Manufacturing Method, System and Equipment for Actuators Based on Internet of Things Control

By using the manufacturing method for actuators based on Internet of Things control in the production and manufacturing of linear actuators, the detection sequence is adjusted according to the detection results, and the detection time problem caused by the simultaneous failure of the same batch of linear actuators is solved, which improves the detection efficiency.

CN120029247BActive Publication Date: 2025-06-27JIANGSU MULIN INTELLIGENCE ELECTRIC CO LTD
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Patent Information

Application Number
CN202510507223.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-22
Publication Date
2025-06-27
Estimated Expiration
2045-04-22

AI Technical Summary

Technical Problem

During the production and manufacturing process of linear actuators, due to abnormal machine and parameter, the same batch of linear actuators fail at the same time. The traditional detection links are caused by excessive detection time and low efficiency.

Method used

Using the manufacturing method for actuators based on Internet of Things control, each actuator is detected by the control module according to the detection sequence, and the detection sequence is adjusted according to the detection results to reduce the detection process experienced by the unqualified actuators.

Benefits of technology

By adjusting the detection sequence, the detection time of the unqualified actuators is reduced, the detection efficiency is improved, and resource waste is reduced.

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Abstract

The present invention belongs to the field of testing technology, specifically relates to the testing of mechanical components, and particularly relates to a manufacturing method, system and device for an actuator based on Internet of Things control. The manufacturing method for the actuator based on Internet of Things control includes: the control module detects each actuator according to the detection sequence to record the detection results of each actuator, and adjusts the detection sequence of each actuator according to the detection results, thereby realizing the detection of the actuator, and the adjustment of the detection sequence reduces the detection processes experienced by unqualified actuators, reduces the time required for detection, and improves the detection efficiency.
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Description

Technical Field

[0001] The present invention belongs to the technical field of testing, specifically relates to the testing of mechanical components, and particularly relates to a manufacturing method, system and device for an actuator based on Internet of Things control. Background Art

[0002] During the production process of linear actuators, a batch of linear actuators are produced simultaneously. There are problems with linear actuators caused by abnormal machine tools and parameters during the production process, that is, linear actuators in the same batch will fail simultaneously. Specifically, during the stamping process, the voltage and current are unstable, and linear actuators in the same batch all have errors. Linear actuators involve stroke testing, load testing, speed testing, precision testing, fatigue testing, temperature testing, humidity testing, vibration testing, overload testing, insulation testing, and withstand voltage testing. However, the traditional process detects each link one by one. When the above problems occur, it will seriously waste resources, and the electrical performance testing time is basically the same.

[0003] Therefore, due to the technical problem that the detection efficiency is reduced because the detection time required for linear actuators to go through all the detection processes one by one is too long, a manufacturing method, system and device for an actuator based on Internet of Things control need to be designed.

[0004] It should be noted that the above information disclosed in this background art section is only used to understand the background art of the concept of this application. Therefore, the above description is not considered as information of the prior art. Summary of the Invention

[0005] The purpose of the present invention is to provide a manufacturing method for an actuator based on Internet of Things control.

[0006] To solve the above technical problems, the present invention provides a manufacturing method for an actuator based on Internet of Things control, including:

[0007] The control module detects each actuator according to the detection sequence to record the detection results of each actuator, and adjusts the detection sequence of each actuator according to the detection results.

[0008] In an optional implementation manner, the method for the control module to detect each actuator according to the detection sequence includes:

[0009] The control module distributes the actuators in the same batch according to the types of detection stations. After distribution, each actuator has a unique corresponding detection sequence during one detection process;

[0010] The types of detection stations correspond to the detection processes required by the actuators;

[0011] During one detection process, the actuators go through all types of detection stations for detection;

[0012] The control module first numbers various types of detection stations and numbers each actuator, maps the numbered actuators to various types of detection stations, and sets the detection order corresponding to each actuator so that each actuator traverses all types of detection stations;

[0013] The numbers of each actuator are unique.

