Preparation method of vertical fuse and related device
Patent Information
- Application Number
- CN202511516678.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-23
- Publication Date
- 2025-11-21
AI Technical Summary
传统熔断器生产过程中,按照顺序处理各个部件导致产线较长,制备效率不高。
通过获取目标熔断器的制备参数,确定部件类型并生成控制流程表,分类型并行制备,利用控制信号控制操作工具执行制备操作。
提高了熔断器的制备效率,优化了生产流程,减少了生产时间。
Smart Images

Figure CN120998742A_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of electrical data processing technology, specifically relating to a method for preparing a vertical fuse and related apparatus. Background Technology
[0002] In the field of new energy vehicles, since the entire vehicle needs to be driven by electric power, a large number of fuses are required to provide electrical protection for the vehicle's circuits and critical components. Therefore, fuses are widely used in the field of new energy vehicles.
[0003] Currently, the traditional fuse manufacturing process requires processing each component of the fuse sequentially to obtain multiple components that meet preset specifications. However, this sequential manufacturing process results in a long production line and low manufacturing efficiency. Summary of the Invention
[0004] This application provides a method and related apparatus for manufacturing a vertical fuse, aiming to improve the manufacturing efficiency of fuses.
[0005] In a first aspect, this application provides a method for manufacturing a vertical fuse, comprising: Obtain the manufacturing parameters of the target fuse, which includes multiple components; Based on the preparation parameters, the preparation steps corresponding to each of the plurality of components are determined, resulting in a plurality of preparation steps; The component type of each component is determined according to the manufacturing steps corresponding to each component, resulting in multiple component types; A control flow table is generated based on the multiple component types and the multiple preparation steps, and the control flow table includes the execution order of the multiple preparation steps; A control signal is generated according to the control flow table, and the control signal is output to the operating tool to control the operating tool to perform the corresponding preparation operation to prepare the target fuse.
[0006] In conjunction with the first aspect, in one possible embodiment, the plurality of components includes component types including independent, combined, and hybrid types; the step of determining the component type of each component according to the preparation steps corresponding to each component to obtain a plurality of component types includes: comparing and analyzing each preparation step with other steps in the plurality of preparation steps to determine the preparation relationship between the plurality of components; if the preparation relationship determines that the component does not interfere with other components during preparation, then the corresponding component type is determined to be independent; if the preparation relationship determines that the component interferes with other components during preparation, then the corresponding component type is determined to be combined.
[0007] In conjunction with the first aspect, in one possible embodiment, generating a control flow table based on the plurality of component types and the plurality of preparation steps includes: if the component type corresponding to a component is independent, then determining the preparation step corresponding to the component as a first priority; if the component type corresponding to a component is combined, then determining the preparation step corresponding to the component as a second priority; wherein the first priority is higher than the second priority; sorting the plurality of preparation steps according to the first priority and the second priority to generate the control flow table.
[0008] In conjunction with the first aspect, in one possible embodiment, generating a control signal according to the control flow table and outputting the control signal to the operating tool to control the operating tool to perform corresponding preparation operations to prepare the target fuse includes: generating a first control signal according to the control flow table and outputting the first control signal to the operating tool, the first control signal being used to instruct the operating tool to execute preparation steps of a first priority in parallel; after the preparation steps of the first priority are completed, generating a second control signal according to the control flow table and outputting the second control signal to the operating tool, the second control signal being used to instruct the operating tool to execute the preparation steps corresponding to the second priority in a preset order.
[0009] In conjunction with the first aspect, in one possible embodiment, the first priority preparation step includes a conductor preparation step and a tube preform preparation step; generating a first control signal according to the control flow table and outputting the first control signal to the operating tool includes: determining the conductor preparation step and the tube preform preparation step according to the control flow table; obtaining a first parameter from the preparation parameters according to the conductor preparation step; obtaining a second parameter from the preparation parameters according to the tube preform preparation step; generating the first control signal according to the first parameter and the second parameter, wherein the first control signal is used to instruct the operating tool to prepare the conductor and the tube preform in parallel according to the first parameter and the second parameter.
[0010] In conjunction with the first aspect, in one possible embodiment, the first control signal includes a first control sub-signal and a second control sub-signal; the first parameter includes a first material parameter and a first process parameter; the second parameter includes a second material parameter and a second process parameter; generating the first control signal based on the first parameter and the second parameter includes: outputting a first control sub-signal based on the first material parameter and the second material parameter, the first control sub-signal being used to instruct the operating tool to acquire the first material and the second material; outputting a second control sub-signal based on the first process parameter and the second process parameter; the second control sub-signal being used to instruct the operating tool to process the first material into a conductor of corresponding specifications, and to inject the second material into a first molding die to obtain a tube blank; wherein, the conductor includes a molten metal, a first connecting portion, a second connecting portion, a first electrode, and a second electrode; the first electrode is connected to a first end of the molten metal through the first connecting portion, and the second electrode is connected to a second end of the molten metal through the second connecting portion; the tube blank is provided with a receiving cavity, and a first opening is provided at the first end of the tube blank.
[0011] In conjunction with the first aspect, in one possible embodiment, the preparation step of the second priority includes a second molding step and a post-processing step; generating a second control signal according to the control flow and outputting the second control signal to the operating tool includes: determining the second molding step and the post-processing step according to the control flow; obtaining a third parameter from the preparation parameters according to the second molding step; obtaining a fourth parameter from the preparation parameters according to the post-processing step; generating the second control signal according to the third parameter and the fourth parameter, the second control signal being used to instruct the operating tool to sequentially prepare the base and perform the post-processing operation according to the third parameter and the fourth parameter; wherein, the base includes at least one platform, the at least one platform having a first through hole and a second through hole, the first connecting portion and the second connecting portion respectively passing through the first through hole and the second through hole, such that the first electrode and the second electrode respectively exit from the first through hole and the second through hole.
[0012] In conjunction with the first aspect, in one possible embodiment, the second control signal includes a third control sub-signal, a fourth control sub-signal, a fifth control sub-signal, and a sixth control sub-signal. The third parameter includes a third material parameter and a third process parameter, and the fourth parameter includes a fourth material parameter and a fourth process parameter. Generating the second control signal based on the third and fourth parameters includes: generating a third control sub-signal based on the third material parameter, the third control sub-signal being used to instruct the operating tool to acquire a third material; generating a fourth control sub-signal based on the third process parameter, the fourth control sub-signal being used to instruct the operating tool to place the conductor in a second molding die and inject the third material into the second molding die to obtain a base with the conductor inserted; generating a fifth control sub-signal based on the fourth material parameter, the fifth control sub-signal being used to instruct the operating tool to acquire a fourth material; and generating a sixth control signal based on the fourth process parameter, the sixth control signal being used to instruct the operating tool to combine the base with the conductor inserted with the tube blank to obtain an initial fuse, and to perform filling and encapsulation processing on the initial fuse based on the fourth material to obtain the target fuse.
