Information Acquisition System and Control Method for Medical Equipment Based on 5G Network

By using a 5G-based information collection system for hygiene products equipment, the production process of hygiene products can be monitored and analyzed in real time, solving the problem of tracing equipment failures and realizing intelligent production and quality assurance of hygiene products.

CN117389219BActive Publication Date: 2026-01-30JINJIANG HAINA MACHINERY
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Patent Information

Application Number
CN202311297205.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-10-09
Publication Date
2026-01-30
Estimated Expiration
2043-10-09

AI Technical Summary

Technical Problem

Existing monitoring methods for hygiene products cannot effectively trace the source of equipment failures, resulting in insufficient analysis of the core and sealing processes, which affects the quality of hygiene products and the user experience.

Method used

The system adopts a 5G network-based information acquisition system for medical equipment. Through the combination of monitors, 5G concentrators, and terminal devices, it can monitor and analyze the production information of processing equipment in real time, including image sensors, weighing sensors, etc., to achieve big data analysis and parameter control.

Benefits of technology

Intelligent manufacturing has been achieved in the production of sanitary products, ensuring the quality of the core, the breathability of the wrapping layer, and the sealing performance, and preventing equipment malfunctions from affecting product quality and user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of hygiene product manufacturing technology, specifically to a 5G network-based information acquisition system and control method for hygiene product equipment. The 5G network-based information acquisition system for hygiene product equipment of this application involves installing a monitor on the processing equipment and transmitting the information collected by the monitor to a 5G concentrator via a carrier wave or RS-485 interface. The 5G concentrator then transmits the acquired information to terminal equipment via the 5G network. The terminal equipment performs big data analysis and controls hygiene product production parameters based on the obtained production information, achieving intelligent manufacturing of hygiene products and ensuring that the produced hygiene products meet market demands. Furthermore, by acquiring information about the absorbent core, wrapping layer, and sealing of the hygiene products, the system determines whether there are any abnormalities in the supporting equipment of the hygiene product production line, diagnoses and evaluates the supporting equipment, and avoids issues such as poor solid weight, core structure, air permeability, or sealing that could affect the quality of the hygiene products and reduce the user experience.
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Description

Technical Field

[0001] This invention relates to the field of hygiene product manufacturing technology, specifically to a hygiene product equipment information acquisition system and control method based on a 5G network. Background Technology

[0002] Hygiene product equipment refers to equipment used for processing and manufacturing hygiene products. Because the processing of hygiene products involves many types of equipment with complex structures, the equipment requires regular maintenance to ensure stable production. Hygiene product equipment information collection is a system for collecting, processing, and monitoring in real time information about hygiene product equipment and its production. It enables functions such as automatic collection of product information (including product type and quality), equipment anomaly monitoring and analysis, equipment management, and information exchange for relevant information dissemination.

[0003] Existing methods for monitoring hygiene product processing equipment often rely on the quality of the finished hygiene products to determine if the equipment is malfunctioning. However, hygiene product production involves multiple processes, each corresponding to different processing equipment. Poor quality of finished hygiene products makes it impossible to pinpoint which piece of equipment is malfunctioning during production, hindering traceability and targeted repair. Therefore, it is crucial to monitor each process in hygiene product production separately to promptly identify and troubleshoot problems in the corresponding equipment, minimizing losses. The core preparation process is a critical step in hygiene product production, making core monitoring essential. Current monitoring and management methods have several shortcomings: firstly, they lack detailed analysis of the solid and liquid processes during core formation, making it impossible to assess whether the core processing equipment is malfunctioning. Poor core weight or structure not only affects hygiene product quality but also reduces user experience.

[0004] On the other hand, the lack of analysis of the sealing process of hygiene products makes it impossible to assess whether there is a malfunction in the hygiene product packaging equipment. If the hygiene products are not well sealed, problems such as leakage are likely to occur, which will seriously affect the user's use. Summary of the Invention

[0005] The purpose of this invention is to at least solve one of the technical problems existing in the prior art, and to provide a 5G network-based information collection system for medical equipment and its control method.