[0014] In an optional implementation, the control module adjusts the detection order corresponding to the actuator being detected according to the detection results of each actuator at various types of detection stations, that is

[0015] When any actuator fails the detection, the control module controls the transfer mechanism to transfer all other actuators being detected at the detection stations to the detection station corresponding to the actuator that fails the detection for detection. If the other actuators also fail the detection, the control module determines that the detection result of the actuators in the corresponding batch is a preliminary batch problem;

[0016] If there are actuators that pass the detection among the other actuators, the control module determines that the detection result of the actuators in this batch is a preliminary sporadic problem;

[0017] After the detection of the other actuators at the detection station corresponding to the actuator that fails the detection is completed, if there are no actuators that pass the detection among these actuators, the control module adjusts the detection order of each actuator to the detection order corresponding to the detection stations that each actuator has passed through, and the adjusted detection order does not include the detection station corresponding to the actuator that fails the detection. Then, the control module controls the transfer mechanism to move the other actuators in this batch that have not been detected to various types of detection stations, generates the corresponding detection order, and then conducts the detection;

[0018] After the detection of the other actuators at the detection station corresponding to the actuator that fails the detection is completed, if there are actuators that pass the detection among these actuators, the control module adjusts the detection order of the actuators that pass the detection so that the actuators that pass the detection continue the subsequent detection, and the actuators that fail the detection stop the detection.

[0019] In an optional implementation, the control module determines the final detection result of the actuators in this batch by judging the proportions of preliminary batch problems and preliminary sporadic problems in the same batch;

[0020] If the proportion of preliminary batch problems reaches or exceeds the preset maximum proportion, it is determined that the detection result of the actuators in this batch is a batch problem, otherwise it is determined that the actuators in this batch are sporadic problems;

[0021] Record the final detection result of the actuators in the same batch and the adjusted detection order corresponding to each actuator in the database.

[0022] In an alternative embodiment, the control module generates corresponding labels for each actuator, and the control module controls the labeling mechanism to paste the labels on the corresponding actuators. The labels include the adjusted detection sequence of each actuator;

[0023] The control module generates a password array for the corresponding actuator according to the number of the actuator and the adjusted detection sequence.

[0024] In an alternative embodiment, when the actuator is out of the warehouse, the scanning mechanism scans the label of the actuator, and decrypts it according to the password array during the scanning to obtain the detection result of the corresponding actuator.

[0025] In a second aspect, an embodiment of the present disclosure further provides a manufacturing system for an actuator based on Internet of Things control, including:

[0026] A detection module configured to detect each actuator according to the detection sequence;

[0027] An adjustment module configured to adjust the detection sequence of each actuator according to the detection result.

[0028] In a third aspect, an embodiment of the present disclosure further provides a computer-readable storage medium, on which computer programs / instructions are stored. When the computer programs / instructions are executed by a processor, the steps of the above-mentioned manufacturing method for an actuator based on Internet of Things control are implemented.

[0029] In a fourth aspect, an embodiment of the present disclosure further provides a computer program product, including computer programs / instructions. When the computer programs / instructions are executed by a processor, the steps of the above-mentioned manufacturing method for an actuator based on Internet of Things control are implemented.

[0030] In a fifth aspect, an embodiment of the present disclosure further provides a manufacturing device for an actuator based on Internet of Things control, including:

[0031] A database, a control module, a scanner, and a transfer mechanism and a number of detection stations electrically connected to the control module;

[0032] The detection stations correspond to the detection processes required by the actuators;

[0033] The control module is configured to generate the detection sequence of each actuator by using the above-mentioned manufacturing method for an actuator based on Internet of Things control, and control the transfer mechanism to transfer the actuator among the detection stations according to the detection sequence;

[0034] The database is adapted to store the adjusted detection sequence of each actuator and the detection result of the actuator;

[0035] The scanner is adapted to scan the label on the actuator to obtain the adjusted detection sequence of the actuator to judge the detection result of the actuator.

[0036] The beneficial effects of the present invention are as follows. The manufacturing method for an actuator based on Internet of Things control includes: the control module detects each actuator according to the detection sequence to record the detection results of each actuator, and adjusts the detection sequence of each actuator according to the detection results. Thus, the detection of the actuator is realized, and the adjustment of the detection sequence reduces the detection processes experienced by unqualified actuators, reduces the time required for detection, and improves the detection efficiency.

