary cable product that has completed a manufacturing process on the first manufacturing device; the first manufacturing device is a device electrically connected to the second manufacturing device and configured with manufacturing parameters different from those of the second manufacturing device;

[0034] If the manufacturing request is to instruct manufacturing of a primary product, obtaining device detail information; wherein the device detail information includes at least one of the second manufacturing devices;

[0035] Acquire the device status of each second manufacturing device in the device detailed information;

[0036] determining the second manufacturing device in the device detailed information that is in a state where the manufacturing request can be executed as a target device;

[0037] The manufacturing request is sent to the target device, and the target device is controlled to process and manufacture the primary product to obtain a refined product; wherein the refined product refers to a product manufactured by the first manufacturing device and the second manufacturing device.

[0038] In a possible implementation of the first aspect, obtaining the device status of each second manufacturing device in the device detailed information includes:

[0039] Acquire the manufacturing status and device health status of each second manufacturing device in the device detailed information;

[0040] For each of the second manufacturing devices, the device status is determined based on the manufacturing status and device health status.

[0041] In a possible implementation of the first aspect, determining the device status of each second manufacturing device according to its manufacturing status and device health status includes:

[0042] If the second manufacturing device is in both a manufacturing state and a device health state, determining that the second manufacturing device is in a state capable of executing a manufacturing request;

[0043] If the second manufacturing device is not in the manufacturing state and / or is in the device failure state, it is determined that the second manufacturing device is in the manufacturing request inoperable state.

[0044] In a possible implementation manner of the first aspect, after obtaining the device status of each second manufacturing device in the device detailed information, the method further includes:

[0045] If none of the second manufacturing devices is in a state where the manufacturing request can be executed, the manufacturing request is stored in the first manufacturing device.

[0046] In a possible implementation of the first aspect, if none of the second manufacturing devices is in a state capable of executing the manufacturing request, after storing the manufacturing request on the first manufacturing device, the method further includes:

[0047] When a second manufacturing device in the device detailed information changes from a state in which the manufacturing request cannot be executed to a state in which the manufacturing request can be executed, the manufacturing request is sent to the target device.

[0048] In a second aspect, an embodiment of the present application provides a new energy photovoltaic power generation cable manufacturing system, which is applied to new energy photovoltaic power generation cable manufacturing equipment, wherein the new energy photovoltaic power generation cable manufacturing equipment includes a first manufacturing device and a second manufacturing device, wherein the first manufacturing device and the second manufacturing device are electrically connected, and the new energy photovoltaic power generation cable manufacturing system includes:

[0049] A receiving unit, configured for a first manufacturing device to receive first manufacturing information; wherein the first manufacturing information is used to indicate a manufacturing process of a new energy photovoltaic power generation cable to be manufactured;

[0050] A sending unit, configured for the first manufacturing device to send the first manufacturing information to the second manufacturing device, wherein the manufacturing tasks of the first manufacturing device and the second manufacturing device are to manufacture the same type of new energy photovoltaic power generation cable;

[0051] a first response unit, configured to cause the first manufacturing apparatus to receive, in response to a first operation, first control information sent by the second manufacturing apparatus; wherein the first operation is configured to instruct the second manufacturing apparatus to adjust process parameters based on the first manufacturing information;

[0052] a generating unit, configured for the first manufacturing device to generate and store adjustment process information corresponding to the first control information after receiving the first control information;

[0053] a second response unit, configured for the first manufacturing device to erase the first manufacturing information in response to an operation of erasing the first manufacturing information, and to send a first erasure message to the second manufacturing device; wherein the operation of erasing the first manufacturing information is used to instruct the first manufacturing device to clear the first manufacturing information, and the first erasure message is used to instruct the second manufacturing device to clear the first manufacturing information;

[0054] The manufacturing unit is configured to manufacture according to the first adjustment information and the adjustment process information when the first manufacturing device receives the first adjustment information sent by the second manufacturing device.

[0055] In a third aspect, an embodiment of the present application provides a cable manufacturing device for new energy photovoltaic power generation, comprising a cable manufacturing device for new energy photovoltaic power generation, and a control device electrically connected to the cable manufacturing device for new energy photovoltaic power generation. The cable manufacturing device for new energy photovoltaic power generation comprises a first manufacturing device and a second manufacturing device, and the first manufacturing device and the second manufacturing device are electrically connected. The control device comprises a memory, a processor, and a computer program stored in the memory and runnable on the processor. When the processor executes the computer program, the cable manufacturing method for new energy photovoltaic power generation described in any one of the first aspects above is implemented.

[0056] It can be understood that the beneficial effects of the second to third aspects mentioned above can be found in the relevant description of the first aspect mentioned above, and will not be repeated here. BRIEF DESCRIPTION OF THE DRAWINGS

[0057] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the embodiments or descriptions of the prior art. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0058] Figure 1 This is a flow chart of a method for manufacturing a new energy photovoltaic power generation cable according to an embodiment of the present application;

[0059] Figure 2 This is a flow chart of a method for manufacturing a new energy photovoltaic power generation cable provided by another embodiment of the present application;

[0060] Figure 3 This is a schematic diagram of the implementation process after step S400 in the method for manufacturing a new energy photovoltaic power generation cable provided in one embodiment of the present application;

[0061] Figure 4This is a flow chart of a method for manufacturing a new energy photovoltaic power generation cable provided by another embodiment of the present application;

[0062] Figure 5 This is a schematic diagram of the implementation process of step S400 in the method for manufacturing a new energy photovoltaic power generation cable provided in one embodiment of the present application;

[0063] Figure 6 This is a flow chart of a method for manufacturing a new energy photovoltaic power generation cable provided in yet another embodiment of the present application;

[0064] Figure 7 This is a flow chart of a method for manufacturing a new energy photovoltaic power generation cable provided in another embodiment of the present application;

[0065] Figure 8 This is a schematic diagram of the implementation process of step S940 in the method for manufacturing a new energy photovoltaic power generation cable provided in one embodiment of the present application;

[0066] Figure 9 This is a schematic diagram of the implementation process of step S942 in the method for manufacturing a new energy photovoltaic power generation cable provided in one embodiment of the present application;

[0067] Figure 10 This is a schematic structural diagram of a new energy photovoltaic power generation cable manufacturing system provided in an embodiment of the present application;

[0068] Figure 11 It is a structural schematic diagram of the control device of the cable manufacturing equipment for new energy photovoltaic power generation provided in the embodiment of the present application. DETAILED DESCRIPTION

[0069] In the following description, specific details such as specific system structures and techniques are provided for purposes of illustration rather than limitation to facilitate a thorough understanding of the embodiments of the present application. However, it will be apparent to those skilled in the art that the present application may be implemented in other embodiments without these specific details. In other cases, detailed descriptions of well-known systems, devices, circuits, and methods are omitted to avoid obscuring the description of the present application with unnecessary detail.

[0070] It should be understood that when used in the present specification and the appended claims, the term "comprising" indicates the presence of described features, integers, steps, operations, elements and / or components, but does not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components and / or collections thereof.

[0071] It will also be understood that the term "and / or" used in this specification and the appended claims refers to and includes any and all possible combinations of one or more of the associated listed items.

[0072] As used in this specification and the appended claims, the term "if" can be interpreted as "when" or "upon" or "in response to determining" or "in response to detecting," depending on the context. Similarly, the phrase "if it is determined" or "if [described condition or event] is detected" can be interpreted as meaning "upon determination" or "in response to determining" or "upon detection of [described condition or event]" or "in response to detecting [described condition or event]," depending on the context.

[0073] In addition, in the description of the present application specification and the appended claims, the terms "first", "second", "third", etc. are only used to distinguish the descriptions and cannot be understood as indicating or implying relative importance.