[0006] To achieve the above objectives, the present invention adopts the following technical solution: a 5G network-based information collection system for hygiene products equipment, comprising processing equipment, a monitor, a 5G concentrator, and a terminal device. The monitor is installed on the processing equipment and is used to collect production information of the processing equipment. The monitor and the 5G concentrator are connected via a carrier wave or an RS-485 interface. The 5G concentrator is connected to the terminal device via a 5G network and is used to transmit production information of hygiene products to the terminal device. The terminal device performs big data analysis and controls the production parameters of hygiene products based on the production information.

[0007] The processing equipment includes a mixing tank, on which the monitor is installed. A core mold for making absorbent cores is connected to the discharge port of the mixing tank. The core mold is conveyed to a heating device via a first conveyor belt. The heating device includes an annular moving track and a heating chamber. Several support plates for supporting the core mold are installed on the annular moving track. The core mold is conveyed to the heating chamber for drying via the annular moving track.

[0008] The discharge port of the heating box is equipped with a robotic arm for gripping the absorbent core, and the monitoring device is installed on the robotic arm; a third conveyor belt for transporting the absorbent core is provided on the other side of the robotic arm, and a core-pulling mechanism is installed at the rear end of the third conveyor belt. A core-loading buffer mechanism for receiving the absorbent core is installed in the direction in which the core-pulling mechanism pulls the absorbent core away from the third conveyor belt.

[0009] Furthermore, a stirring shaft is provided inside the mixing tank, and spiral stirring blades are provided on the stirring shaft facing inwards; a drive motor for driving the stirring shaft to rotate is provided through the mixing tank and facing outwards.

[0010] Furthermore, the bottom of the heating chamber is provided with a core mold outlet, and a second conveyor belt for transporting the core mold is provided below the core mold outlet. The second conveyor belt is arranged in parallel with the first conveyor belt.

[0011] Furthermore, the core-shifting mechanism includes a bracket spanning above the third conveyor belt, a core-shifting plate that shifts the absorbent cores on the third conveyor belt to the upper core buffer mechanism, and a driver that drives the core-shifting plate to move, the core-shifting plate and the driver being fixedly connected to the bracket.

[0012] Furthermore, the core loading and buffering mechanism includes a guide rail and several temporary storage compartments mounted on the guide rail and moving with the guide rail. The core-pushing mechanism pushes the absorbent core into the temporary storage compartment. The bottom of the temporary storage compartment is provided with a compartment opening that can be controlled to open and close independently. Below the compartment opening is a packaging layer loading mechanism. The packaging layer loading mechanism includes a fourth conveyor belt that transports a carrier plate carrying the packaging layer to the area below the temporary storage compartment. The output end of the fourth conveyor belt is equipped with a pressing device for sealing the absorbent core and the packaging layer. The output end of the pressing device is connected to a sealing output line, and the monitoring device is installed on the sealing output line.

[0013] Furthermore, the temporary storage bins are installed parallel to each other at equal intervals on the guide rail.

[0014] Furthermore, a downwardly inclined sliding plate is provided between the core-picking mechanism and the core-buffering mechanism. The upper end of the sliding plate is fixed to the position where the core-picking plate picks up the absorber core away from the first conveyor belt, and the lower end of the sliding plate is placed above the temporary storage bin.

[0015] Furthermore, the monitor includes at least one of an image sensor, a weighing sensor, a temperature sensor, a humidity sensor, and an infrared sensor.

[0016] Furthermore, the terminal equipment includes an absorbent core information acquisition module: used to acquire basic information of each sanitary product in the current production batch of the sanitary product production line during the absorbent core formation process, and record it as the absorbent core information of each target sanitary product, wherein the absorbent core information includes the solid weight and the core structure matching degree;

[0017] Absorbent core analysis module: Based on the absorbent core information of each target sanitary product, it determines whether there are any abnormalities in the supporting equipment for forming the absorbent core of the sanitary product production line. If there are no abnormalities, it acquires each designated sanitary product and executes the wrapping layer information acquisition module.

[0018] Wrapping layer information acquisition module: used to collect information on the wrapping layer of each specified sanitary product, including the thickness and breathability of the wrapping layer material;

[0019] Wrapping layer information analysis module: It is used to determine whether there is any abnormality in the wrapping layer supporting equipment of the sanitary product production line based on the wrapping layer information of each specified sanitary product. If there is no abnormality, it acquires each marked sanitary product and executes the sealing parameter monitoring module.