[0013] In a second aspect, this application provides an electronic device including a processor, a memory, a communication interface, and one or more programs, said one or more programs being stored in the memory and configured to be executed by the processor, said programs including instructions for performing the steps of the first aspect of this application.
[0014] Thirdly, this application provides a computer-readable storage medium storing a computer program for electronic data interchange, wherein the computer program causes a computer to perform some or all of the steps described in the first aspect of this application.
[0015] Fourthly, this application provides a computer program product, wherein the computer program product includes a non-transitory computer-readable storage medium storing a computer program operable to cause a computer to perform some or all of the steps described in the first aspect of this application. The computer program product may be a software installation package.
[0016] As can be seen, in this application, the fabrication parameters of the target fuse are first obtained, and the target fuse includes multiple components; based on the fabrication parameters, the component types of the multiple components are determined; based on the component types, multiple fabrication steps of the multiple components are determined; a control flow table is generated based on the multiple fabrication steps, and the control flow table includes the execution order of the multiple fabrication steps; a control signal is generated based on the control flow table, and the control signal is output to the operating tool to control the operating tool to perform the corresponding fabrication operation to fabricate the target fuse. In this way, the components of the fuse are classified, the fabrication order is determined according to the type, and then the components are fabricated in parallel by type, which improves the fabrication efficiency. Attached Figure Description
[0017] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0018] Figure 1 This is a schematic diagram of the structure of the fuse manufacturing equipment provided in the embodiments of this application; Figure 2 This is a schematic flowchart of the manufacturing method of the vertical fuse provided in the embodiments of this application; Figure 3 This is a schematic diagram of the structure of the conductor provided in the embodiments of this application; Figure 4 This is a schematic diagram of the structure of the tube embryo provided in the embodiments of this application; Figure 5 This is a schematic diagram of the integrated conductor and base provided in an embodiment of this application; Figure 6 This is a schematic diagram of the structure of the base provided in the embodiment of this application; Figure 7 This is a schematic diagram of the structure of the initial fuse provided in the embodiment of this application; Figure 8 This is a schematic diagram of the reinforcing hoop provided in an embodiment of this application; Figure 9 This is a schematic block diagram of the structure of the vertical fuse manufacturing apparatus provided in the embodiments of this application; Figure 10 This is a schematic diagram of the structure of the electronic device provided in the embodiments of this application. Detailed Implementation
[0019] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present application.
[0020] The terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or apparatus that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, systems, products, or apparatuses.
[0021] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0022] Currently, the traditional fuse manufacturing process requires processing each component of the fuse sequentially to obtain multiple components that meet preset specifications. However, this sequential manufacturing process results in a long production line and low manufacturing efficiency.
[0023] To address the aforementioned problems, this application provides a method for manufacturing a vertical fuse. This method can be applied to scenarios involving the categorized manufacturing of fuses. It involves obtaining manufacturing parameters from a target fuse, which includes multiple components; determining the component types of the multiple components based on the manufacturing parameters; determining multiple manufacturing steps for the multiple components based on the component types; generating a control flow table based on the multiple manufacturing steps, the control flow table including the execution order of the multiple manufacturing steps; generating a control signal based on the control flow table, and outputting the control signal to an operating tool to control the operating tool to execute the corresponding manufacturing operation to produce the target fuse. This method categorizes the fuse components, determines the manufacturing order based on type, and then manufactures them in parallel by type, improving manufacturing efficiency. This solution is applicable to various scenarios, including but not limited to the applications mentioned above.
[0024] The system architecture involved in the embodiments of this application is described below.
[0025] This application provides a fuse manufacturing apparatus 110, which includes a main control module 101 and multiple operating tools (such as...). Figure 1 The main control module 101 determines multiple preparation steps corresponding to the multiple components based on the preparation parameters (operating tools 1, 2 to N). Then, it determines the component type for each component based on these multiple steps. Finally, it generates a control flow table based on the obtained preparation steps and component types. At the start of production, preparation steps that can be prepared in parallel are executed simultaneously according to the execution order in the control flow table, while components that cannot be prepared in parallel are prepared sequentially. At this time, it is only necessary to output the corresponding first control signal to the operating tools required for the multiple preparation steps executed in parallel, so as to control at least one operating tool to execute the corresponding preparation steps in parallel; then, a second control signal is sent to the operating tools to control them to prepare the components that cannot be prepared in parallel sequentially, ultimately producing the target fuse, thereby improving the fuse preparation efficiency.
[0026] For example, at least one operating tool may include one or more of a robot arm, a lathe, a conveyor, and an injection molding tool, and may also include other tools, without being limited to a single tool.
[0027] Specifically, the number of tools required varies depending on the step. For example, preparing a tube preform requires a robotic arm and injection molding tools, and may also require a conveyor to transport the material, but a lathe is not necessarily needed. Conversely, preparing a conductor requires a robotic arm and a lathe for cutting. Therefore, the appropriate tools can be configured according to the specific preparation steps. Specifically, when generating the control flow chart, corresponding tools can be assigned to each step.
[0028] The following is a detailed introduction to the specific manufacturing method of vertical fuses.
[0029] Please see Figure 2 This application also provides a method for manufacturing a vertical fuse, comprising: Step S201: Obtain the manufacturing parameters of the target fuse, which includes multiple components.
[0030] In a specific implementation, the target fuse includes multiple components, each of which is configured with corresponding preparation sub-parameters, that is, the preparation parameters include multiple preparation sub-parameters.
[0031] Optionally, the fuse manufacturing method in this embodiment is applied to a fuse manufacturing equipment, which can be a main control console or other control equipment in a fuse production line. The manufacturing parameters can be input by the user into the fuse manufacturing equipment via an input device, which can be either built into the fuse manufacturing equipment or an external device; no limitation is made here.
[0032] It is understandable that the fabrication parameters of each component of the target fuse can be configured individually. Therefore, the execution order of some decoupled structures among multiple components may not be unique. The specific execution order can be associated with the corresponding execution order when the user inputs the fabrication parameters as needed.
[0033] Step S202: Based on the preparation parameters, determine the preparation steps corresponding to each of the plurality of components to obtain a plurality of preparation steps.