[0074] References to "one embodiment" or "some embodiments" in this specification mean that a particular feature, structure, or characteristic described in conjunction with that embodiment is included in one or more embodiments of the present application. Thus, phrases such as "in one embodiment," "in some embodiments," "in other embodiments," and "in other embodiments" appearing in various places in 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 "including," "comprising," "having," and variations thereof all mean "including but not limited to," unless otherwise specifically emphasized.

[0075] New energy photovoltaic power generation cables are cables specially used in solar photovoltaic power generation systems. They are used to connect photovoltaic modules, inverters, distribution boxes and other equipment to transmit DC or AC power generated by solar power generation equipment.

[0076] The traditional manufacturing method of cables for new energy photovoltaic power generation cannot update the manufacturing process in a timely manner due to changes in manufacturing requirements during the manufacturing process (for example, the information transmission of manufacturing requirements relies on manual communication or written records), which in turn affects the quality of the manufactured products.

[0077] To solve the above problems, the embodiments of the present application provide a method, system and equipment for manufacturing cables for new energy photovoltaic power generation.

[0078] In this method, first, the first manufacturing device receives the first manufacturing information including the manufacturing process of the required new energy photovoltaic power generation cable, which can obtain manufacturing requirements in a timely manner, reduce the subjective judgment of manual communication or written records, and reduce the errors and uncertainties caused by human intervention, which helps to improve the quality of the manufactured products. Secondly, the first manufacturing device sends the first manufacturing information to the second manufacturing device. The manufacturing tasks of the first manufacturing device and the second manufacturing device are to manufacture the same type of new energy photovoltaic power generation cable. They can share the first manufacturing information, which helps the first manufacturing device and the second manufacturing device to work together to complete the manufacturing task, helps to reduce errors in manual communication or written records, thereby reducing errors and rework in the manufacturing process, and helps to improve the quality of the manufactured products. Thirdly, in response to the first operation, the first manufacturing device receives the first control information sent by the second manufacturing device, which helps the first manufacturing device and the second manufacturing device to cooperate and jointly optimize process parameters to produce higher quality products, which helps to improve overall manufacturing efficiency and quality. Then, after receiving the first control information, the first manufacturing device generates and stores adjustment process information corresponding to the first control information, creating a historical record so that every adjustment in the manufacturing process is recorded. This traceability facilitates subsequent data analysis and problem troubleshooting, and helps improve the quality of the manufacturing process. Then, in response to the operation of erasing the first manufacturing information, the first manufacturing device erases the first manufacturing information and sends the first erasure information to the second manufacturing device. This can prevent outdated or invalid data from interfering with the manufacturing process, and avoid manufacturing problems and errors caused by data inconsistency, helping to improve the quality of the manufacturing process. Finally, when the first manufacturing device receives the first adjustment information sent by the second manufacturing device, the first manufacturing device performs manufacturing according to the first adjustment information and the adjustment process information, allowing the first manufacturing device to quickly respond and make corresponding manufacturing adjustments based on the real-time adjustment information sent by the second manufacturing device, avoiding manufacturing delays caused by message delays, and helping to improve the quality of the manufacturing process.

[0079] The method for manufacturing cables for new energy photovoltaic power generation provided in the embodiments of the present application can be applied to cable manufacturing equipment for new energy photovoltaic power generation. At this time, the cable manufacturing equipment for new energy photovoltaic power generation is the executor of the method for manufacturing cables for new energy photovoltaic power generation provided in the embodiments of the present application. The embodiments of the present application do not impose any restrictions on the specific type of cable manufacturing equipment for new energy photovoltaic power generation.

[0080] For example, a cable manufacturing device for photovoltaic power generation may include a cable manufacturing device for photovoltaic power generation and a control device electrically connected to the cable manufacturing device. For example, the cable manufacturing device for photovoltaic power generation may include a cable extrusion device, a cable insulation treatment device, a braided shielding device, and an outer sheath device. The cable extrusion device is used to extrude the conductor material into the desired shape and size to produce a primary product. The cable insulation treatment device is used to apply insulating material to the surface of the primary product to produce an insulated product. The braided shielding device is used to braid aluminum foil and copper wire into a braided shielding layer, which is then applied to the insulated product after insulation treatment to produce a shielded product. The outer sheath device is used to apply an outer sheath layer over the braided shielding layer of the shielded product to produce the final cable product. The first manufacturing device may be any one of the cable extrusion device, the cable insulation treatment device, the braided shielding device, and the outer sheath device. The second manufacturing device may be any one of the cable extrusion device, the cable insulation treatment device, the braided shielding device, and the outer sheath device. The first manufacturing device and the second manufacturing device are different and electrically connected. In the first manufacturing unit, some basic process parameter settings may have been made, but due to the complexity and diversity of the process, it is impossible to cover all possible manufacturing requirements. Therefore, the process parameters can be adjusted in the second manufacturing unit according to specific requirements to ensure that the final product meets the design and standard requirements.

[0081] For example, the control device may be a tablet computer, a notebook computer, an ultra-mobile personal computer (UMPC), a netbook, a desktop computer, a computer, a laptop computer, a handheld communication device, a handheld computing device, or other mobile terminal.

[0082] In order to better understand the method for manufacturing a cable for new energy photovoltaic power generation provided in the embodiment of the present application, the specific implementation process of the method for manufacturing a cable for new energy photovoltaic power generation provided in the embodiment of the present application is exemplarily introduced below.

[0083] Figure 1 A schematic flow chart of a method for manufacturing a new energy photovoltaic power generation cable provided in an embodiment of the present application is shown. The method for manufacturing a new energy photovoltaic power generation cable includes:

[0084] S100: A first manufacturing device receives first manufacturing information, wherein the first manufacturing information is used to indicate a manufacturing process of a new energy photovoltaic power generation cable to be manufactured.

[0085] For example, first manufacturing information about the cable product to be manufactured, including specifications, material requirements, process requirements, etc., can be input through the interactive interface of the control device, and the control device transmits the first manufacturing information to the first manufacturing device via wired means.

[0086] With such an arrangement, by receiving the first manufacturing information through the first manufacturing device, manufacturing requirements can be obtained in a timely manner, subjective judgments in manual communication or written records can be reduced, and errors and uncertainties caused by human intervention can be reduced, which helps to improve the quality of manufactured products.

[0087] S200, the first manufacturing device sends first manufacturing information to the second manufacturing device, and the manufacturing tasks of the first manufacturing device and the second manufacturing device are to manufacture the same type of new energy photovoltaic power generation cable.

[0088] For example, the first manufacturing device and the second manufacturing device can be connected via a data transmission interface, such as Ethernet, serial communication, etc. Through these interfaces, the first manufacturing device can send the first manufacturing information to the second manufacturing device.

[0089] In this way, the first manufacturing device sends the first manufacturing information to the second manufacturing device. The manufacturing tasks of the first manufacturing device and the second manufacturing device are to manufacture the same type of new energy photovoltaic power generation cables. The first manufacturing information can be shared, which helps the first manufacturing device and the second manufacturing device to work together to complete the manufacturing tasks. It helps to reduce errors in manual communication or written records, thereby reducing errors and rework in the manufacturing process, and helps to improve the quality of manufactured products.

[0090] S300: In response to a first operation, a first manufacturing apparatus receives first control information sent by a second manufacturing apparatus, wherein the first operation is used to instruct the second manufacturing apparatus to adjust process parameters based on the first manufacturing information.

[0091] It is understood that the first operation can be an operation such as clicking, touching, or keyboard and mouse input by the operator on the interactive interface of the control device. For example, the first manufacturing information sent by the first manufacturing device is a fixed process flow, but the actual manufacturing process may be affected by various factors, such as changes in raw material quality, equipment conditions, etc. Therefore, the second manufacturing device needs to make appropriate modifications to the first manufacturing information based on the actual manufacturing situation. For example, the operator clicks on the interactive interface of the control device to remove unnecessary steps or add more efficient processes. After the modification is completed, the first manufacturing device receives the first control information sent by the second manufacturing device. In this way, the second manufacturing device can notify the first manufacturing device to remind the first manufacturing device that the manufacturing process needs to be adjusted.