[0020] Sealing parameter monitoring module: used to monitor the sealing parameters of each marked hygiene product, including sealing tightness and sealing flatness;

[0021] Sealing Analysis Module: Used to determine whether there are any abnormalities in the sealing equipment of the hygiene product production line based on the sealing parameters of each marked hygiene product, and to take corresponding measures.

[0022] Database: Used to store reference diagrams of sanitary product structure, reference ranges for absorbent core weight, reference ranges for solid weight, and reference thickness and breathability of wrapping material.

[0023] The control method for the 5G-based medical equipment information collection system is as follows:

[0024] S1. Absorbent Core Information Acquisition: This is used to acquire basic information about each hygiene product in the current production batch during the absorption core formation process, and record it as the absorbent core information of each target hygiene product. The absorbent core information includes the weight of solids and the matching degree of the core structure.

[0025] S2. Absorbent Core Analysis: Based on the absorbent core information of each target hygiene product, it determines whether there are any abnormalities in the supporting equipment for forming the absorbent core of the hygiene product production line. If there are no abnormalities, it acquires each designated hygiene product and executes the wrapping layer information acquisition module.

[0026] S3, Wrapping Layer Information Acquisition Module: Used to collect information on the wrapping layers of each designated sanitary product, including the thickness and breathability of the wrapping layer material.

[0027] S4. Wrapping layer information analysis: This is used to determine whether there are any abnormalities in the wrapping layer equipment of the sanitary product production line based on the wrapping layer information of each specified sanitary product. If there are no abnormalities, the marked sanitary products are obtained and the sealing parameter monitoring module is executed.

[0028] S5. Sealing Parameter Monitoring: Used to monitor the sealing parameters of each marked hygiene product, including sealing tightness and sealing flatness;

[0029] S6. Sealing Analysis: Based on the sealing parameters of each marked hygiene product, this function determines whether there are any abnormalities in the sealing equipment of the hygiene product production line and takes appropriate action.

[0030] As can be seen from the above description of the present invention, compared with the prior art, the present invention has the following beneficial effects:

[0031] 1. This invention involves installing a monitor on the processing equipment and transmitting the information collected by the monitor to a 5G concentrator via a carrier wave or RS-485 interface. The 5G concentrator then transmits the acquired information to the terminal device via the 5G network. The terminal device performs big data analysis and controls the production parameters of the sanitary products based on the obtained production information, thereby realizing intelligent manufacturing of sanitary products and ensuring that the produced sanitary products meet market demands.

[0032] 2. This invention determines whether there are any abnormalities in the supporting equipment for forming the absorbent core in the production line of the sanitary product by obtaining the weight of the solids and the matching degree of the core structure of each target sanitary product. It diagnoses and evaluates the supporting equipment for forming the absorbent core to avoid affecting the quality of the sanitary product and reducing the user experience due to poor weight of the solids or poor core structure.

[0033] 3. This invention collects information on the wrapping layer of each designated hygiene product to determine whether there are any abnormalities in the wrapping layer equipment of the hygiene product production line, and evaluates the wrapping layer equipment to prevent the hygiene products from being too heavy or having poor breathability, which would affect the user's use.

[0034] 4. This invention monitors the sealing tightness and flatness of each marked hygiene product to determine whether there are any abnormalities in the sealing and pressing equipment of the hygiene product production line, evaluates the sealing and pressing equipment, and avoids leakage of urine and other wastes due to poor sealing of hygiene products. Attached Figure Description

[0035] Figure 1 This is a schematic diagram of the structure of a 5G network-based information collection system for medical products in a preferred embodiment of the present invention;

[0036] Figure 2 This is a schematic diagram of the processing equipment in a preferred embodiment of the present invention.