[0037] Other features and advantages of the present invention will be described in the following specification, and some of them will become obvious from the specification or be understood by implementing the present invention. The objectives and other advantages of the present invention are achieved and obtained by the structures specifically pointed out in the specification and the drawings.

[0038] To make the above objectives, features, and advantages of the present invention more obvious and understandable, specific preferred embodiments are hereby given, and in conjunction with the accompanying drawings, the detailed description is as follows. Brief Description of the Drawings

[0039] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for the description of the specific embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0040] Figure 1 It is a flowchart of a manufacturing method for an actuator based on Internet of Things control provided by an embodiment of the present disclosure;

[0041] Figure 2 It is a schematic diagram of a detection sequence provided by an embodiment of the present disclosure;

[0042] Figure 3 It is a schematic diagram of the adjusted detection sequence corresponding to preliminary occasional problems provided by an embodiment of the present disclosure;

[0043] Figure 4 It is a schematic diagram of the adjusted detection sequence corresponding to preliminary batch problems provided by an embodiment of the present disclosure. Detailed Embodiments

[0044] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the present invention will be clearly and completely described below in conjunction with the drawings. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts fall within the scope of protection of the present invention.

[0045] As used herein, phrases such as "in one embodiment", "according to one embodiment", "in some embodiments", etc. generally refer to the fact that the specific feature, structure, or characteristic after such phrase can be included in at least one embodiment of the present disclosure. Thus, a specific feature, structure, or characteristic may be included in more than one embodiment of the present disclosure, such that these phrases do not necessarily refer to the same embodiment. As used herein, the terms "example", "exemplary", etc. are used "as an example, instance, or illustration. Any embodiment, aspect, or design described herein as "example" or "exemplary" is not necessarily to be construed as preferred or superior to other embodiments, aspects, or designs. Instead, the use of the terms "example", "exemplary", etc. is intended to present concepts in a concrete manner.

[0046] During the production process, a linear actuator needs to go through multiple inspection processes to detect its performance and quality. However, the inventors found that during the inspection process, each actuator needs to go through all the processes. Even an unqualified actuator needs to go through multiple inspection processes before reaching the inspection station where its performance or quality can be detected as unqualified, resulting in a waste of a large amount of inspection time and a very low inspection efficiency for the linear actuator. An unqualified actuator is an actuator that fails any one of the inspection processes. For example, the actuator needs to go through stroke tests, load tests, speed tests, precision tests, fatigue tests, temperature tests, humidity tests, vibration tests, overload tests, insulation tests, withstand voltage tests, etc. If any one of the inspections fails, it means the actuator is unqualified.

[0047] All the defects existing in the above solutions are the results obtained by the inventors through practice and careful research. Therefore, the process of discovering the above problems and the solutions proposed in the present disclosure by the present disclosure for the above problems should both be the contributions made by the inventors to the present disclosure during the process of the present disclosure.

[0048] It should be noted that: Similar reference numerals and letters indicate similar items in the following drawings. Therefore, once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings.

[0049] The following will, with reference to the drawings, elaborate on some embodiments of the present invention. Without conflict, the following embodiments and the features in the embodiments can be combined with each other.

[0050] As Figure 1As shown, in at least one embodiment, a manufacturing method for an actuator based on Internet of Things control is provided, including: the control module detects each actuator according to the detection order to record the detection results of each actuator, and adjusts the detection order of each actuator according to the detection results, thereby realizing the detection of the actuator and adjusting the detection order, reducing the detection processes experienced by unqualified actuators, reducing the time required for detection, and improving the detection efficiency.

[0051] In this embodiment, by adjusting the detection order, after an actuator is detected as unqualified, the actuators detected at the same time at other workstations in the same batch are transferred to the detection workstation where the unqualified actuator is detected for detection, which can quickly determine whether all actuators in the same batch have this problem or it is just an occasional problem, improving the detection efficiency of the actuator.