[0092] With such a setting, in response to the first operation, the first manufacturing device receives the first control information sent by the second manufacturing device, which helps the first manufacturing device and the second manufacturing device to cooperate and jointly optimize process parameters to produce better quality products, which helps to improve overall manufacturing efficiency and quality.

[0093] S400: After receiving the first control information, the first manufacturing device generates and stores the adjustment process information corresponding to the first control information.

[0094] It is understood that, first, the first manufacturing device needs to parse and understand the received first control information. This may include understanding the content, meaning, and impact of the control information on the manufacturing process. For example, the control information may include process parameters, operating steps, etc., and the first manufacturing device needs to convert this information into executable process adjustment instructions. Based on the understanding of the first control information, corresponding process adjustment information is generated. This may include modifying processing parameters, adjusting the process flow, updating equipment settings, etc. The generated process adjustment information needs to be stored for access and execution during the actual manufacturing process. The process information can be stored in a system database, manufacturing instructions, or process files. For example, after the second manufacturing device has modified the process, the original process of the first manufacturing device may have some deviations or deficiencies that fail to meet the requirements of the modified process, and adjustments may be required to meet the process requirements. For example, the process flow may need to be fine-tuned, processing parameters may need to be modified, and equipment settings may need to be adjusted. By generating the process adjustment information corresponding to the first control information, for example, if the first control information receives a request to adjust the cable diameter, the first manufacturing device generates the corresponding process adjustment information, including adjusting the pressure and speed parameters of the extruder to ensure that the produced cable diameter meets the requirements. Alternatively, if the first control information requires a change in cable insulation material, the first manufacturing device generates process adjustment information, including adjusting the extruder's temperature and pressure control to accommodate the processing requirements of the new material. This ensures that its operations align with the process requirements, ensuring stable and consistent product quality.

[0095] With this configuration, after receiving the first control information, the first manufacturing device generates and stores the adjusted process information corresponding to the first control information. This creates a historical record, allowing every adjustment during the manufacturing process to be recorded. This traceability facilitates subsequent data analysis and troubleshooting, helping to improve the quality of the manufacturing process. For example, the manufacturing process is an iterative process, and information exchange and feedback between the first and second manufacturing devices are indispensable. After the second manufacturing device sends the first control information to the first manufacturing device, the first manufacturing device receives and adjusts it in order to form a feedback loop. Through continuous adjustment and optimization, the entire manufacturing process gradually approaches the desired goal, thereby improving manufacturing quality.

[0096] S500: In response to the operation of erasing the first manufacturing information, the first manufacturing device erases the first manufacturing information and sends a first erasure message to the second manufacturing device. The operation of erasing the first manufacturing information is used to instruct the first manufacturing device to clear the first manufacturing information, and the first erasure message is used to instruct the second manufacturing device to clear the first manufacturing information.

[0097] It is understood that the operation of erasing the first manufacturing information can be performed by an operator through a click, touch, or keyboard / mouse input on the interactive interface of the control device. When the first manufacturing device receives the operation to erase the first manufacturing information, it must first respond to the operation, which may include clearing the first manufacturing information cached by the first manufacturing device or hiding the first manufacturing information in the first manufacturing device. Simultaneously, generating and sending the first erasure information to the second manufacturing device may include clearing the first manufacturing information cached by the second manufacturing device or hiding the first manufacturing information in the second manufacturing device. The first manufacturing device sends the first erasure information to the second manufacturing device via a suitable communication method, such as a network connection or a data transmission protocol. For example, by hiding the first manufacturing information in the first and second manufacturing devices, outdated or invalid data can be prevented from interfering with the manufacturing process, allowing the first and second manufacturing devices to focus on running the newly updated data for manufacturing. Furthermore, in subsequent manufacturing processes, if the first manufacturing information has not been modified, the first manufacturing information can be restored, allowing the first and second manufacturing devices to continue manufacturing according to the fixed process flow specified in the first manufacturing information.

[0098] In this configuration, the first manufacturing device erases the first manufacturing information in response to the operation of erasing the first manufacturing information, and sends the first erasure information to the second manufacturing device. This can avoid interference with the manufacturing process caused by outdated or invalid data, and avoid manufacturing problems and errors caused by data inconsistency, which helps to improve the quality of the manufacturing process.

[0099] S600 : When the first manufacturing apparatus receives the first adjustment information sent by the second manufacturing apparatus, the first manufacturing apparatus performs manufacturing according to the first adjustment information and the adjustment process information.

[0100] It can be understood that the first manufacturing device receives and parses the first adjustment information sent by the second manufacturing device. The first adjustment information may include specific adjustment requirements that need to be made to the manufacturing process, such as adjusting processing parameters, modifying process flow, changing equipment settings, etc. The first manufacturing device obtains a process adjustment plan corresponding to the first adjustment information from the stored adjustment process information. The adjustment process information may be a previously stored adjustment plan corresponding to the first control information. Based on the first adjustment information and the obtained adjustment process information, the first manufacturing device makes corresponding adjustments to the manufacturing process, which may include modifying the parameters of the processing equipment, adjusting the order of the processing steps, changing the raw materials used, etc. After applying the process adjustment, the first manufacturing device will perform manufacturing according to the adjusted process.

[0101] With such a configuration, when the first manufacturing device receives the first adjustment information sent by the second manufacturing device, the first manufacturing device performs manufacturing according to the first adjustment information and the adjustment process information, so that the first manufacturing device can quickly respond and make corresponding manufacturing adjustments according to the real-time adjustment information sent by the second manufacturing device, avoiding manufacturing delays caused by message delays, and helping to improve the quality of the manufacturing process.

[0102] Figure 2 A schematic flow chart of a method for manufacturing a new energy photovoltaic power generation cable provided in an embodiment of the present application is shown. The method for manufacturing a new energy photovoltaic power generation cable further includes:

[0103] S700 : After the first manufacturing apparatus performs manufacturing according to the first adjustment information and the adjustment process information, it sends a manufacturing response to the second manufacturing apparatus.

[0104] It will be understood that after the first manufacturing device performs manufacturing according to the first adjustment information and the adjusted process information, it generates information containing a manufacturing response. This information may include confirmation of the manufacturing operation, adjusted process parameters, and an update to the manufacturing plan. The first manufacturing device transmits the manufacturing response information to the second manufacturing device via an appropriate communication method, such as a network connection or a data transmission protocol. The second manufacturing device is ensured to correctly receive, parse, and understand this information, thereby notifying the second manufacturing device that the first manufacturing device is ready to begin manufacturing. For example, after completing manufacturing according to the first adjustment information and the adjusted process information, the next manufacturing plan for the first and second manufacturing devices is to manufacture according to the first manufacturing information without requiring process modifications. Therefore, the first adjustment information and the adjusted process information may be subsequently hidden and the first manufacturing information restored. This allows the first and second manufacturing devices to focus on manufacturing according to the first manufacturing information, rather than continuing to manufacture according to the first adjustment information and the adjusted process information. The first manufacturing device may wait for the second manufacturing device to confirm the manufacturing response information. This may be a simple confirmation reply indicating that the second manufacturing device has received and understood the manufacturing response information. Once the first manufacturing device receives the confirmation from the second manufacturing device, it may begin manufacturing according to the first manufacturing information.

[0105] With this arrangement, after the first manufacturing device performs manufacturing according to the first adjustment information and the adjustment process information, it sends a manufacturing response to the second manufacturing device, which can ensure the coordination of the manufacturing process and information synchronization between the first manufacturing device and the second manufacturing device, thereby improving the quality and consistency of the product.