[0034] In practice, before production begins, corresponding preparation steps need to be configured for each component. These preparation steps specify how to prepare the corresponding component. The main control module can then control the appropriate tools to prepare the component based on these steps. After configuration, the system can query the corresponding preparation steps for a component, or vice versa.
[0035] Step S203: Determine the component type of each component according to the preparation steps corresponding to each component, and obtain multiple component types.
[0036] In one possible embodiment, the plurality of components includes component types including independent, combined, and hybrid types; determining the component type of each component based on the preparation steps corresponding to each component to obtain multiple component types includes: comparing and analyzing each preparation step with other steps in the plurality of preparation steps to determine the preparation relationship between the multiple components; if the preparation relationship determines that the component does not interfere with other components during preparation, then the corresponding component type is determined to be independent; if the preparation relationship determines that the component interferes with other components during preparation, then the corresponding component type is determined to be combined.
[0037] In practice, due to differences in shape, function, and material, the fabrication processes for multiple components also differ. Some components can be fabricated in parallel, while others require sequential fabrication. Therefore, in this embodiment, the component type of each component is determined before production begins. The component type reflects the fabrication method (i.e., parallel or sequential fabrication) that can be used for the corresponding component.
[0038] Specifically, since each component is associated with related fabrication steps, we only need to compare the fabrication steps of each component to obtain the corresponding fabrication relationships. These relationships characterize whether each pair of components involves the other during fabrication, or whether the other's participation is required. If the other's participation is required, it's a combined type; if not, it's an independent type.
[0039] The component type of each component can be determined based on its fabrication relationship with other components, and then a corresponding type tag can be associated with each component. Specifically, if a component can be fabricated independently without involving other components in the fabrication process, it is classified as an independent component and an independent fabrication tag is associated with it; if a component cannot be fabricated independently and requires cooperation with other components to complete the fabrication, it is classified as a combined component and a combined fabrication tag is associated with it.
[0040] As can be seen, in this embodiment, multiple components are classified into component types according to their preparation relationship with other components, providing data support for the subsequent generation and execution order.
[0041] Step S204: Generate a control flow table based on the multiple component types and the multiple manufacturing steps.
[0042] The control flow table includes the execution order of the multiple preparation steps.
[0043] In one possible embodiment, generating a control flow table based on the plurality of component types and the plurality of preparation steps includes: if the component type corresponding to a component is independent, then determining the preparation step corresponding to the component as a first priority; if the component type corresponding to a component is combined, then determining the preparation step corresponding to the component as a second priority; wherein the first priority is higher than the second priority; sorting the plurality of preparation steps according to the first priority and the second priority to generate the control flow table.
[0044] In the specific implementation, the specific components of the target fuse, the corresponding manufacturing steps for each component, and the component type are currently known. Based on the component type, it can be determined whether a component can be manufactured in parallel. If it can be manufactured in parallel, it is designated as the first priority and processed first. If it cannot be manufactured in parallel, it is designated as the second priority, and the first priority manufacturing steps must be executed first before the second priority manufacturing steps are performed.
[0045] Specifically, in this embodiment, the preparation steps with the first priority are first sorted and processed first. Then, the preparation steps with the second priority can be sorted according to the original preparation order to generate the corresponding control flow table.
[0046] As can be seen, in this embodiment, the preparation steps of multiple components are sorted according to the component types of multiple components, and then the corresponding control flow table is generated. This quickly determines the preparation order of multiple components, eliminates the need for manual configuration of the preparation order, and improves the production efficiency of fuses.
[0047] Step S205: Generate a control signal according to the control flow table, and output the control signal to the operating tool to control the operating tool to perform the corresponding preparation operation to prepare the target fuse.
[0048] In one possible embodiment, the step of generating a control signal according to the control flow table and outputting the control signal to the operating tool to control the operating tool to perform a corresponding preparation operation to prepare the target fuse includes: A first control signal is generated according to the control flow table and output to the operating tool. The first control signal is used to instruct the operating tool to execute the preparation steps of the first priority in parallel. After the preparation steps of the first priority are completed, a second control signal is generated according to the control flow and output to the operating tool. The second control signal is used to instruct the operating tool to execute the preparation steps corresponding to the second priority in a preset order.
[0049] In practice, it is understandable that during the preparation process, the main control module needs to continuously output a series of control signals to the operation control in order to complete the entire preparation process and finally obtain the corresponding component.
[0050] Specifically, after generating the control flow table, execution can begin based on the pre-configured execution order. First, the highest priority preparation steps are the first-priority steps, which can be executed in parallel. Therefore, the main control module simultaneously generates and sends first control signals to the corresponding operating tools based on these preparation steps, instructing the operating tools to execute the independent preparation steps first. Then, the remaining second-priority preparation steps output their corresponding control signals sequentially, thus achieving the serial execution of the second-priority preparation steps.
[0051] Optionally, the preset order can be the original execution order of the preparation steps of the target fuse, a randomly arranged execution order, or a sorting order according to the mutual preparation relationship, without being limited to uniqueness.
[0052] As can be seen, in this embodiment, the corresponding control signals are generated based on the control flow table to control the operating tools to complete the preparation of the target fuse, thereby improving the production efficiency of the fuse.
[0053] In one possible embodiment, the first priority preparation step includes a conductor preparation step and a tube preform 10 preparation step; generating a first control signal according to the control flow table and outputting the first control signal to the operating tool includes: determining the conductor preparation step and the tube preform 10 preparation step according to the control flow table; obtaining a first parameter from the preparation parameters according to the conductor preparation step; obtaining a second parameter from the preparation parameters according to the tube preform 10 preparation step; generating the first control signal according to the first parameter and the second parameter, wherein the first control signal is used to instruct the operating tool to prepare the conductor 30 and the tube preform 10 in parallel according to the first parameter and the second parameter.
[0054] Specifically, the first control signal includes a first control sub-signal and a second control sub-signal; the first parameter includes a first material parameter and a first process parameter; the second parameter includes a second material parameter and a second process parameter; generating the first control signal based on the first and second parameters includes: outputting a first control sub-signal based on the first and second material parameters, the first control sub-signal being used to instruct the operating tool to acquire the first and second materials; outputting a second control sub-signal based on the first and second process parameters; the second control signal being used to instruct the operating tool to process the first material into a conductor 30 of corresponding specifications, and to inject the second material into a first molding die to obtain a tube blank 10; wherein, please refer to Figure 3 The conductor 30 includes a molten metal, a first connecting portion 312, a second connecting portion 313, a first electrode 32, and a second electrode 33. The first electrode 32 is connected to a first end of the molten metal via the first connecting portion 312, and the second electrode 33 is connected to a second end of the molten metal via the second connecting portion 313. The molten metal includes a melting portion 311. (See also...) Figure 4 The tube body 10 has a receiving cavity, and the first end of the tube body 10 has a first opening.