[0037] Reference numerals in the attached drawings: 1. Processing equipment; 101. Mixing tank; 102. Core mold; 103. First conveyor belt; 104. Heating chamber; 105. Robotic arm; 106. Third conveyor belt; 107. Core-pulling mechanism; 108. Second conveyor belt; 109. Temporary storage bin; 110. Fourth conveyor belt; 111. Pressing equipment; 112. Sealing output line; 113. Slide plate; 114. Circular moving track; 2. Monitor; 3. 5G concentrator; 4. Terminal equipment. Detailed Implementation

[0038] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0039] Reference Figure 1-2As shown in the preferred embodiment of the present invention, a 5G network-based information collection system for hygiene products includes a processing device 1, a monitor 2, a 5G concentrator 3, and a terminal device 4. The monitor 2 is installed on the processing device 1 and is used to collect production information of the processing device. The monitor 2 includes at least one of an image sensor, a weighing sensor, a temperature sensor, a humidity sensor, and an infrared sensor. The monitor 2 is connected to the 5G concentrator 3 via a carrier wave or an RS-485 interface. The 5G concentrator 3 is connected to the terminal device 4 via a 5G network and is used to transmit the production information of the hygiene products to the terminal device 4. The terminal device 4 performs big data analysis and controls the production parameters of the hygiene products based on the production information, thereby realizing intelligent manufacturing of hygiene products and ensuring that the produced hygiene products meet market demands.

[0040] The processing equipment 1 includes a mixing tank 101, on which the temperature sensor and humidity sensor are installed. An image sensor (not shown in the figure) for acquiring the state of the solid material is installed at the outlet of the mixing tank 101. A core carrier mold 102 for making the absorbent core is connected to the outlet of the mixing tank 101. The core carrier mold 102 is conveyed to a heating device via a first conveyor belt 103. The heating device includes an annular moving track and a heating chamber 104. Several support plates for supporting the core carrier mold 102 are installed on the annular moving track. The core carrier mold 102 is conveyed to the heating chamber 104 for drying via the annular moving track. After the mixing tank 101 injects slurry into the core carrier mold, it needs to be molded first. This molding equipment can be based on existing technology. The absorbent core is then transported to the heating chamber via the first conveyor belt 103 for heating. A robotic arm 105 is installed at the outlet of the heating chamber 104 to grip the absorbent core. The robotic arm 105 is equipped with a weighing sensor for measuring the weight of the absorbent core and an image sensor (not shown) for measuring the structure of the absorbent core. A third conveyor belt 106 for transporting the absorbent core is located on the other side of the robotic arm 105. A core-removing mechanism 107 is installed at the rear end of the third conveyor belt 106. A core-removing buffer mechanism is installed in the direction that the core is moved away from the third conveyor belt 106 to receive the absorbent core. This achieves intelligent preparation of the absorbent core, and by monitoring the solid content and structure of the absorbent core, the obtained sanitary product has good absorbency and will not leak.

[0041] As a preferred embodiment of the present invention, it may also have the following additional technical features: a stirring shaft is provided inside the mixing tank 101, and the stirring shaft is provided with spiral stirring blades facing inwards from the mixing tank; a drive motor for driving the stirring shaft to rotate is provided through the mixing tank and facing outwards. This ensures that the polymer material and pulp or wood pulp can be fully and uniformly mixed, guaranteeing the high absorbency of the absorbent core.

[0042] In this embodiment, the bottom of the heating box 104 is provided with a core carrier mold outlet, and a second conveyor belt 108 for transporting the core carrier mold is provided below the core carrier mold outlet. The second conveyor belt 108 is arranged in parallel with the first conveyor belt 103. This facilitates the recycling of the core carrier mold after the absorbent core is demolded.

[0043] In this embodiment, the core-shifting mechanism 107 includes a bracket spanning above the third conveyor belt 106, a core-shifting plate for shifting absorbent cores from the third conveyor belt 106 to the upper core buffer mechanism, and a driver for driving the core-shifting plate. The core-shifting plate and the driver are fixedly connected to the bracket. This allows for the sorting of absorbent cores; that is, by obtaining information through an image sensor and a weighing sensor, the absorbent cores are shifted to their respective temporary storage compartments 109.

[0044] In this embodiment, the core buffer mechanism includes a guide rail and several temporary storage compartments 109 mounted on the guide rail and moving with it. The core-pushing mechanism 107 pushes the absorbent core into the temporary storage compartment 109. Each temporary storage compartment 109 has an individually controllable opening at its bottom. Below the opening is a layer-loading mechanism, which includes a fourth conveyor belt 110 that transports a carrier plate carrying the layer to the temporary storage compartment 109. The output end of the fourth conveyor belt 110 is equipped with a pressing device 111 for sealing the absorbent core and the layer. The output end of the pressing device 111 is connected to a sealing output line 112, and an image sensor for monitoring the sanitary products is installed on the sealing output line 112. This enables automated production of sanitary products and ensures the quality of the produced products.