[0106] S800: The second manufacturing apparatus sends second control information to the first manufacturing apparatus based on the manufacturing response.

[0107] It is understood that the second manufacturing device learns from the manufacturing response that the first manufacturing device is ready to begin manufacturing. The second manufacturing device establishes a communication connection with the first manufacturing device via a network or other communication method. The second manufacturing device transmits the second control information to the first manufacturing device via the communication system, and may convert the information into a specific data format or protocol to ensure that the first manufacturing device can correctly receive and interpret it.

[0108] With such an arrangement, the second manufacturing device sends the second control information to the first manufacturing device based on the manufacturing response, which can realize information exchange and collaboration in the manufacturing process, thereby realizing coordination and optimization of the manufacturing process.

[0109] S900 , after receiving the second control information, the first manufacturing device erases the adjustment process information.

[0110] It is understood that before receiving the second control information, the first manufacturing device can restore the first manufacturing information. For example, the first manufacturing information can be restored manually through an interactive interface, including by entering the original process parameters and set values, or by restoring the first manufacturing information from a recycle bin. After receiving the second control information, the first manufacturing device can delete, hide, or overwrite the adjusted process information to ensure that the adjusted process information does not continue to affect subsequent manufacturing processes.

[0111] With this setting, the adjustment process information may conflict with the first manufacturing information. After receiving the second control information, the first manufacturing device erases the adjustment process information to avoid such conflicts and errors, thereby avoiding errors in the manufacturing process caused by information confusion, thereby improving manufacturing reliability and efficiency.

[0112] In one possible implementation, see Figure 3 In step S400, after receiving the first control information, the first manufacturing device generates and stores the adjustment process information corresponding to the first control information. The method for manufacturing a new energy photovoltaic power generation cable further includes:

[0113] S410: When the interactive operation on the interactive interface of the second manufacturing device is canceled, the first manufacturing device receives second control information sent by the second manufacturing device, wherein the interactive interface includes a modification selection box for the first adjustment information.

[0114] For example, after process A of the second manufacturing device is modified to process B, the manufacturing parameters of the first manufacturing device need to be modified according to the first adjustment information so that the manufacturing parameters of the first manufacturing device (i.e., the adjusted process information) can adapt to process B. However, if it is found that the original manufacturing parameters in the first manufacturing information received by the first manufacturing device are still adaptable to process B, no modification is required. For example, if the interactive operation of the interactive interface of the second manufacturing device is canceled, that is, there is no need to modify the manufacturing parameters of the first manufacturing device according to the first adjustment information, the second manufacturing device sends the second control information to the first manufacturing device.

[0115] With such a setting, when the interactive operation of the interactive interface of the second manufacturing device is canceled, the first manufacturing device receives the second control information sent by the second manufacturing device. When the first manufacturing device does not need to modify the parameters but the second manufacturing device needs to modify the parameters, the manufacturing process can be made more flexible to improve the manufacturing quality.

[0116] S420: After receiving the second control information, the first manufacturing device erases the adjustment process information.

[0117] It is understood that corresponding programming and configuration can be performed in the first manufacturing device to automatically erase the adjustment process information after receiving the second control information. Alternatively, after receiving the second control information, an operator can manually reset or clear the adjustment process information based on the second control information.

[0118] With this arrangement, after receiving the second control information, the first manufacturing device erases the adjustment process information to avoid errors in the manufacturing process caused by information confusion, thereby improving manufacturing reliability and efficiency.

[0119] Figure 4 A schematic flow chart of a method for manufacturing a new energy photovoltaic power generation cable provided in an embodiment of the present application is shown. The method for manufacturing a new energy photovoltaic power generation cable further includes:

[0120] S401 : When the interactive operation on the interactive interface of the second manufacturing device is canceled, the first manufacturing device receives first adjustment information and third control information sent by the second manufacturing device.

[0121] It is understood that if the interactive interface of the second manufacturing device is canceled, that is, there is no need for the manufacturing parameters of the first manufacturing device to be modified according to the first adjustment information, the second manufacturing device will send the second control information to the first manufacturing device. Alternatively, if the interactive interface of the second manufacturing device is canceled, that is, after the current manufacturing plan is completed, the next manufacturing plan will be manufactured according to the original manufacturing parameters in the first manufacturing information, and the first manufacturing device will receive the first adjustment information and third control information sent by the second manufacturing device.

[0122] With such a setting, when the interactive interface of the second manufacturing device is canceled from interactive operation, the first manufacturing device receives the first adjustment information and the third control information sent by the second manufacturing device, and can automatically perform corresponding control operations, which helps to improve the degree of automation of the manufacturing process, reduce the need for manual intervention, and improve manufacturing efficiency and product quality.

[0123] S402 , after receiving the third control information, the first manufacturing apparatus erases the adjustment process information if the manufacturing has been completed according to the first adjustment information and the adjustment process information.

[0124] It is understood that the first manufacturing device can erase the adjusted process information through a pre-set automated reset procedure. A specific program can be set in the control device to automatically execute the step of erasing the adjusted process information after receiving the third control information and after manufacturing has been completed according to the first adjustment information and the adjusted process information. For example, after completing a manufacturing plan based on the first adjustment information and the adjusted process information, if the next manufacturing plan is to manufacture according to the original manufacturing parameters in the first manufacturing information, the adjusted process information is erased. As a result, the first and second manufacturing devices can manufacture according to the original first manufacturing information, rather than according to the first adjustment information and the adjusted process information.

[0125] With such a setting, after the first manufacturing device receives the third control information, it erases the adjustment process information when the manufacturing has been completed according to the first adjustment information and the adjustment process information. This can reduce the time and resource consumption for re-adjustment, avoid unnecessary adjustment work after the manufacturing has been completed, and improve manufacturing efficiency.

[0126] S403 , when the manufacturing is not completed according to the first adjustment information and the adjustment process information, erasing the adjustment process information when the manufacturing is completed according to the first adjustment information and the adjustment process information.

[0127] It is understood that the first manufacturing device can erase the adjustment process information through a pre-set automatic reset program. A specific program can be set in the control device to automatically erase the adjustment process information when manufacturing is completed according to the first adjustment information and the adjustment process information if manufacturing is not completed according to the first adjustment information and the adjustment process information.

[0128] With such a setting, if the manufacturing is not completed according to the first adjustment information and the adjustment process information, the adjustment process information will be erased when the manufacturing is completed according to the first adjustment information and the adjustment process information. This can reduce the time and resource consumption for re-adjustment, avoid unnecessary adjustment work again when the manufacturing has been completed, and improve manufacturing efficiency.

[0129] In one possible implementation, see Figure 5 In step S400, after receiving the first control information, the first manufacturing device generates and stores the adjustment process information corresponding to the first control information, including:

[0130] S430: The first manufacturing device parses the control content of the first control information according to the first information identifier, wherein the first information identifier is the information identifier corresponding to the first control information.

[0131] It is understood that the position and format of the first information identifier in the first control information can be determined, which can be a specific field, code, symbol or mark in the control information to identify the type or content of the control information, for example, the parameters of the control process. Based on the position and format of the first information identifier, a parsing algorithm or program can be written to identify and extract the first information identifier, and parse the corresponding control content based on the identifier. This can be implemented using a programming language or scripting language. After the parsing algorithm or program is written, it is applied to the first control information. The parsing algorithm or program should be able to automatically identify the first information identifier and extract the corresponding control content, which may include parsing control instructions, the setting of manufacturing device parameters, manufacturing action sequences, etc.

[0132] With this arrangement, the first manufacturing device parses the control content of the first control information according to the first information identifier, thereby achieving automated control, reducing human intervention, and improving manufacturing efficiency.