[0055] In a specific implementation, for the parallel execution of preparation steps, a first control signal is output to the operating tool. After the operating tool receives the first control signal, it begins to execute the corresponding preparation steps in parallel.
[0056] Specifically, in this embodiment, taking the conductor preparation step and the tube preform 10 preparation step as examples, these two preparation steps can be performed independently, without involving other components during the preparation process. After receiving the first control sub-signal, the operating tool obtains a long strip of the first material according to the required thickness, and at the same time obtains the second material (PA66+30% glass fiber) to prepare the tube preform 10 as required.
[0057] Regarding the conductor preparation step, after receiving the second control sub-signal, the operating tool performs the following operations: First, using CNC technology, the surface thickness of the material is reduced at a first predetermined location in the middle of the first material through milling, so as to thin the first predetermined location to meet the thickness requirements of the molten metal, thereby preparing the first predetermined location into a molten metal. This first predetermined location is the middle part of the first material. Then, several rows of through holes are formed on the thinned first predetermined location by means of die stamping or laser cutting, etc., and the lateral spacing between every two through holes serves as the fusible neck 321 of the molten metal; then, using a bending die, the molten metal is bent into a U-shape in the middle, forming a horizontal part 322 and two vertical parts (as shown in the figure, the first vertical part 323 and the second vertical part 324). Preferably, the horizontal portion 322 does not have a narrow neck 321, and the narrow necks 321 on the two vertical portions are not on the same horizontal plane. After the conductor 30 is bent, the ends of the two vertical portions are on the same horizontal plane, serving as end electrodes (as shown in the figure, the first electrode 32 and the second electrode 33). Finally, the conductor 30 that meets the design requirements is obtained by overall tin plating or tin plating at the end electrode positions. The absence of a narrow neck 321 on the horizontal portion 322 can prevent the risk of the narrow neck 321 melting and affecting the upper end of the tube blank 10 when the molten metal is installed inside the tube blank 10 and the distance from its upper inner surface is too small, thus preventing the risk of not being able to disconnect safely. The narrow necks 321 on the two vertical portions are designed on different horizontal planes to prevent the arcs generated on different narrow necks 321 from affecting each other and causing arc extinguishing difficulties when the narrow necks 321 melt simultaneously under abnormally high current.
[0058] Regarding the preparation step of tube body preform 10, the operating tool performs the following operations after receiving the second control sub-signal: In practice, the tube preform 10 is manufactured using injection molding based on the second material. Before injection molding, the second material must undergo strict drying treatment to control the moisture content to ≤0.03% to avoid defects such as bubbles and silver streaks during the molding process. The first molding die adopts a multi-cavity structure, with the number of cavities set according to production efficiency requirements. The surface of the mold cavities is mirror-polished to a roughness Ra≤0.2μm, ensuring that the surface finish of the molded tube preform 10 meets the product's appearance and performance requirements. That is, multiple tube preforms 10 can be produced each time through injection molding using the multi-cavity first molding die, with the specific number produced being the same as the number of mold cavities.
[0059] During injection molding, segmented temperature control is employed: the barrel temperature is set at 260-270℃ in the front section, 250-260℃ in the middle section, and 240-250℃ in the rear section, while the nozzle temperature is 270-280℃. The injection speed utilizes a variable speed control strategy, starting fast and gradually decreasing. The rapid filling stage speed is 70-90 mm / s, while the holding pressure stage speed drops to 15-25 mm / s, ensuring a dense internal structure and eliminating issues such as shrinkage marks and material shortages. Through precise injection molding process control, the tube preform 10 is molded into the preset shape, with dimensional accuracy controlled within ±0.05 mm and wall thickness uniformity deviation ≤0.1 mm, meeting subsequent assembly and performance requirements.
[0060] As can be seen, in this embodiment, there is no overlap between the conductor preparation step and the tube blank 10 preparation step, which can be executed in parallel, thus improving the preparation efficiency of the target fuse components.
[0061] In one possible embodiment, the second priority preparation step includes a second molding step and a post-processing step; generating a second control signal according to the control flow and outputting the second control signal to the operating tool includes: determining the second molding step and the post-processing step according to the control flow; obtaining a third parameter from the preparation parameters according to the second molding step; obtaining a fourth parameter from the preparation parameters according to the post-processing step; generating the second control signal according to the third parameter and the fourth parameter, the second control signal being used to instruct the operating tool to sequentially prepare the base 20 and perform the post-processing operation according to the third parameter and the fourth parameter; wherein, please refer to Figure 5 and Figure 6 The base 20 includes at least one platform, on which a first through hole 25 and a second through hole 26 are provided. The first connecting part 312 and the second connecting part 313 are respectively inserted into the first through hole 25 and the second through hole 26, so that the first electrode 32 and the second electrode 33 are respectively inserted out from the first through hole 25 and the second through hole 26.
[0062] In one possible embodiment, please refer to Figure 6 and Figure 7 The insulating base 20 includes a first substrate 23, from which at least one platform extends. A first connecting portion can be provided on the at least one platform for connection with the tube blank. The first connecting portion may be a wedge-shaped protrusion 21, which includes a guide cone surface 22.
[0063] Specifically, the second control signal includes a third control sub-signal, a fourth control sub-signal, a fifth control sub-signal, and a sixth control sub-signal. The third parameter includes a third material parameter and a third process parameter, and the fourth parameter includes a fourth material parameter and a fourth process parameter. Generating the second control signal based on the third and fourth parameters includes: generating a third control sub-signal based on the third material parameter, wherein the third control sub-signal is used to instruct the operating tool to acquire the third material; and generating a fourth control signal based on the third process parameter, wherein the fourth control signal is used to instruct the operating tool to move the conductor 3. The conductor 30 is placed in the second molding mold, and the third material is injected into the second molding mold to obtain a base 20 with the conductor 30 inserted therein; a fifth control sub-signal is generated according to the fourth material parameters, the fifth control sub-signal being used to instruct the operating tool to acquire the fourth material; and a sixth control sub-signal is generated according to the fourth process parameters, the sixth control signal being used to instruct the operating tool to combine the base 20 with the conductor 30 with the tube blank 10 to obtain an initial fuse 100, and to perform filling and encapsulation processing on the initial fuse 100 according to the fourth material to obtain the target fuse.