[0052] In this embodiment, the actuators in the same batch are divided into several groups, and each time the actuators in the same group are detected. The number of actuators in the same group can correspond to the types of detection workstations, so that each actuator in the same group has a unique detection order.

[0053] As Figure 2 shown, in an alternative embodiment, the method for the control module to detect each actuator according to the detection order includes: the control module distributes the actuators in the same batch according to the types of detection workstations. After distribution, each actuator has a unique corresponding detection order during one detection process; the types of detection workstations correspond to the detection processes required by the actuators; during one detection process, the actuators pass through all types of detection workstations for detection; the control module first numbers all types of detection workstations and numbers each actuator, corresponds the numbered actuators to all types of detection workstations, and sets the corresponding detection order for each actuator so that each actuator traverses all types of detection workstations; the numbers of each actuator are unique.

[0054] In this embodiment, at the same time, corresponding actuators are detected at various types of detection workstations, that is, when no actuator is detected as abnormal, corresponding actuators are detected at various types of detection workstations at the same time; only one actuator is detected at various types of detection workstations at the same time, that is, when no actuator is detected as abnormal, when one actuator is being detected at a detection workstation, there is no other actuator at that detection workstation.

[0055] In this embodiment, all actuators in the same batch are numbered in sequence.

[0056] In this embodiment, the number of the actuator can be combined with the corresponding batch, so that the password array corresponding to the actuator is also unique. The batch serial number of the actuator is unique and can be a combination of an English number and a digit. For example, ZDQ1 is the actuator of the first batch, and the password array corresponding to the No. 1 qualified actuator in the first batch can be ZDQ11ABCD.

[0057] In this embodiment, different types of workstations correspond to different detection processes for the actuators. When no abnormalities are detected in all the actuators, there is always an actuator being detected at each detection workstation at the same time, which improves the detection efficiency of the actuators. And when a problem occurs in one actuator, other actuators can be transferred to this workstation for detection first. If abnormalities are detected in all the actuators, it can be preliminarily judged that there is a batch problem with the actuators in this batch. The next group of actuators in this batch that have not been detected can all pass through this detection workstation for detection first after starting the detection, so that the problems of the actuators in this batch can be detected in time and the detection efficiency of the actuators can be improved.

[0058] In this embodiment, when starting the detection, the number of actuators detected at the same time corresponds to the detection workstations. Each detection workstation corresponds to a detection process, so that there is always an actuator being detected in the processes that the actuators need to be detected at the same time, and it can be judged immediately whether there is an unqualified actuator. Then, all the actuators being detected are moved to the detection workstation corresponding to the unqualified actuator for detection; if there is a batch problem with the actuators in this batch, it means that the probability of the actuators in this batch having the unqualified situation corresponding to this detection workstation is greatly increased. The next group of actuators are first moved to the detection workstation where unqualified ones will be detected, and the unqualified actuators can be detected at this detection workstation immediately, avoiding these unqualified actuators needing to be detected through other processes before being moved to this detection workstation, thus improving the detection efficiency of the actuators.

[0059] In this embodiment, if there are 4 types of detection workstations, and the corresponding numbers of these detection workstations are A, B, C, and D, then four actuators in the same batch are detected at the same time. The numbers of these four can be 1, 2, 3, 4. These several actuators can be corresponding to label 1, label 2, label 3, label 4. After all these four actuators are detected, the other undetected actuators in this batch are detected. The corresponding detection order of these four actuators can be that label 1 corresponds to ABCD, label 2 corresponds to BADC, label 3 corresponds to CDAB, and label 4 corresponds to DCBA.

[0060] In an alternative embodiment, the control module adjusts the detection order corresponding to the actuators being detected at this time according to the detection results of each actuator at various types of detection workstations, that is, as Figure 4As shown, when any actuator fails the inspection, the control module controls the transfer mechanism to transfer all other actuators being inspected at the inspection stations to the inspection station corresponding to the actuator that fails the inspection for inspection. If the other actuators also fail the inspection, the control module determines that the inspection result of the actuators in the corresponding batch is a preliminary batch problem;

[0061] As Figure 3 shown, if there are qualified actuators among the other actuators, the control module determines that the inspection result of the actuators in this batch is a preliminary occasional problem;