[0133] S440: The first manufacturing device stores the control content of the first control information to store the adjustment process information corresponding to the first control information and the corresponding relationship between the adjustment process information and the first information identifier.

[0134] It is understood that a database or storage system can be established to store the adjustment process information corresponding to the first control information, as well as the information identifiers and associated relationships therewith. A suitable data structure can be designed to store the correspondence between the control content, the adjustment process information, and the information identifiers. For example, a data table or data model containing the control information, process information, and information identifiers can be established. A data entry program can be designed to input the correspondence between the first control information, the adjustment process information, and the information identifiers into the database. Ensure the accuracy and completeness of data entry. A query program can be written to be able to search for the corresponding control content and adjustment process information based on specific information identifiers. Ensure that data can be accurately retrieved and associated.

[0135] In this way, the first manufacturing device stores the control content of the first control information to store the adjustment process information corresponding to the first control information and the correspondence between the adjustment process information and the first information identifier, which can realize data management and information tracking in the manufacturing process and provide support for adjustment and optimization in the manufacturing process.

[0136] Figure 6 A schematic flow chart of a method for manufacturing a new energy photovoltaic power generation cable provided in an embodiment of the present application is shown. The method for manufacturing a new energy photovoltaic power generation cable further includes:

[0137] S450 : When the manufacturing process does not need to be adjusted, in response to the second operation, restore the first manufacturing information.

[0138] It is understood that a recovery mechanism or procedure can be designed so that when necessary (i.e., when the manufacturing process does not require adjustment), the first manufacturing information can be changed from a hidden state to a visible state through a second operation (e.g., an operator clicking or touching an interactive interface) to achieve the purpose of recovery. This mechanism can be implemented through system settings, database operations, or manual operations.

[0139] With this arrangement, when the manufacturing process does not need to be adjusted, the first manufacturing information is restored in response to the second operation, which can save the time and cost required for resetting parameters, improve manufacturing efficiency and reduce the risk of manufacturing interruption.

[0140] S460: The first manufacturing device and the second manufacturing device perform collaborative manufacturing based on the first manufacturing information.

[0141] It is understood that the first manufacturing device and the second manufacturing device can share the first manufacturing information, including manufacturing parameters, process requirements, specifications of manufacturing principles, etc., and clarify the division of labor and cooperation between each manufacturing device. Work task allocation, process transfer, data sharing and other processes can be formulated, and data can be shared through the network, database or other information systems. The first manufacturing device and the second manufacturing device perform collaborative manufacturing based on the first manufacturing information.

[0142] In this way, the first manufacturing device and the second manufacturing device perform collaborative manufacturing based on the first manufacturing information, which helps to achieve collaborative cooperation in the manufacturing process, improve manufacturing efficiency and product quality. Collaborative manufacturing can promote information sharing and collaboration between manufacturing devices, making the manufacturing process more efficient and collaborative.

[0143] Figure 7 A schematic flow chart of a method for manufacturing a new energy photovoltaic power generation cable provided in an embodiment of the present application is shown. The method for manufacturing a new energy photovoltaic power generation cable further includes:

[0144] S910: Generate a manufacturing request based on the first adjustment information and the adjustment process information, wherein the manufacturing request is used to request the first manufacturing device and the second manufacturing device to perform a manufacturing task.

[0145] It will be understood that the parsing of the first adjustment information and the adjustment process information includes manufacturing requirements, process parameters, and manufacturing raw material specifications. Based on the parsed information, a manufacturing request containing manufacturing task details is generated. The manufacturing request may include a description of the manufacturing task, manufacturing parameters, process flow, and process requirements. Based on the task details and requirements in the manufacturing request, the specific tasks to be assigned to the first and second manufacturing devices are determined, and the manufacturing tasks are appropriately allocated based on the nature and requirements of the tasks.

[0146] With such a setting, a manufacturing request is generated according to the first adjustment information and the adjustment process information, which can clarify the manufacturing tasks and requirements, help plan the manufacturing plan in advance and respond to changes in a timely manner, and speed up the response speed of the manufacturing process.

[0147] S920: Based on the manufacturing request, determine whether the manufacturing request indicates manufacturing of a primary product. The primary product is a primary cable product that has completed a manufacturing process on a first manufacturing apparatus. The first manufacturing apparatus is electrically connected to the second manufacturing apparatus and configured with different manufacturing parameters than the second manufacturing apparatus.

[0148] It is understood that the content of the manufacturing request, including the manufacturing task description, manufacturing requirements, manufacturing parameters, and other information, is parsed to ensure accurate understanding of the task requirements. The manufacturing request is checked to see if it contains manufacturing requirements or instructions for the primary product. The primary product refers to the primary cable product that has completed the manufacturing process on the first manufacturing device. It is necessary to clarify whether the task involves reprocessing or treatment of the primary product.

[0149] With such a setting, determining whether a manufacturing request indicates manufacturing of a primary product based on the manufacturing request can help rationally allocate manufacturing resources, avoid idleness or excessive consumption of resources, improve the effective utilization of resources, and reduce manufacturing costs.

[0150] S930: If the manufacturing request instructs manufacturing of a primary product, obtain detailed device information, wherein the detailed device information includes at least one second manufacturing device.

[0151] It can be understood that a device detail information can be established to record the device information of each second manufacturing device, including its type, specifications, status and parameter settings, to confirm whether the manufacturing request contains instructions for manufacturing the primary product. If the manufacturing request indicates that the primary product is to be manufactured, the device detail information is obtained.

[0152] With this arrangement, if the manufacturing request instructs manufacturing of a primary product, detailed device information is obtained, and the performance and function of each second manufacturing device can be understood, thereby providing more options for the manufacturing process.

[0153] S940: Acquire the device status of each second manufacturing device in the device detailed information.

[0154] It can be understood that the control device can use sensors and monitoring equipment to monitor the operating status of each second manufacturing device in real time. These devices can monitor the temperature, pressure, flow and other parameters of the device, and transmit the data to the control device for real-time viewing to obtain the device status of each second manufacturing device in the device detailed information. The device status may include the operating status (such as running, stopped, faulty) and availability (such as whether it can accept manufacturing tasks) of the second manufacturing device.

[0155] With this arrangement, by obtaining the device status of each second manufacturing device in the device detailed information, the operation status of the device can be monitored in real time, which helps to promptly discover possible problems with the device and avoid losses caused by manufacturing interruptions or failures.

[0156] In one possible implementation, see Figure 8 S940: Obtaining the device status of each second manufacturing device in the device detailed information, including:

[0157] S941 , obtaining the manufacturing status and device health status of each second manufacturing device in the device detailed information.

[0158] As can be understood, first, a device monitoring system needs to be established. This system can connect to each second manufacturing device and monitor its status in real time. Sensors, monitoring equipment, connectors, and network technologies can be used. Within the device monitoring system, data collection points are set up to collect various parameters and indicators of the second manufacturing device, such as manufacturing status, operating time, manufacturing efficiency, temperature, pressure, etc. This data needs to be accurately stored and recorded for subsequent analysis and query. This allows for constant monitoring of the device's operating status, including manufacturing status and device health. For example, the manufacturing status can be idle (i.e., no manufacturing tasks) or non-idle (i.e., the current manufacturing task has not been completed and cannot accept new manufacturing tasks or manufacturing requests). The device health status can include healthy status (e.g., when the second manufacturing device is in a healthy state, it indicates that the second manufacturing device is operating normally) and fault status (e.g., when the second manufacturing device is in a faulty state, it indicates that the second manufacturing device has malfunctioned and cannot operate normally).

[0159] With this arrangement, by obtaining the manufacturing status and device health status of each second manufacturing device in the device detailed information, it is possible to understand which second manufacturing device is in a state that allows manufacturing, thereby avoiding the use of faulty second manufacturing devices for manufacturing, thereby reducing manufacturing downtime and improving manufacturing efficiency.