[0064] In a specific implementation, for the preparation steps to be executed serially, a second control signal is output to the operating tool. After the operating tool receives the second control signal, it begins to execute the corresponding preparation steps serially.
[0065] Specifically, in this embodiment, taking the second molding step and the post-processing step as examples, both of these preparation steps need to be performed sequentially, and the preparation process requires the cooperation of other components. Among them, For the second molding step, after receiving the third control sub-signal, the operating tool acquires the third material, and then, after receiving the fourth control sub-signal, performs the following operations: The molded conductor 30 is placed at a specific position on the second molding die of the base 20, and the conductor 30 and base 20 are molded into a single unit using the Insert Molding process. In other words, a base 20 is generated by injection molding at the ends of the vertical sections on both sides of the conductor 30, making the conductor 30 and base 20 a single unit. The in-mold molding process is a crucial step in building the basic structure throughout the entire production process. First, the prepared conductor 30 requires rigorous pretreatment. Through high-precision surface cleaning and activation processes, impurities such as surface oxide films and oil stains are removed to ensure a surface roughness Ra ≤ 0.8 μm, meeting the requirements of the Insert Molding process for the metal-plastic interface. Then, the pre-treated conductor 30 is precisely placed into a specific positioning groove in the second molding die of the base 20. This positioning groove is manufactured by precision CNC machining, with dimensional tolerances controlled within ±0.02mm. Combined with a high-precision positioning pin and guide post system, sub-micron level positioning accuracy of the metal conductor 30 is achieved. When using the Insert Molding process, PA66 + 30% glass fiber (the same as the second material) is selected as the raw material for the base 20. This material possesses both excellent mechanical strength and electrical insulation. Its melt flow rate (MFR) must be strictly controlled at 15-20g / 10min (275℃ / 2.16kg). The uniform distribution of glass fiber significantly improves the material's rigidity and creep resistance. During the injection molding process, the mold temperature is set at 85-95℃, the injection pressure is maintained at 90-130MPa, and the holding time is 18-22s. By precisely controlling the parameters, the molten PA66+30% glass fiber fully encapsulates the first connecting portion 312 and the second connecting portion 313 of the conductor 30 within the mold. After cooling and solidification, a robust metal-plastic composite structure is formed. Testing shows that the interfacial shear strength of this composite structure must reach ≥30MPa to ensure a firm bond between the conductor 30 and the base 20, while also meeting electrical insulation performance requirements with an insulation resistance ≥10¹²Ω.
[0066] For the post-processing steps, after receiving the fifth control sub-signal, the operating tool acquires the fourth material, and then performs the following operations after receiving the sixth control sub-signal: Please refer to the following: Figure 7 The conductive body 30 fixed on the base 20 is inserted into the hollow cavity in the middle of the tube blank 10. Through the preset positioning position, the wedge-shaped protrusion 21 on the base 20 is pressed into the receiving groove 11 on the inner wall of the tube blank 10, thereby completing the assembly of the base 20 and the tube blank 10.
[0067] Precisely inserting the conductor 30 fixed on the base 20 into the receiving groove in the middle of the tube blank 10 is a key process for achieving structural integration of the target fuse. This assembly process, through the cooperation of a multi-dimensional positioning mechanism and precision machinery, ensures the precise alignment of each component in three-dimensional space. The process details are as follows: Before insertion, the inner surface of the receiving groove of the tube blank 10 needs to be pretreated. The receiving groove of the tube blank 10 is cleaned with plasma cleaning technology to remove surface oil and oxide layer, thereby improving the interlocking strength of the subsequent wedge structure. After pretreatment, a six-axis robotic arm grasps the base 20 with a conductor 30. Its end effector is equipped with a high-precision force sensor (resolution 0.01N) to monitor the axial pressure and radial offset during the insertion process in real time.
[0068] The insertion process employs a step-by-step positioning strategy: First, the robotic arm aligns the conductor 30 with the cavity entrance of the tube blank 10 at a speed of 5 mm / s. A visual positioning system (accuracy ±0.05 mm) ensures that the axial deviation between the conductor 30 and the tube blank 10 is ≤0.1 mm. When the connection point 24 between the conductor 30 and the base 20 enters the cavity to the first length, the first stage of positioning is initiated. The guide cone 22 on the wedge-shaped protrusion at the bottom of the base 20 (the taper formed by the guide cone 22 and the side wall of the base 20 is greater than 15°) forms initial guidance with the chamfered structure of the tube entrance, further reducing the radial offset to ≤0.03 mm. As the insertion depth increases to the second length, the wedge-shaped protrusion 21 on the base 20 begins to contact the receiving groove 11 on the inner wall of the tube blank 10. At this point, the robotic arm switches to constant force control mode and continues to advance with a thrust of 0.5 N.
[0069] The wedge-shaped protrusion 21 and the receiving groove 11 are fitted using a precision mold: the wedge angle of the wedge-shaped protrusion 21 can be designed from 15° to 45°, and is preferably 30° in this embodiment. Its top surface has a 0.2mm rounded transition to avoid stress concentration. The inner wall of the receiving groove 11 is provided with a 10° chamfer 12 to form a wedge-shaped self-locking structure. When the wedge-shaped protrusion 21 is fully pressed into the receiving groove 11, the fit gap between the wedge-shaped protrusion 21 and the chamfer 12 is ≤0.02mm. The contact surface undergoes microscopic plastic deformation through cold extrusion, forming a mechanical engagement. During this process, a piezoelectric sensor installed on the assembly mold monitors the pressing force curve in real time. When the force value reaches a preset threshold (1.2-1.5N), the system determines that the positioning is complete, the robotic arm stops moving, and at this time the base 20 and the tube blank 10 are assembled.
[0070] After assembly, multiple performance tests are required on the joint: the mating clearance of the wedge structure is measured using a laser interferometer, requiring no obvious gaps to be observed under a 100x microscope; the interface bonding state between the conductor 30 and the tube blank 10 is inspected using an ultrasonic scanning microscope (SAM) to ensure there are no bubbles or delamination defects; finally, the sealing performance is verified through an airtightness test (pressure 100kPa, pressure held for 30s). This assembly process, through precise structural design and automated control, significantly reduces the scrap rate of traditional assembly processes, while shortening the assembly time of individual products, thus significantly improving production efficiency and product reliability.
[0071] Using a vibration filling process, the arc-extinguishing material is added into the tube blank 10 through the sand filling hole 13 to achieve the required filling density.