[0045] In this embodiment, the temporary storage compartments 109 are installed parallel to each other at equal intervals on the guide rail. This allows for the sorting of the absorbent cores, ensuring the quality of the obtained sanitary products.

[0046] In this embodiment, a downwardly inclined slide plate 113 is provided between the core-shifting mechanism 107 and the core-upper buffer mechanism. The upper end of the slide plate 113 is fixedly connected to the position where the core-shifting plate moves the absorbent core away from the first conveyor belt, and the lower end of the slide plate 113 is positioned above the temporary storage bin 109. This facilitates the core-shifting plate to transfer the absorbent core into the corresponding temporary storage bin 109.

[0047] In this embodiment, the terminal device 4 includes an absorbent core information acquisition module: used to acquire basic information of each sanitary product in the current production batch of the sanitary product production line during the absorbent core formation process, and record it as the absorbent core information of each target sanitary product, wherein the absorbent core information includes the solid weight and the core structure matching degree;

[0048] Absorbent Core Analysis Module: Based on the absorbent core information of each target sanitary product, it determines whether there are any abnormalities in the supporting equipment for forming the absorbent core in the sanitary product production line, so as to avoid the weight of the solid material or poor core structure affecting the quality of the sanitary product and reducing the user experience; if there are no abnormalities, it acquires each designated sanitary product and executes the wrapping layer information acquisition module.

[0049] Wrapping layer information acquisition module: used to collect information on the wrapping layer of each specified sanitary product, including the thickness and breathability of the wrapping layer material;

[0050] Wrapping layer information analysis module: It is used to determine whether there is any abnormality in the wrapping layer supporting equipment of the sanitary product production line based on the wrapping layer information of each specified sanitary product, so as to prevent the sanitary products from being too heavy or having poor breathability and affecting the use of the user; if there is no abnormality, it acquires each marked sanitary product and executes the sealing parameter monitoring module.

[0051] Sealing parameter monitoring module: used to monitor the sealing parameters of each marked hygiene product, including sealing tightness and sealing flatness;

[0052] Sealing Analysis Module: Used to determine whether there are any abnormalities in the sealing equipment of the sanitary product production line based on the sealing parameters of each marked sanitary product, so as to avoid leakage of urine and other wastes due to poor sealing of sanitary products; if there are any abnormalities, appropriate measures will be taken.

[0053] Database: Used to store reference diagrams of sanitary product structure, reference ranges for absorbent core weight, reference ranges for solid weight, and reference thickness and breathability of wrapping material.

[0054] The control method for the 5G-based medical equipment information collection system is as follows:

[0055] S1. Absorbent Core Information Acquisition: This is used to acquire basic information about each hygiene product in the current production batch during the absorption core formation process, and record it as the absorbent core information of each target hygiene product. The absorbent core information includes the weight of solids and the matching degree of the core structure.

[0056] S2. Absorbent Core Analysis: Based on the absorbent core information of each target hygiene product, it determines whether there are any abnormalities in the supporting equipment for forming the absorbent core of the hygiene product production line. If there are no abnormalities, it acquires each designated hygiene product and executes the wrapping layer information acquisition module.

[0057] The analysis of the absorbent core obtains the weight of each target absorbent core through a weighing sensor and the core structure of each target absorbent core through an image sensor. It further obtains the solid weight and core structure of each target absorbent core, compares the obtained solid weight with the parameters in the database, and issues an alarm when the weight does not match the database. The absorbent core is then marked and stored in the corresponding temporary storage compartment.

[0058] Image processing technology is used to calculate the matching degree between the core structure and the core structure in the database. When the core structure does not match the database, an alarm message is issued, the absorber core is marked, and stored in the corresponding temporary storage.

[0059] S3, Wrapping Layer Information Acquisition Module: Used to collect information on the wrapping layers of each designated sanitary product, including the thickness and breathability of the wrapping layer material.

[0060] S4. Wrapping layer information analysis: This is used to determine whether there are any abnormalities in the wrapping layer equipment of the sanitary product production line based on the wrapping layer information of each specified sanitary product. If there are no abnormalities, the marked sanitary products are obtained and the sealing parameter monitoring module is executed.