[0160] S942: For each second manufacturing device, determine the device status according to its manufacturing status and device health status.

[0161] It can be understood that the indicators or standards used to describe the device status can include manufacturing status indicators (such as running, standby or idle, etc.) and device health status indicators (such as normal, warning, fault, etc.). Analyze the manufacturing status and device health status data of each second manufacturing device. Based on the analyzed data, formulate evaluation rules or algorithms to determine the status of the device. This can be a set of logical rules or a model based on machine learning or artificial intelligence. For example, when the second manufacturing device is in a manufacturing state and the device health status is good, the device status can be defined as "manufacturing request state that can be run." When the second manufacturing device is not in a manufacturing state and the device health status is good, the device status can be defined as "manufacturing request state that cannot be run." When the second manufacturing device is not in a manufacturing state and the device health status is faulty, the device status can be defined as "manufacturing request state that cannot be run." When the second manufacturing device is in a manufacturing state and the device health status is faulty, the device status can be defined as "manufacturing request state that cannot be run."

[0162] With this arrangement, for each second manufacturing device, the device status is determined based on its manufacturing status and device health status, so that it is possible to understand which second manufacturing device's status is capable of manufacturing, avoiding the use of faulty second manufacturing devices for manufacturing, thereby reducing manufacturing downtime and improving manufacturing efficiency.

[0163] In one possible implementation, see Figure 9 S942: For each second manufacturing device, determine the device status according to its manufacturing status and device health status, including:

[0164] S9421: If the second manufacturing device is in both the manufacturing state and the device healthy state, determine that the second manufacturing device is in the manufacturing request executable state.

[0165] It is understandable that a judgment mechanism may be provided to determine that the second manufacturing device is in a state capable of executing a manufacturing request when the second manufacturing device is in both a manufacturing state and a device health state.

[0166] With this arrangement, if the second manufacturing device is in both the manufacturing state and the device health state at the same time, determining that the second manufacturing device is in the operational manufacturing request state means that both the health state and the manufacturing state of the second manufacturing device are good, thereby reducing the possibility of manufacturing interruptions due to device failure or shutdown, and helping to maintain manufacturing continuity.

[0167] S9422: If the second manufacturing device is not in the manufacturing state and / or is in the device failure state, determine that the second manufacturing device is in a state where the manufacturing request cannot be executed.

[0168] It is understandable that a judgment mechanism may be provided to determine that the second manufacturing device is in a state where the manufacturing request cannot be executed when the second manufacturing device is not in a manufacturing state and / or is in a device failure state.

[0169] With such a configuration, if the second manufacturing device is not in a manufacturing state and / or is in a device failure state, determining that the second manufacturing device is in an inoperable manufacturing request state can prevent the second manufacturing device from manufacturing products in an abnormal state, thereby protecting product quality and avoiding the generation of defective and waste products.

[0170] In a possible implementation, after obtaining the device status of each second manufacturing device in the device detailed information in step S940, the method for manufacturing a new energy photovoltaic power generation cable further includes:

[0171] S943: If none of the second manufacturing devices is in a state where the manufacturing request can be executed, store the manufacturing request on the first manufacturing device.

[0172] It will be appreciated that the first manufacturing device can store manufacturing requests in a variety of ways, such as a database, file system, or queue. The first manufacturing device needs to establish a communication protocol with each second manufacturing device, which can be achieved through network communication or other appropriate communication methods. When each second manufacturing device is not in an operational state, the manufacturing request is stored on the first manufacturing device so that when a second manufacturing device subsequently becomes operational, the manufacturing request can be sent to the second manufacturing device.

[0173] With such a configuration, if each second manufacturing device is not in a state where the manufacturing request can be executed, the manufacturing request will be stored on the first manufacturing device. When the second manufacturing device is unable to manufacture, the manufacturing request can be retained on the first manufacturing device, so that when a subsequent second manufacturing device changes from a non-operational state to an operable state, the manufacturing request can be sent to the second manufacturing device, making the manufacturing process more flexible.

[0174] In one possible implementation, in step S943, if none of the second manufacturing devices is in a state capable of executing the manufacturing request, after storing the manufacturing request on the first manufacturing device, the method for manufacturing the new energy photovoltaic power generation cable further includes:

[0175] S9431: When a second manufacturing device in the device detailed information changes from a state in which the manufacturing request cannot be executed to a state in which the manufacturing request can be executed, the manufacturing request is sent to the target device.

[0176] It is understood that real-time monitoring of the status changes of each second manufacturing device and detecting changes from a state in which a manufacturing request is not available to a state in which a second manufacturing device can be operated can be achieved by establishing a query mechanism or using a status monitoring system. When a second manufacturing device in the device detailed information changes from a state in which a manufacturing request is not available to a state in which a manufacturing request can be operated, a manufacturing request is sent to the target device.

[0177] With this setting, when a second manufacturing device in the device detail information changes from a non-operable manufacturing request state to an operable manufacturing request state, the manufacturing request is sent to the target device, which can achieve real-time response to manufacturing needs, ensure the smooth execution of the manufacturing plan and maximize manufacturing efficiency.

[0178] S950: Determine the second manufacturing device in the device detailed information that is in a state where the manufacturing request can be executed as the target device.

[0179] As will be understood, first, based on specific fields or flags within the device details, second manufacturing devices that are in a state capable of executing manufacturing requests are screened. From these screened second manufacturing devices, the target device is determined based on factors such as demand and priority. For example, if the device details indicate that a particular second manufacturing device is in a normal operating state or can accept manufacturing tasks, it will be determined as the target device. If there are multiple eligible second manufacturing devices, these devices can be prioritized based on factors such as manufacturing plans, device performance, and production capacity to determine the most suitable target device.

[0180] This configuration allows the second manufacturing device in the device details, which is in the ready-to-run manufacturing request state, to be identified as the target device, enabling faster responses to manufacturing requests and reducing manufacturing task wait times. This helps improve manufacturing efficiency, shorten manufacturing cycles, and complete manufacturing tasks more quickly.

[0181] S960: Send a manufacturing request to the target device, and control the target device to process and manufacture the primary product to obtain a refined product, wherein the refined product refers to the product manufactured by the first manufacturing device and the second manufacturing device.

[0182] It is understood that a manufacturing request can be sent to a target device via a manufacturing management system or a designated manufacturing scheduling system in the control device, and can include transmitting the manufacturing request including information such as a manufacturing request order, a manufacturing task list, and processing specifications to the target device. Based on the manufacturing request, processing parameters, including processing procedures, process flow, and processing parameters, are set in the target device to ensure that the primary product is correctly processed.

[0183] With this setting, the manufacturing request is sent to the target device, and the target device is controlled to process and manufacture the primary product to obtain the refined product. This can realize the automation and optimization of the manufacturing process, thus reducing human intervention and manufacturing errors, improving manufacturing efficiency, and speeding up product manufacturing.

[0184] It should be understood that the size of the serial numbers of the steps in the above embodiments does not mean 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.

[0185] Corresponding to the method for manufacturing cables for new energy photovoltaic power generation described in the above embodiment, the embodiment of the present application also provides a system for manufacturing cables for new energy photovoltaic power generation, and the various modules of the system can implement the various steps of the method for manufacturing cables for new energy photovoltaic power generation. Figure 10 A structural block diagram of a cable manufacturing system for new energy photovoltaic power generation provided in an embodiment of the present application is shown. For ease of explanation, only the parts related to the embodiment of the present application are shown.

[0186] Reference Figure 10 , the cable manufacturing system for new energy photovoltaic power generation includes:

[0187] The receiving unit is configured to receive first manufacturing information from the first manufacturing device, wherein the first manufacturing information is used to indicate a manufacturing process of the new energy photovoltaic power generation cable to be manufactured.