[0072] The arc-extinguishing material is filled using a vibration filling process, and refined quartz sand with a particle size of 35-120 mesh is selected, with a silica content of ≥99.9% and a moisture content of ≤0.1%. Before filling, the tube blank 10 is preheated at 40-50℃ to reduce the surface tension of the material and improve the filling effect.
[0073] During the filling process, the tube blank 10 is vertically fixed on an electromagnetic vibration table. The vibration frequency is set to 20-30Hz, and the amplitude is 0.5-1.0mm, ensuring that the arc-extinguishing material is uniformly and densely filled under the combined effects of gravity and vibration. The filling quality is monitored using a weighing method. After filling is complete, a density testing device is used to ensure that the filling density reaches the required level. This ensures that the arc-extinguishing material functions effectively when the fuse disconnects the circuit.
[0074] Please see Figure 8 Furthermore, a reinforcing hoop 40 can be prepared based on post-processing steps. The reinforcing hoop 40 has a penetrating cavity 41. The reinforcing hoop 40 is pressed upward from the end where the base 20 is located through the penetrating cavity 41, covering the sand filling hole 13. The upper part of the reinforcing hoop 40 can be narrowed to prevent the reinforcing hoop 40 from falling off during product vibration, etc., and to improve the fastening force, thereby obtaining the target fuse of the present invention. The target fuse is a vertical fuse.
[0075] After the arc-extinguishing material is filled, a reinforcing hoop 40 is pressed upwards from the bottom end of the tube blank 10 with the sand filling hole 13. The reinforcing hoop 40 is made of an elastic metal material (such as beryllium bronze or stainless steel), and its elastic modulus and hardness are precisely adjusted to ensure sealing performance and mechanical strength. The pressing process uses a special hydraulic pressing equipment, with the pressing speed controlled at 5-10 mm / s and the pressure set at 8-12 kN, ensuring that the reinforcing hoop 40 is accurately pressed along the outer surface of the side wall of the tube blank 10 until the lower end face of the reinforcing hoop 40 is flush with the bottom surface of the base 20 and the upper end face reaches the limit position above the constriction 14.
[0076] Once the reinforcing hoop 40 reaches the predetermined position, a cold extrusion process can be used for necking. Radial pressure is applied using a special mold to plastically deform it, forming a tight sealing structure. The necking size and shape are strictly controlled to ensure a sealing pressure ≥0.5MPa between the reinforcing hoop 40 and the tube blank 10, preventing displacement or detachment under vibration or impact conditions. After the reinforcing hoop 40 is pressed in and necked, it undergoes electrical performance testing, mechanical performance testing, and appearance quality inspection. Qualified products are the final target fuse described in this invention.
[0077] The above primarily describes the solutions of the embodiments of this application from the perspective of the method execution process. It is understood that, in order to achieve the above functions, mobile electronic devices include corresponding hardware structures and / or software modules for executing each function. Those skilled in the art should readily recognize that, in conjunction with the units and algorithm steps of the various examples described in the embodiments provided herein, this application can be implemented in hardware or a combination of hardware and computer software. Whether a function is executed by hardware or by computer software driving hardware depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.
[0078] This application embodiment can divide the electronic device into functional units according to the above method example. For example, each function can be divided into a separate functional unit, or two or more functions can be integrated into one processing unit. The integrated unit can be implemented in hardware or as a software functional unit. It should be noted that the unit division in this application embodiment is illustrative and only represents one logical functional division. In actual implementation, there may be other division methods.
[0079] Please see Figure 9 This application also provides a vertical fuse manufacturing apparatus 50, comprising: Acquisition unit 51 is used to acquire the manufacturing parameters of the target fuse, the target fuse including multiple components; The determining unit 52 is configured to determine the preparation steps corresponding to each of the plurality of components based on the preparation parameters, thereby obtaining a plurality of preparation steps; and to determine the component type of each component based on the preparation steps corresponding to each component, thereby obtaining a plurality of component types; The generation unit 53 is configured to generate a control flow table based on the plurality of component types and the plurality of preparation steps, the control flow table including the execution order of the plurality of preparation steps; and to generate a control signal based on the control flow table. The output unit 54 is used to output the control signal to the operating tool to control the operating tool to perform the corresponding preparation operation to prepare the target fuse.
[0080] In one possible embodiment, the plurality of components includes component types including independent, combined, and hybrid types; the determination of the component type of each component based on the preparation steps corresponding to each component yields aspects of multiple component types. Specifically, the determining unit 52 is used to: compare and analyze each preparation step with other steps in the plurality of preparation steps to determine the preparation relationship between the multiple components; if the preparation relationship determines that the component does not interfere with other components during preparation, then the corresponding component type is determined to be independent; if the preparation relationship determines that the component interferes with other components during preparation, then the corresponding component type is determined to be combined.
[0081] In one possible embodiment, the generation unit 53 is specifically configured to: if the component type corresponding to the component is independent, determine the preparation step corresponding to the component as a first priority; if the component type corresponding to the component is combined, determine the preparation step corresponding to the component as a second priority; wherein the first priority is higher than the second priority; sort the plurality of preparation steps according to the first priority and the second priority to generate the control flow table.
[0082] In one possible embodiment, regarding the aspect of generating a control signal according to the control flow table and outputting the control signal to the operating tool to control the operating tool to perform corresponding preparation operations to prepare the target fuse, the output unit 54 is specifically used to: generate a first control signal according to the control flow table and output the first control signal to the operating tool, the first control signal being used to instruct the operating tool to execute the preparation steps of the first priority in parallel; after the preparation steps of the first priority are completed, generate a second control signal according to the control flow table and output the second control signal to the operating tool, the second control signal being used to instruct the operating tool to execute the preparation steps corresponding to the second priority in sequence according to a preset order.
[0083] In one possible embodiment, the first priority preparation step includes a conductor preparation step and a tube preform preparation step; in terms of generating a first control signal according to the control flow table and outputting the first control signal to the operating tool, the output unit 54 is specifically used to: determine the conductor preparation step and the tube preform preparation step according to the control flow table; obtain a first parameter from the preparation parameters according to the conductor preparation step; obtain a second parameter from the preparation parameters according to the tube preform preparation step; generate the first control signal according to the first parameter and the second parameter, the first control signal being used to instruct the operating tool to prepare the conductor and the tube preform in parallel according to the first parameter and the second parameter.