[0061] The information analysis of the packaging layer obtains the weight of each target hygiene item through a weighing sensor and the breathability structure of each target hygiene item through an image sensor. The weight and breathability structure of each target hygiene item are then obtained. The obtained weight of the hygiene item is compared with the parameters in the database. When the weight does not match the database, an alarm message is issued and the hygiene item is marked.

[0062] Image processing technology is used to calculate the matching degree between the breathability structure of the sanitary product and the breathability structure of sanitary products in the database. When the breathability structure of the sanitary product does not match the database, an alarm message is issued and the sanitary product is marked.

[0063] S5. Sealing Parameter Monitoring: Used to monitor the sealing parameters of each marked hygiene product, including sealing tightness and sealing flatness;

[0064] S6. Sealing Analysis: Based on the sealing parameters of each marked hygiene product, this function determines whether there are any abnormalities in the sealing equipment of the hygiene product production line and takes appropriate action.

[0065] This sealing analysis examines the sealing tightness of each marked item. and sealing flatness / > Substitute into the formula Obtain the sealing pass index of each marked sanitary product / > ξ p , where ψ1 and ψ2 represent the preset weighting factors for sealing tightness and sealing smoothness, respectively;

[0066] Based on the sealing and pressing qualification index of each marked hygiene product, determine whether there are any abnormalities in the pressing equipment of the hygiene product production line, and issue an early warning.

[0067] Without causing conflict, those skilled in the art can freely combine and use the above-mentioned additional technical features.

[0068] It is understood that the present invention has been described through some embodiments, and those skilled in the art will recognize that various changes or equivalent substitutions can be made to these features and embodiments without departing from the spirit and scope of the invention. Furthermore, under the teachings of the present invention, these features and embodiments can be modified to adapt to specific situations and materials without departing from the spirit and scope of the invention. Therefore, the present invention is not limited to the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application are within the protection scope of the present invention.