[0062] After the inspection of the other actuators in the inspection station corresponding to the actuator that fails the inspection is completed, if there are no qualified actuators among these actuators, the control module adjusts the inspection order of each actuator so that the inspection order is the inspection order corresponding to the inspection stations that each actuator has passed through currently, and the adjusted inspection order does not include the inspection station corresponding to the actuator that fails the inspection. Then, the control module controls the transfer mechanism to move the other uninspected actuators in this batch to various inspection stations, generates the corresponding inspection order, and then conducts the inspection;

[0063] After the inspection of the other actuators in the inspection station corresponding to the actuator that fails the inspection is completed, if there are qualified actuators among these actuators, the control module adjusts the inspection order of the qualified actuators so that the qualified actuators continue the subsequent inspection, and the actuators that fail the inspection stop the inspection.

[0064] In this embodiment, after the inspection of four actuators starts, if the No. 1 actuator corresponding to label 1 detects an abnormality at the A inspection station, and at this time, the remaining No. 2, 3, and 4 actuators do not detect any abnormalities, then the next inspection stations of the No. 2, 3, and 4 actuators are changed to the A inspection station, so that the No. 2, 3, and 4 actuators perform the corresponding processes at the A inspection station, and the subsequent inspection of the No. 1 actuator stops. If the No. 2, 3, and 4 actuators are determined to be qualified after the inspection at the A inspection station, the subsequent inspection order of the No. 2, 3, and 4 actuators is re - constructed. For example, the subsequent inspection order of the No. 2 actuator is DC, the subsequent inspection order of the No. 3 actuator is BD, and the subsequent inspection order of the No. 4 actuator is CB. At this time, the adjusted inspection order of each actuator is: the No. 1 actuator A, the No. 2 actuator BADC, the No. 3 actuator CABD, and the No. 4 actuator DACB.

[0065] In an alternative embodiment, the control module determines the proportions of preliminary batch problems and preliminary sporadic problems in the same batch to judge the final detection result of the actuators in this batch. If the proportion of preliminary batch problems reaches or exceeds a preset maximum proportion, it is judged that the detection result of the actuators in this batch is a batch problem; otherwise, it is judged that the actuators in this batch are sporadic problems. Record the final detection results of the actuators in the same batch and the adjusted detection order corresponding to each actuator in the database.

[0066] In this embodiment, if all the actuators in the same batch have been detected, and the proportion of the number of actuators corresponding to the preliminarily judged batch problems in the total number of actuators exceeds the preset maximum proportion, for example, reaches or exceeds 5%, it is judged that there are batch problems with the actuators in this batch and the yield rate is unqualified. If it does not exceed and there are actuators with preliminary sporadic problems among the actuators, it is judged that there are sporadic problems with the actuators in this batch. If all the actuators in this batch are detected to be qualified, it is judged that the actuators in this batch are qualified products.

[0067] In an alternative embodiment, the control module generates corresponding labels for each actuator, and the control module controls the labeling mechanism to paste the labels on the corresponding actuators. The labels include the adjusted detection order of each actuator. The control module generates a password array corresponding to each actuator according to the number of the actuator and the adjusted detection order.

[0068] In this embodiment, each actuator has a corresponding label. The label contains the number corresponding to the actuator and the adjusted detection order. The number and the detection order are constructed into the password array of this actuator to encrypt the information of the actuator.

[0069] In this embodiment, the actual detection results of the actuators in each batch, such as batch problems, sporadic problems and qualified products, are stored in the database, and the label corresponding to each actuator is stored to facilitate subsequent retrieval.

[0070] In an alternative embodiment, when the actuator is out of the warehouse, the scanning mechanism scans the label of the actuator, and decrypts it according to the password array during the scanning to obtain the detection result of the corresponding actuator.

[0071] In this embodiment, when the actuator is out of the warehouse, the staff can scan the label to obtain the detection results corresponding to each actuator. That is, after the staff scans the label, they can obtain the password array of the actuator. If the password array of the actuator is complete, it means that the actuator has passed all the detection processes and is a qualified product. If the password array is incomplete, it means that the actuator is unqualified, avoiding directly displaying the information of the actuator and thus avoiding the leakage of product information. At the same time, it judges whether the actuator is qualified when the actuator is out of the warehouse to avoid unqualified actuators from leaving the warehouse.