[0084] In one possible embodiment, the first control signal includes a first control sub-signal and a second control sub-signal, the first parameter includes a first material parameter and a first process parameter, and the second parameter includes a second material parameter and a second process parameter; in the aspect of generating the first control signal based on the first parameter and the second parameter, the output unit 54 is specifically used to: output the first control sub-signal based on the first material parameter and the second material parameter, the first control sub-signal being used to instruct the operating tool to acquire the first material and the second material; output the second control sub-signal based on the first process parameter and the second process parameter; the second control sub-signal being used to instruct the operating tool to process the first material into a conductor of corresponding specifications, and to inject the second material into a first molding die to obtain a tube blank; wherein, the conductor includes a molten metal, a first connecting portion, a second connecting portion, a first electrode and a second electrode, the first electrode being connected to a first end of the molten metal through the first connecting portion, and the second electrode being connected to a second end of the molten metal through the second connecting portion; the tube blank is provided with a receiving cavity, and the first end of the tube blank has a first opening.
[0085] In one possible embodiment, the preparation step of the second priority includes a second molding step and a post-processing step; the output unit 54 is specifically used to: determine the second molding step and the post-processing step according to the control flow; obtain a third parameter from the preparation parameters according to the second molding step; obtain a fourth parameter from the preparation parameters according to the post-processing step; generate the second control signal according to the third parameter and the fourth parameter, the second control signal being used to instruct the operating tool to sequentially prepare the base and perform the post-processing operation according to the third parameter and the fourth parameter; wherein, the base includes at least one platform, the at least one platform having a first through hole and a second through hole, the first connecting part and the second connecting part respectively passing through the first through hole and the second through hole, such that the first electrode and the second electrode respectively exit from the first through hole and the second through hole.
[0086] In one possible embodiment, the second control signal includes a third control sub-signal, a fourth control sub-signal, a fifth control sub-signal, and a sixth control sub-signal. The third parameter includes a third material parameter and a third process parameter, and the fourth parameter includes a fourth material parameter and a fourth process parameter. Regarding the aspect of generating the second control signal based on the third parameter and the fourth parameter, the output unit 54 is specifically configured to: generate a third control sub-signal based on the third material parameter, the third control sub-signal being used to instruct the operating tool to acquire a third material; and generate a fourth control sub-signal based on the third process parameter, the fourth control sub-signal being used to... The system instructs the operating tool to place the conductor in the second molding die and inject the third material into the second molding die to obtain a base with the conductor inserted; generates a fifth control sub-signal based on the fourth material parameters, the fifth control sub-signal being used to instruct the operating tool to acquire the fourth material; and generates a sixth control sub-signal based on the fourth process parameters, the sixth control signal being used to instruct the operating tool to combine the base with the conductor and the tube blank to obtain an initial fuse 100, and to perform filling and encapsulation processing on the initial fuse 100 based on the fourth material to obtain the target fuse.
[0087] The above embodiments can be implemented, in whole or in part, by software, hardware, firmware, or any other combination thereof. When implemented using software, the above embodiments can be implemented, in whole or in part, as a computer program product. The computer program product includes one or more computer instructions or computer programs. When the computer instructions or computer programs are loaded or executed on a computer, all or part of the processes or functions described in the embodiments of this application are generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another. For example, the computer instructions can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center via wired or wireless means. The computer-readable storage medium can be any available medium that a computer can access or a data storage device such as a server or data center that includes one or more sets of available media. The available medium can be a magnetic medium (e.g., floppy disk, hard disk, magnetic tape), an optical medium (e.g., DVD), or a semiconductor medium. A semiconductor medium can be a solid-state drive.
[0088] This application also provides an electronic device 60, such as... Figure 10 As shown, it includes at least one processor 61; a display screen 62; and a memory 63, and may also include a communications interface 65 and a bus 64. The processor 61, display screen 62, memory 63, and communications interface 65 can communicate with each other via the bus 64. The display screen 62 is configured to display a preset user guide interface in the initial setup mode. The communications interface 65 can transmit information. The processor 61 can call logical instructions in the memory 63 to execute the methods described in the above embodiments.
[0089] Optionally, the electronic device 60 may be a mobile electronic device, an electronic device, or other devices, without being limited to a single type.
[0090] Furthermore, the logic instructions in the aforementioned memory 63 can be implemented as software functional units and, when sold or used as independent products, can be stored in a computer-readable storage medium.
[0091] The memory 63, as a computer-readable storage medium, can be configured to store software programs, computer-executable programs, such as program instructions or modules corresponding to the methods in the embodiments of this disclosure. The processor 61 executes functional applications and data processing by running the software programs, instructions, or modules stored in the memory 63, thereby implementing the methods in the above embodiments.
[0092] The memory 63 may include a program storage area and a data storage area. The program storage area may store the operating system and application programs required for at least one function; the data storage area may store data created based on the use of the electronic device 60. Furthermore, the memory 63 may include high-speed random access memory (RAM) and may also include non-volatile memory. For example, various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks, may be used, or they may be transient storage media.
[0093] This application also provides a computer storage medium storing a computer program for electronic data interchange, which causes a computer to perform some or all of the steps of any of the methods described in the above method embodiments, wherein the computer includes an electronic device.
[0094] This application also provides a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program operable to cause a computer to perform some or all of the steps of any of the methods described in the above method embodiments. The computer program product may be a software installation package, and the computer may include an electronic device.
[0095] It should be understood that in the various embodiments of this application, the order of the above-mentioned processes does not imply the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this application.
[0096] In the several embodiments provided in this application, it should be understood that the disclosed methods, apparatuses, and systems can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for example, the division of units is merely a logical functional division, and other division methods may exist in actual implementation; for example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces, and the indirect coupling or communication connection between devices or units may be electrical, mechanical, or other forms.
[0097] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.
[0098] Furthermore, the functional units in the various embodiments of the present invention can be integrated into one processing unit, or each unit can be physically comprised separately, or two or more units can be integrated into one unit. The integrated unit described above can be implemented in hardware or in the form of hardware plus software functional units.
[0099] The integrated units implemented as software functional units described above can be stored in a computer-readable storage medium. These software functional units, stored in a storage medium, include several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute some steps of the methods described in the various embodiments of the present invention. The aforementioned storage medium includes: a USB flash drive, a portable hard drive, a magnetic disk, an optical disk, volatile memory, or non-volatile memory. The non-volatile memory can be read-only memory (ROM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), or flash memory. The volatile memory can be random access memory (RAM), which is used as an external cache. By way of example, but not limitation, many forms of random access memory (RAM) are available, such as static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), double data rate SDRAM (DDR SDRAM), enhanced SDRAM (ESDRAM), synchronous linked DRAM (SLDRAM), and direct rambus RAM (DR RAM), etc., which are various media capable of storing program code.
