Antipyretic patch overturning detection device

By designing a heat-reducing patch flipping detection device, an industrial camera and supplementary light are used to identify non-front-facing heat-reducing patches, and the patch is automatically flipped by a kicking cylinder. This solves the problem of easy errors in manual flipping in existing technologies and realizes automated flipping and storage of heat-reducing patches.

CN223645709UActive Publication Date: 2025-12-09GUANGDONG MEIBEIJIAN PHARM CO LTD
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Patent Information

Application Number
CN202520024945.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-06
Publication Date
2025-12-09
Estimated Expiration
2035-01-06

AI Technical Summary

Technical Problem

In the current production of fever-reducing patches, the packaging process, where the patches are flipped over by hand on the assembly line, is prone to visual fatigue and errors.

Method used

Design a heat-reducing patch flipping detection device that uses an industrial camera and supplementary light to identify heat-reducing patches that are not placed face up, and kicks them out of the production line by a kicking cylinder. By using sensors and controllers to work together, automated flipping and storage can be achieved.

Benefits of technology

It enables automated flipping of the fever-reducing patches, reduces manual operation, avoids visual fatigue and errors, and ensures smooth subsequent packaging processes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a fever cooling patch overturning detection device which comprises a circulating conveyor belt, a material storage table, a detection mechanism and a material kicking air cylinder which are arranged on a machine frame, the material storage table and the circulating conveyor belt are arranged side by side in a left-right mode, a partition plate is arranged between the material storage table and the circulating conveyor belt, and the detection mechanism is arranged at the position close to the input end of the circulating conveyor belt. The material kicking air cylinder is arranged behind the detection mechanism, a first sensor is arranged in front of the material kicking air cylinder and used for detecting whether a cooling patch passes through the circulating conveying belt or not, a material passing opening is formed in the position, corresponding to the material kicking air cylinder, of the partition plate, and the first sensor, the material kicking air cylinder and the detection mechanism are electrically connected with the controller. The detection device can identify the cooling patches which are conveyed on the assembly line and are not placed on the front side, and the cooling patches which are placed incorrectly are kicked out of the assembly line through the kicking air cylinder, so that the subsequent packaging procedure is prevented from being affected. And the fever cooling patches kicked out of the assembly line are concentrated on the material storage table and are put back to the assembly line after being turned over by subsequent manual intervention.
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Description

Technical Field

[0001] This utility model relates to a device for detecting the flipping of a heat-reducing patch. Background Technology

[0002] Fever-reducing patches are physical cooling patches applied to areas of heat. They primarily work by using hydrogel evaporation to remove heat from the affected area, thus achieving a cooling effect. Current production of fever-reducing patches utilizes automated assembly lines. However, in the final packaging stage, manual handling is required to flip the patches that are not placed face up on the assembly line to ensure smooth packaging in the next stage. Manual flipping is prone to visual fatigue and errors.

[0003] Therefore, it is necessary to make further improvements. Utility Model Content

[0004] To address the aforementioned issues, this invention proposes a fever-reducing patch flipping detection device. This device can kick overturned fever-reducing patches off the production line, preventing them from affecting subsequent packaging processes.

[0005] This utility model proposes a heat-reducing patch flipping detection device, which includes a circulating conveyor belt, a storage platform, a detection mechanism, and a kicking cylinder mounted on a frame. The storage platform and the circulating conveyor belt are arranged side by side, and a baffle is provided between the storage platform and the circulating conveyor belt. The detection mechanism is located near the input end of the circulating conveyor belt, and the kicking cylinder is located behind the detection mechanism. A first sensor is located in front of the kicking cylinder. The first sensor is used to detect whether a heat-reducing patch is passing on the circulating conveyor belt. The baffle has a material outlet corresponding to the position of the kicking cylinder. The first sensor, the kicking cylinder, the detection mechanism, and the controller are electrically connected.

[0006] In one or more embodiments, the detection mechanism includes an outer casing, an industrial camera, and a fill light, the outer casing being arranged across a circulating conveyor belt, and the industrial camera and fill light being mounted on the inner top of the outer casing.

[0007] In one or more embodiments, the storage platform is provided with a pusher cylinder on one side of the material inlet, and a second sensor is provided on the storage platform at the position corresponding to the material inlet. The second sensor is used to control the pusher cylinder to perform the pushing operation, and the second sensor, the pusher cylinder and the controller are electrically connected.

[0008] In one or more embodiments, the storage platform is provided with a third sensor in the pushing direction of the pushing cylinder. The third sensor is spaced apart from the second sensor. An alarm is provided on the controller. When the third sensor is triggered, the alarm sounds an alarm. The third sensor, the alarm and the controller are electrically connected.

[0009] In one or more embodiments, the alarm is a buzzer or a flashing light.