[0072] In this embodiment, the moving mechanism can be a manipulator or the like, which is controlled by the control module to facilitate the movement of the actuator.

[0073] In this embodiment, except for the first group of actuators, each group of actuators in the subsequent same batch selects a detection sequence construction strategy according to the detection results of the previous group during the detection process. If it is determined that there is a preliminary batch problem during the detection of the current group of actuators, then all the next group of actuators are directly detected first at the detection station where the current group of actuators has problems. If it is determined that there is a preliminary sporadic problem or all are qualified during the detection of the current group of actuators, then each actuator in the next group constructs a corresponding detection sequence and then undergoes detection.

[0074] At least one other publicly disclosed embodiment also provides a manufacturing system for actuators based on Internet of Things control, including: a detection module configured to detect each actuator according to the detection sequence; an adjustment module configured to adjust the detection sequence of each actuator according to the detection results.

[0075] In this embodiment, each module is a virtual module, and its functions can be integrated into the control module.

[0076] At least one other publicly disclosed embodiment also provides a computer-readable storage medium, on which computer programs / instructions are stored. When the computer programs / instructions are executed by a processor, the steps of the above-mentioned manufacturing method for actuators based on Internet of Things control are implemented.

[0077] At least one other publicly disclosed embodiment also provides a computer program product, including computer programs / instructions. When the computer programs / instructions are executed by a processor, the steps of the above-mentioned manufacturing method for actuators based on Internet of Things control are implemented.

[0078] At least one other publicly disclosed embodiment also provides a manufacturing device for actuators based on Internet of Things control, including:

[0079] A database, a control module, a scanner, and a transfer mechanism and a number of detection stations electrically connected to the control module; the detection stations correspond to the detection processes required by the actuators; the control module is configured to generate the detection sequence of each actuator by using the above-mentioned manufacturing method for actuators based on Internet of Things control, and control the transfer mechanism to transfer the actuators among the detection stations according to the detection sequence; the database is suitable for storing the adjusted detection sequence of each actuator and the detection results of the actuators; the scanner is suitable for scanning the labels on the actuators to obtain the adjusted detection sequence of the actuators to judge the detection results of the actuators.

[0080] In this embodiment, the scanner can be a handheld scanner, which is convenient for the staff to hold and operate. Moreover, the scanner can establish communication with the database to record the scanning process and results in the database, facilitating subsequent traceability and retrieval.

[0081] In this embodiment, the database can be established in a server or a host computer. The server or host computer can conduct wireless communication with the control module. A wireless communication module, such as a WiFi module, can be set on the control module to facilitate recording the detection sequence and the adjusted detection sequence.

[0082] In summary, the manufacturing method for actuators based on Internet of Things control includes: the control module detects each actuator according to the detection sequence to record the detection results of each actuator, and adjusts the detection sequence of each actuator according to the detection results. Thus, the detection of actuators is realized, and the adjustment of the detection sequence reduces the number of detection processes experienced by unqualified actuators, reduces the time required for detection, and improves the detection efficiency.

[0083] Inspired by the ideal embodiments of the present invention described above, through the above description, relevant staff can make various changes and modifications without departing from the technical idea of this invention. The technical scope of this invention is not limited to the content in the specification, and its technical scope must be determined according to the scope of the claims.