Claims

1. A 5G network-based equipment information acquisition system, characterized by comprising: The application relates to a production information acquisition system for sanitary products, which comprises processing equipment, a monitor, a 5G concentrator and terminal equipment. The processing equipment comprises a mixing tank, the mixing tank is provided with the monitor, a core-carrying mold for manufacturing an absorbent core is communicated with a discharge port of the mixing tank, the core-carrying mold is transmitted to a heating device through a first conveying belt, the heating device comprises a ring-shaped moving track and a heating box body, a plurality of bearing plates for bearing the core-carrying mold are arranged on the ring-shaped moving track, and the core-carrying mold is transmitted to the heating box body through the ring-shaped moving track to be dried. A mechanical hand for clamping the absorbent core is arranged on a discharge port of the heating box body, and the mechanical hand is provided with the monitor; a third conveying belt for conveying the absorbent core is arranged on the other side of the mechanical hand, a core-pushing mechanism is arranged at the rear end of the third conveying belt, and an upper core buffering mechanism for receiving the absorbent core is arranged in the direction in which the absorbent core is pushed away from the third conveying belt. The terminal equipment comprises an absorbent core information acquisition module, a core structure matching degree and a solid weight are obtained by acquiring basic information of each sanitary product in an absorbent core forming process in a current production batch of a sanitary product production line, and the basic information is recorded as absorbent core information of each target sanitary product. An absorbent core analysis module is used for judging whether a matched equipment for forming an absorbent core of the sanitary product production line is abnormal according to the absorbent core information of each target sanitary product, if not, each specified sanitary product is obtained, and a wrapping layer information acquisition module is executed. The wrapping layer information acquisition module is used for acquiring wrapping layer information of each specified sanitary product, wherein the wrapping layer information comprises a wrapping layer material thickness and air permeability. A wrapping layer information analysis module is used for judging whether a matched equipment for forming an absorbent core of the sanitary product production line is abnormal according to the absorbent core information of each target sanitary product, if not, each specified sanitary product is obtained, and a wrapping layer information acquisition module is executed. The wrapping layer information acquisition module is used for acquiring wrapping layer information of each specified sanitary product, wherein the wrapping layer information comprises a wrapping layer material thickness and air permeability. A wrapping layer information analysis module is used for judging whether a matched equipment for forming an absorbent core of the sanitary product production line is abnormal according to the absorbent core information of each target sanitary product, if not, each specified sanitary product is obtained, and a wrapping layer information acquisition module is executed. The wrapping layer information acquisition module is used for acquiring wrapping layer information of each specified sanitary product, wherein the wrapping layer information comprises a wrapping layer material thickness and air permeability. 2.The 5G network-based equipment information acquisition system of claim 1, wherein: A database is used for storing a reference graph of a sanitary product structure, a reference range of an absorbent core weight, a reference range of a solid weight, a reference thickness of a wrapping layer material and air permeability. A stirring shaft is arranged in the mixing tank, spiral stirring blades are arranged on the stirring shaft towards the mixing tank, and a driving motor for driving the stirring shaft to rotate is arranged on the stirring shaft penetrating through the mixing tank towards the outside. 3.The 5G network-based equipment information acquisition system of claim 1, wherein: The heating box bottom is provided with a carrier core mold outlet, and a second conveying belt for conveying the carrier core mold is arranged below the carrier core mold outlet. 4.The 5G network-based equipment information acquisition system of claim 1, wherein: The core pushing mechanism comprises a support transversely arranged above the third conveying belt, a core pushing plate for pushing the absorbent core on the third conveying belt to the core storage mechanism, and a driver for driving the core pushing plate to move, and the core pushing plate and the driver are fixed to the support. 5.The 5G network-based equipment information acquisition system of claim 1, wherein: The core storage mechanism comprises a guide rail and a plurality of temporary storage bins mounted on the guide rail and displaced with the guide rail, the core pushing mechanism pushes the absorbent core into the temporary storage bin, the bottom of the temporary storage bin is provided with a bin opening which can be individually controlled to open and close, and a wrapping layer feeding mechanism is mounted below the bin opening, the wrapping layer feeding mechanism comprises a fourth conveying belt for conveying the wrapping layer loaded on the carrier plate to below the temporary storage bin, a pressing device for pressing the absorbent core and the wrapping layer is mounted at the output end of the fourth conveying belt, an output line of the pressing device is connected, and the monitor is mounted on the output line. 6.The 5G network-based equipment information acquisition system of claim 5, wherein: The temporary storage bins are mounted on the guide rail in parallel and at equal intervals. 7.The 5G network-based equipment information acquisition system of claim 5, wherein: A downwardly inclined sliding plate is arranged between the core pushing mechanism and the core storage mechanism, the upper end of the sliding plate is fixed to the position where the core pushing plate pushes the absorbent core away from the first conveying belt, and the lower end of the sliding plate is arranged above the temporary storage bin. 8.The 5G network-based equipment information acquisition system of claim 1, wherein: The monitor comprises at least one of an image sensor, a weighing sensor, a temperature sensor, a humidity sensor, and an infrared sensor.

9. A control method of a safety device information collection system based on a 5G network, characterized by: The 5G network-based sanitary product equipment information acquisition system according to any one of claims 1-8 has the following control method: S1, absorbent core information acquisition: used for acquiring the basic information of each sanitary product in the current production batch of the sanitary product production line in the absorbent core forming process, and recording it as the absorbent core information of each target sanitary product, wherein the absorbent core information includes solid weight and core structure matching degree; S2, absorbent core analysis: used for judging whether the absorbent core forming supporting equipment of the sanitary product production line is abnormal according to the absorbent core information of each target sanitary product, if not, acquiring each specified sanitary product, and executing the wrapping layer information acquisition module; S3, wrapping layer information acquisition module: used for acquiring the wrapping layer information of each specified sanitary product, wherein the wrapping layer information includes wrapping layer material thickness and air permeability; S4, wrapping layer information analysis: used for judging whether the wrapping layer supporting equipment of the sanitary product production line is abnormal according to the wrapping layer information of each specified sanitary product, if not, acquiring each marked sanitary product, and executing the pressing parameter monitoring module; S5, pressing parameter monitoring: used for monitoring the pressing parameters of each marked sanitary product, wherein the pressing parameters include sealing tightness and sealing flatness; S6, pressing analysis: used for judging whether the sanitary product pressing supporting equipment of the sanitary product production line is abnormal according to the pressing parameters of each marked sanitary product, and performing corresponding processing.

Citation Information

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