[0188] The sending unit is used for the first manufacturing device to send the first manufacturing information to the second manufacturing device. The manufacturing tasks of the first manufacturing device and the second manufacturing device are to manufacture the same type of new energy photovoltaic power generation cable.

[0189] The first response unit is configured to cause the first manufacturing device to receive first control information sent by the second manufacturing device in response to a first operation, wherein the first operation is configured to instruct the second manufacturing device to adjust process parameters based on the first manufacturing information.

[0190] The generating unit is used for the first manufacturing device to generate and store the adjustment process information corresponding to the first control information after receiving the first control information.

[0191] The second response unit is configured to cause the first manufacturing device to erase the first manufacturing information in response to an operation to erase the first manufacturing information, and to send the first erasure information to the second manufacturing device. The operation to erase the first manufacturing information is used to instruct the first manufacturing device to clear the first manufacturing information, and the first erasure information is used to instruct the second manufacturing device to clear the first manufacturing information.

[0192] The manufacturing unit is configured to manufacture according to the first adjustment information and the adjustment process information when the first manufacturing device receives the first adjustment information sent by the second manufacturing device.

[0193] It should be noted that the information interaction, execution process, etc. between the above-mentioned systems / units are based on the same concept as the method embodiment of this application. Their specific functions and technical effects can be found in the method embodiment section and will not be repeated here.

[0194] Those skilled in the art can clearly understand that, for the convenience and brevity of description, only the division of the above-mentioned functional units is used as an example for illustration. In actual applications, the above-mentioned functions can be distributed and completed by 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 embodiment can be integrated into one processing unit, or each unit can exist physically alone, or two or more units can be integrated into one unit. The above-mentioned integrated unit can be implemented in the form of hardware or in the form of software functional units. In addition, the specific names of the functional units are only for the convenience of distinguishing each other, and are not used to limit the scope of protection of this application. The specific working process of the units in the above-mentioned system can refer to the corresponding process in the aforementioned method embodiment, and will not be repeated here.

[0195] The present application also provides a new energy photovoltaic power generation cable manufacturing device. Figure 11 This is a schematic diagram of the structure of the control device of the new energy photovoltaic power generation cable manufacturing equipment provided in one embodiment of the present application. Figure 11 As shown, the control device 6 of this embodiment includes: at least one processor 60 ( Figure 11 Only one is shown), at least one memory 61 ( Figure 11 Only one is shown) 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, the control device 6 implements the steps in any of the above-mentioned embodiments of the method for manufacturing a new energy photovoltaic power generation cable, or implements the functions of the units in the above-mentioned device embodiments.

[0196] For example, 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 implement the present application. The one or more units may be a series of computer program instruction segments capable of implementing specific functions, and the instruction segments are used to describe the execution process of the computer program 62 in the control device 6.

[0197] For example, the cable manufacturing equipment for new energy photovoltaic power generation may include a cable manufacturing device for new energy photovoltaic power generation and a control device 6 electrically connected to the cable manufacturing device for new energy photovoltaic power generation. For example, the cable manufacturing device for new energy photovoltaic power generation may include a cable extrusion device, a cable insulation processing device, a braided shielding device and an outer sheath device. The cable extrusion device is used to extrude the conductor material into the desired shape and size to obtain a primary product. The cable insulation processing device is used to apply insulating material on the surface of the primary product to obtain an insulating product. The braided shielding device is used to braid aluminum foil and copper wire into a braided shielding layer, and put it on the insulating product after insulation treatment to obtain a shielded product. The outer sheath device is used to add an outer sheath layer outside the braided shielding layer of the shielded product to obtain the final cable product. The first manufacturing device can be any one of a cable extrusion device, a cable insulation processing device, a braided shielding device and an outer sheath device, and the second manufacturing device can be any one of a cable extrusion device, a cable insulation processing device, a braided shielding device and an outer sheath device. The first manufacturing device is different from the second manufacturing device. In the first manufacturing device, some basic process parameter settings may have been performed, but due to the complexity and diversity of the process, it is impossible to cover all possible manufacturing requirements. Therefore, the process parameters can be adjusted on the second manufacturing device according to specific requirements to ensure that the final product meets the design and standard requirements. The control device 6 may include, but is not limited to, a processor 60 and a memory 61. Those skilled in the art will understand that, Figure 11 This is merely an example of the control device 6 and does not constitute a limitation on the control device 6 . The control device 6 may include more or fewer components than shown in the figure, or a combination of certain components, or different components. For example, it may also include input and output devices, network access devices, buses, etc.

[0198] The processor 60 may be a central processing unit (CPU), or other general-purpose processors, digital signal processors (DSP), application-specific integrated circuits (ASIC), field-programmable gate arrays (FPGA), or other programmable logic devices, discrete gate or transistor logic devices, or discrete hardware components. A general-purpose processor may be a microprocessor or any conventional processor.

[0199] In some embodiments, the memory 61 may be an internal storage unit of the control device 6, such as a hard disk or memory of the control device 6. In other embodiments, the memory 61 may also be an external storage device of the control device 6, such as a plug-in hard disk, a smart media card (SMC), a secure digital (SD) card, a flash card, etc. equipped on the control device 6. Furthermore, the memory 61 may also include both an internal storage unit of the control device 6 and an external storage device. The memory 61 is used to store an operating system, application programs, a boot loader, data, and other programs, such as the program code of the computer program. The memory 61 may also be used to temporarily store data that has been output or is about to be output.

[0200] An embodiment of the present application further provides a computer-readable storage medium, wherein the computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the steps in any of the above method embodiments are implemented.

[0201] An embodiment of the present application provides a computer program product. When the computer program product is run on a cable manufacturing device for new energy photovoltaic power generation, the cable manufacturing device for new energy photovoltaic power generation can implement the steps in any of the above-mentioned method embodiments.

[0202] If the integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the present application implements all or part of the process in the above-mentioned embodiment method, which can be completed by instructing the relevant hardware through a computer program. The computer program can be stored in a computer-readable storage medium, and the computer program, when executed by the processor, can implement the steps of the above-mentioned various method embodiments. Wherein, the computer program includes computer program code, and the computer program code can be in source code form, object code form, executable file or some intermediate form. The computer-readable medium may at least include: any entity or device capable of carrying the computer program code to a cable manufacturing device for new energy photovoltaic power generation, a recording medium, a computer memory, a read-only memory (ROM), a random access memory (RAM), an electric carrier signal, a telecommunication signal and a software distribution medium. For example, a USB flash drive, a mobile hard disk, a magnetic disk or an optical disk. In some jurisdictions, according to legislation and patent practice, computer-readable media cannot be electric carrier signals and telecommunication signals.

[0203] In the above embodiments, the description of each embodiment has its own focus. For parts that are not described or recorded in detail in a certain embodiment, reference can be made to the relevant description of other embodiments.

[0204] Those skilled in the art will appreciate that the units and algorithm steps of each example 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 performed in hardware or software depends on the specific application and design constraints of the technical solution. Professional and technical personnel 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.

[0205] In the embodiments provided in the present application, it should be understood that the disclosed new energy photovoltaic power generation cable manufacturing equipment and new energy photovoltaic power generation cable manufacturing method can be implemented in other ways. For example, the above-described new energy photovoltaic power generation cable manufacturing equipment embodiment is merely schematic. For example, the division of the units is merely a logical function division. In actual implementation, there may be other division methods, such as multiple units or components that can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be an indirect coupling or communication connection through some interfaces, devices or units, which can be electrical, mechanical or other forms.

[0206] The units described as separate components may or may not be physically separate, and 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 these units may be selected to achieve the purpose of this embodiment according to actual needs.

[0207] The above-described embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. These modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present application, and should all be included in the scope of protection of the present application.