Claims

1. A manufacturing method for an actuator based on Internet of Things control, characterized in that: include: The control module detects each actuator according to the detection sequence to record the detection result of each actuator, and adjusts the detection sequence of each actuator according to the detection result; The control module adjusts the detection order of the actuators being detected according to the detection results of each actuator at various detection stations, that is, The control module allocates the actuators of the same batch according to the types of inspection stations. After allocation, the actuators have a unique corresponding inspection sequence in one inspection process. When any actuator fails the test, the control module controls the transfer mechanism to transfer all other actuators being tested at the test station to the test station corresponding to the actuator that fails the test for testing. If the actuator also fails the test, the control module determines that the test result of the actuator of the corresponding batch is a preliminary batch problem. If there is an actuator that has passed the test among other actuators, the control module determines that the test results of the actuators in this batch are preliminary sporadic problems; After the inspection of other actuators in the inspection station corresponding to the unqualified actuator is completed, if there is no qualified actuator among these actuators, the control module adjusts the inspection order of each actuator to the inspection order corresponding to the inspection station that each actuator has currently passed, and the adjusted inspection order does not include the inspection station corresponding to the unqualified inspection, and then the control module controls the transfer mechanism to move other actuators of the batch that have not been inspected to various types of inspection stations, and generates a corresponding inspection order before conducting inspections; After the inspection of other actuators in the inspection station corresponding to the unqualified actuator is completed, if there is a qualified actuator among these actuators, the control module adjusts the inspection order of the qualified actuators so that the qualified actuators continue to perform subsequent inspections and the inspection of the unqualified actuators is stopped.

2. The method for manufacturing an actuator based on Internet of Things control according to claim 1, characterized in that: The method in which the control module detects each actuator according to the detection sequence includes: The type of inspection station corresponds to the inspection process required for the actuator; During one inspection process, the actuator is inspected at all types of inspection stations; The control module first numbers various types of inspection stations and actuators, corresponds the numbered actuators to various types of inspection stations, and sets the inspection sequence corresponding to the actuators so that the actuators traverse all types of inspection stations; Each actuator has a unique number.

3. The method for manufacturing an actuator based on Internet of Things control according to claim 2, characterized in that: The control module determines the proportion of preliminary batch problems and preliminary occasional problems in the same batch to determine the final inspection results of the batch of actuators; If the proportion of the preliminary batch problems reaches or exceeds the preset maximum proportion, the inspection result of the batch of actuators is judged to be a batch problem, otherwise, the batch of actuators is judged to be an occasional problem; The final inspection results of the same batch of actuators and the adjusted inspection sequence corresponding to each actuator are recorded in the database.

4. The method for manufacturing an actuator based on Internet of Things control according to claim 1, characterized in that: Generate a corresponding label for each actuator through the control module, and the control module controls the labeling mechanism to stick the label on the corresponding actuator, and the label includes the adjusted detection sequence of each actuator; The control module generates a password array corresponding to the actuator according to the actuator number and the adjusted detection sequence.

5. The method for manufacturing an actuator based on Internet of Things control according to claim 4, characterized in that: When the actuator is out of the warehouse, the label of the actuator is scanned by a scanning mechanism, and decrypted according to the password array during scanning to obtain the detection result of the corresponding actuator.

6. A manufacturing system for actuators based on Internet of Things control using the manufacturing method for actuators based on Internet of Things control as claimed in any one of claims 1 to 5, characterized in that: include: A detection module, which is configured to detect each actuator according to a detection sequence; The adjustment module is configured to adjust the detection sequence of each actuator according to the detection result.

7. A computer-readable storage medium having a computer program / instruction stored thereon, characterized in that: When the computer program / instructions are executed by a processor, the steps of the method for manufacturing an actuator based on Internet of Things control as described in any one of claims 1 to 5 are implemented.

8. A computer program product comprising a computer program / instructions, characterized in that When the computer program / instructions are executed by a processor, the steps of the method for manufacturing an actuator based on Internet of Things control as described in any one of claims 1 to 5 are implemented.

9. An actuator manufacturing device based on Internet of Things control, characterized in that: include: A database, a control module, a scanner, a transfer mechanism electrically connected to the control module, and a plurality of detection stations; The inspection station corresponds to the inspection process required for the actuator; The control module is configured to generate a detection sequence for each actuator using the manufacturing method for actuators based on Internet of Things control as described in any one of claims 1 to 5, and control the transfer mechanism to transfer the actuators between the detection stations according to the detection sequence; The database is suitable for storing the adjusted detection sequence of each actuator and the detection results of the actuator; The scanner is suitable for scanning the label on the actuator to obtain the detection sequence of the actuator after adjustment, so as to determine the detection result of the actuator.

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