[0100] While the present invention has been disclosed above, it is not limited thereto. Any person skilled in the art can easily conceive of variations or substitutions without departing from the spirit and scope of the present invention, and various modifications and alterations can be made, including combinations of the different functions and implementation steps described above, as well as software and hardware implementation methods, all of which are within the protection scope of the present invention.
Claims
1. A method for manufacturing a vertical fuse, characterized in that, include: Obtain the manufacturing parameters of the target fuse, which includes multiple components; Based on the preparation parameters, the preparation steps corresponding to each of the plurality of components are determined, resulting in a plurality of preparation steps; The component type of each component is determined according to the preparation steps corresponding to each component, resulting in multiple component types; a control flow table is generated according to the multiple component types and the multiple preparation steps, the control flow table including the execution order of the multiple preparation steps; A control signal is generated according to the control flow table, and the control signal is output to the operating tool to control the operating tool to perform the corresponding preparation operation to prepare the target fuse.
2. The method for manufacturing a vertical fuse according to claim 1, characterized in that, The component types include independent, combined, and hybrid types; the component type of each component is determined according to the manufacturing steps corresponding to each component, resulting in multiple component types, including: Each preparation step is compared and analyzed with other steps in the plurality of preparation steps to determine the preparation relationship between the multiple components; If the fabrication relationship determines that there is no interference between the component and other components during fabrication, then the corresponding component type is determined to be independent. If the fabrication relationship determines that there is interference between the component and other components during fabrication, then the corresponding component type is determined to be a combination type.
3. The method for manufacturing a vertical fuse according to claim 2, characterized in that, The step of generating a control flow table based on the multiple component types and the multiple manufacturing steps includes: If the component type corresponding to the component is independent, then the preparation step corresponding to the component is determined to be the first priority; If the component type corresponding to the component is a combination type, then the manufacturing step corresponding to the component is determined to be the second priority; wherein, the first priority is higher than the second priority; The multiple preparation steps are sorted according to the first priority and the second priority to generate the control flow table.
4. The method for manufacturing a vertical fuse according to claim 3, characterized in that, The step of generating a control signal according to the control flow table and outputting the control signal to the operating tool to control the operating tool to perform the corresponding preparation operation to prepare the target fuse includes: A first control signal is generated according to the control flow table and output to the operating tool. The first control signal is used to instruct the operating tool to execute the preparation steps of the first priority in parallel. After the preparation steps of the first priority are completed, a second control signal is generated according to the control flow and output to the operating tool. The second control signal is used to instruct the operating tool to execute the preparation steps corresponding to the second priority in a preset order.
5. The method for manufacturing a vertical fuse according to claim 4, characterized in that, The preparation steps of the first priority include a conductor preparation step and a tube preform preparation step; Generate a first control signal according to the control flow table, and output the first control signal to the operating tool, including: The conductor preparation steps and the tube body preparation steps are determined according to the control flow table. The first parameter is obtained from the preparation parameters according to the conductor preparation steps; The second parameter is obtained from the preparation parameters according to the tube body embryo preparation steps; The first control signal is generated based on the first parameter and the second parameter. The first control signal is used to instruct the operating tool to prepare the conductor and the tube preform in parallel according to the first parameter and the second parameter.
6. The method for manufacturing a vertical fuse according to claim 5, characterized in that, The first control signal includes a first control sub-signal and a second control sub-signal; the first parameter includes a first material parameter and a first process parameter; and the second parameter includes a second material parameter and a second process parameter. The step of generating the first control signal based on the first parameter and the second parameter includes: A first control sub-signal is output based on the first material parameter and the second material parameter. The first control sub-signal is used to instruct the operating tool to acquire the first material and the second material. A second control sub-signal is output based on the first process parameters and the second process parameters; the second control sub-signal is used to instruct the operating tool to process the first material into a conductor of the corresponding specification, and to inject the second material into the first molding die to obtain a tube blank; The conductor includes a molten metal, a first connecting part, a second connecting part, a first electrode, and a second electrode. The first electrode is connected to a first end of the molten metal through the first connecting part, and the second electrode is connected to a second end of the molten metal through the second connecting part. The tube blank is provided with a receiving cavity, and a first opening is provided at the first end of the tube blank.
7. The method for manufacturing a vertical fuse according to claim 6, characterized in that, The preparation steps of the second priority include a second molding step and a post-processing step; A second control signal is generated according to the control flow, and the second control signal is output to the operating tool, including: The second molding step and post-processing steps are determined according to the control flow; The third parameter is obtained from the preparation parameters according to the second molding step; The fourth parameter is obtained from the preparation parameters according to the post-processing steps; The second control signal is generated based on the third parameter and the fourth parameter. The second control signal is used to instruct the operating tool to prepare the base and perform post-processing operations in sequence according to the third parameter and the fourth parameter. The base includes at least one platform, on which a first through hole and a second through hole are formed. The first connecting part and the second connecting part are respectively inserted into the first through hole and the second through hole, so that the first electrode and the second electrode are respectively inserted out from the first through hole and the second through hole.
8. The method for manufacturing a vertical fuse according to claim 7, characterized in that, The second control signal includes a third control sub-signal, a fourth control sub-signal, a fifth control sub-signal, and a sixth control sub-signal. The third parameter includes a third material parameter and a third process parameter. The fourth parameter includes a fourth material parameter and a fourth process parameter. The step of generating the second control signal based on the third parameter and the fourth parameter includes: The third control sub-signal is generated based on the third material parameters, and the third control sub-signal is used to instruct the operating tool to acquire the third material; and the fourth control sub-signal is generated based on the third process parameters, and the fourth control sub-signal is used to instruct the operating tool to place the conductor in the second molding die and inject the third material into the second molding die to obtain a base with the conductor inserted. The fifth control sub-signal is generated based on the fourth material parameter, and the fifth control sub-signal is used to instruct the operating tool to acquire the fourth material; and the sixth control sub-signal is generated based on the fourth process parameter, and the sixth control sub-signal is used to instruct the operating tool to combine the base with the conductor inserted with the tube blank to obtain an initial fuse, and to fill and encapsulate the initial fuse according to the fourth material to obtain the target fuse.
9. An electronic device, characterized in that, The device includes a processor, a memory, a communication interface, and one or more programs, said programs being stored in the memory and configured to be executed by the processor, said programs including instructions for performing the steps in the method of manufacturing a vertical fuse as claimed in any one of claims 1-8.
10. A computer-readable storage medium, characterized in that, A computer program for storing electronic data interchange is provided, wherein the computer program causes a computer to execute instructions for the steps in the method of manufacturing a vertical fuse as claimed in any one of claims 1-8.
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