Claims

1. A method for manufacturing a cable for new energy photovoltaic power generation, characterized in that: Applicable to a cable manufacturing device for new energy photovoltaic power generation, the cable manufacturing device for new energy photovoltaic power generation includes a first manufacturing device and a second manufacturing device, the first manufacturing device and the second manufacturing device are electrically connected, and the method includes: The first manufacturing device receives first manufacturing information; wherein the first manufacturing information is used to indicate the manufacturing process of the new energy photovoltaic power generation cable to be manufactured; The first manufacturing device sends the first manufacturing information to the second manufacturing device, and the manufacturing tasks of the first manufacturing device and the second manufacturing device are to manufacture the same type of new energy photovoltaic power generation cable; In response to a first operation, the first manufacturing device receives first control information sent by the second manufacturing device; wherein the first operation is used to instruct the second manufacturing device to adjust process parameters based on the first manufacturing information; After receiving the first control information, the first manufacturing device generates and stores adjustment process information corresponding to the first control information; In response to the operation of erasing the first manufacturing information, the first manufacturing device erases the first manufacturing information and sends a first erasure message to the second manufacturing device; wherein the operation of erasing the first manufacturing information is used to instruct the first manufacturing device to clear the first manufacturing information, and the first erasure message is used to instruct the second manufacturing device to clear the first manufacturing information; When the first manufacturing device receives the first adjustment information sent by the second manufacturing device, the first manufacturing device performs manufacturing according to the first adjustment information and the adjustment process information.

2. The method for manufacturing a new energy photovoltaic power generation cable according to claim 1, wherein: The method for manufacturing a new energy photovoltaic power generation cable further comprises: After the first manufacturing device performs manufacturing according to the first adjustment information and the adjustment process information, the first manufacturing device sends a manufacturing response to the second manufacturing device; The second manufacturing device sends second control information to the first manufacturing device based on the manufacturing response; After receiving the second control information, the first manufacturing device erases the adjustment process information.

3. The method for manufacturing a new energy photovoltaic power generation cable according to claim 2, wherein: After the first manufacturing device receives the first control information, generates and stores adjustment process information corresponding to the first control information, the method further includes: In a case where the interactive operation of the interactive interface of the second manufacturing device is canceled, the first manufacturing device receives the second control information sent by the second manufacturing device; wherein the interactive interface includes a modification selection box for the first adjustment information; After receiving the second control information, the first manufacturing device erases the adjustment process information.

4. The method for manufacturing a new energy photovoltaic power generation cable according to claim 3, wherein: The method for manufacturing a new energy photovoltaic power generation cable further comprises: In a case where the interactive operation of the interactive interface of the second manufacturing device is canceled, the first manufacturing device receives the first adjustment information and the third control information sent by the second manufacturing device; After receiving the third control information, the first manufacturing device erases the adjusted process information if manufacturing has been completed according to the first adjustment information and the adjusted process information; In a case where the manufacturing is not completed according to the first adjustment information and the adjustment process information, the adjustment process information is erased when the manufacturing is completed according to the first adjustment information and the adjustment process information.

5. The method for manufacturing a new energy photovoltaic power generation cable according to claim 3, wherein: After receiving the first control information, the first manufacturing device generates and stores adjustment process information corresponding to the first control information, including: The first manufacturing device parses the control content of the first control information according to the first information identifier; wherein the first information identifier is the information identifier corresponding to the first control information; The first manufacturing device stores the control content of the first control information to store the adjustment process information corresponding to the first control information and the corresponding relationship between the adjustment process information and the first information identifier.

6. The method for manufacturing a new energy photovoltaic power generation cable according to claim 5, wherein: The method for manufacturing a new energy photovoltaic power generation cable further comprises: In a case where the manufacturing process does not need to be adjusted, in response to a second operation, restoring the first manufacturing information; The first manufacturing device and the second manufacturing device perform collaborative manufacturing based on the first manufacturing information.

7. The method for manufacturing a new energy photovoltaic power generation cable according to claim 5, wherein: The method for manufacturing a new energy photovoltaic power generation cable further comprises: Generate a manufacturing request according to the first adjustment information and the adjustment process information; wherein the manufacturing request is used to request the first manufacturing device and the second manufacturing device to perform a manufacturing task; Determining, based on the manufacturing request, whether the manufacturing request indicates manufacturing of a primary product; wherein the primary product is a primary cable product that has completed a manufacturing process on the first manufacturing device; the first manufacturing device is a device electrically connected to the second manufacturing device and configured with manufacturing parameters different from those of the second manufacturing device; If the manufacturing request is to instruct manufacturing of a primary product, obtaining device detail information; wherein the device detail information includes at least one of the second manufacturing devices; Acquire the device status of each second manufacturing device in the device detailed information; determining the second manufacturing device in the device detailed information that is in a state where the manufacturing request can be executed as a target device; The manufacturing request is sent to the target device, and the target device is controlled to process and manufacture the primary product to obtain a refined product; wherein the refined product refers to a product manufactured by the first manufacturing device and the second manufacturing device.

8. The method for manufacturing a new energy photovoltaic power generation cable according to claim 7, wherein: The obtaining of the device status of each second manufacturing device in the device detailed information includes: Acquire the manufacturing status and device health status of each second manufacturing device in the device detailed information; For each of the second manufacturing devices, determining the device status according to the manufacturing status and device health status; The determining of the device status of each second manufacturing device according to its manufacturing status and device health status includes: If the second manufacturing device is in both a manufacturing state and a device health state, determining that the second manufacturing device is in a state capable of executing a manufacturing request; If the second manufacturing device is not in the manufacturing state and / or is in the device failure state, it is determined that the second manufacturing device is in the manufacturing request inoperable state.

9. A new energy photovoltaic power generation cable manufacturing system, applied to new energy photovoltaic power generation cable manufacturing equipment, the new energy photovoltaic power generation cable manufacturing equipment comprising a first manufacturing device and a second manufacturing device, the first manufacturing device and the second manufacturing device being electrically connected, the new energy photovoltaic power generation cable manufacturing system comprising: A receiving unit, configured for a first manufacturing device to receive first manufacturing information; wherein the first manufacturing information is used to indicate a manufacturing process of a new energy photovoltaic power generation cable to be manufactured; A sending unit, configured for the first manufacturing device to send the first manufacturing information to the second manufacturing device, wherein the manufacturing tasks of the first manufacturing device and the second manufacturing device are to manufacture the same type of new energy photovoltaic power generation cable; a first response unit, configured to cause the first manufacturing apparatus to receive, in response to a first operation, first control information sent by the second manufacturing apparatus; wherein the first operation is configured to instruct the second manufacturing apparatus to adjust process parameters based on the first manufacturing information; a generating unit, configured for the first manufacturing device to generate and store adjustment process information corresponding to the first control information after receiving the first control information; a second response unit, configured for the first manufacturing device to erase the first manufacturing information in response to an operation of erasing the first manufacturing information, and to send a first erasure message to the second manufacturing device; wherein the operation of erasing the first manufacturing information is used to instruct the first manufacturing device to clear the first manufacturing information, and the first erasure message is used to instruct the second manufacturing device to clear the first manufacturing information; The manufacturing unit is configured to manufacture according to the first adjustment information and the adjustment process information when the first manufacturing device receives the first adjustment information sent by the second manufacturing device.

10. A cable manufacturing equipment for new energy photovoltaic power generation, characterized in that: The cable manufacturing equipment for new energy photovoltaic power generation includes a cable manufacturing device for new energy photovoltaic power generation and a control device electrically connected to the cable manufacturing device for new energy photovoltaic power generation. The cable manufacturing device for new energy photovoltaic power generation includes a first manufacturing device and a second manufacturing device, and the first manufacturing device and the second manufacturing device are electrically connected. The control device includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the method described in any one of claims 1 to 8 is implemented.

Citation Information

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