[0010] In one or more embodiments, the circulating conveyor belt includes a conveyor belt body, a driven pulley, a driving pulley, and a drive motor. The conveyor belt body is sleeved on the driven pulley and the driving pulley. The driven pulley and the driving pulley are respectively installed at both ends of the frame. The driving pulley and the driven pulley are driven by a transmission belt.

[0011] The beneficial effects of this invention are as follows: This detection device can identify heat-reducing patches that are not placed face-up on the production line, and then kicks the incorrectly placed heat-reducing patches out of the production line using a kicking cylinder to avoid affecting subsequent packaging processes. The heat-reducing patches kicked out of the production line are collected on a storage platform and can be manually flipped and put back into the production line later, so there is no need for long-term manual operation on the production line. Attached Figure Description

[0012] Figure 1 This is a schematic diagram of the structure of the mixer according to an embodiment of the present invention. Detailed Implementation

[0013] To enhance understanding of this utility model, the present utility model will be further described in detail below with reference to the embodiments and accompanying drawings. These embodiments are only used to explain the present utility model and do not constitute a limitation on the scope of protection of the present utility model.

[0014] Please refer to the appendix. Figure 1 This utility model provides a heat-reducing patch flipping detection device, which includes a circulating conveyor belt 2, a storage platform 3, a detection mechanism 4, and a kicking cylinder 5 mounted on a frame 1. The storage platform and the circulating conveyor belt are arranged side by side, and a baffle 6 is provided between the storage platform 3 and the circulating conveyor belt. The detection mechanism is located near the input end of the circulating conveyor belt 2, and the kicking cylinder 5 is located behind the detection mechanism. A first sensor 7 is located in front of the kicking cylinder. The first sensor is used to detect whether a heat-reducing patch is passing on the circulating conveyor belt. The baffle 6 has a feed port 8 corresponding to the position of the kicking cylinder. The first sensor, the kicking cylinder, the detection mechanism, and the controller 9 are electrically connected. Specifically, when the detection mechanism detects that a heat-reducing patch is not placed face up, the controller receives the detection signal from the detection mechanism, and the first sensor is then activated by the controller. When the first sensor detects that a heat-reducing patch has passed through, it feeds back the detection signal to the controller, and the controller then instructs the kicking cylinder to work, kicking the heat-reducing patch from the feed port into the storage platform, thereby completing the kicking operation.

[0015] The detection mechanism includes an outer cover 41, an industrial camera 42, and a supplementary light 43. The outer cover is set across the circulating conveyor belt 2. The industrial camera and the supplementary light are installed on the inner top of the outer cover. The industrial camera can take pictures of the passing heat-reducing patches and compare them to confirm whether the heat-reducing patches are not placed in a forward position, and feed the comparison results back to the controller. The supplementary light can provide sufficient light source for the industrial camera to work.

[0016] The storage platform 3 is equipped with a pusher cylinder 10 on one side of the feed port. A second sensor 11 is provided on the storage platform at the position corresponding to the feed port. The second sensor is used to control the pusher cylinder to perform the pushing operation. The second sensor, the pusher cylinder and the controller are electrically connected. When the heat-reducing patch is sent into the storage platform by the pusher cylinder, the heat-reducing patch will trigger the second sensor. Then the signal triggered by the second sensor is fed back to the controller. The controller then instructs the pusher cylinder to push the heat-reducing patch to the other side of the storage platform to avoid blocking the feed port.

[0017] The storage platform 3 is equipped with a third sensor 12 located in the pushing direction of the pusher cylinder. The third sensor is spaced apart from the second sensor. The controller 9 is equipped with an alarm 13. When the third sensor is triggered, the alarm sounds. The third sensor, the alarm, and the controller are electrically connected. The area between the third and second sensors on the storage platform is a temporary storage area for the heat-reducing patches. When the third sensor is triggered, it indicates that the area is full of heat-reducing patches. After receiving the signal from the third sensor, the controller immediately instructs the alarm to sound, reminding the producer to clean the heat-reducing patches on the storage platform. Preferably, to promptly remind the producer, the alarm 13 is a buzzer or a flashing light, or a combination of both.

[0018] The circulating conveyor belt 2 in this embodiment includes a conveyor belt body 21, a driven pulley 22, a driving pulley 23, and a drive motor 24. The conveyor belt body is sleeved on the driven pulley and the driving pulley. The driven pulley and the driving pulley are respectively installed at both ends of the frame 1. The driving pulley and the driven pulley are driven by a transmission belt 25. The drive motor is used to drive the driving pulley to rotate.

[0019] The above description is only a preferred embodiment of the present utility model. The protection scope of the present utility model is not limited to the above embodiments. All equivalent modifications or changes made by those skilled in the art based on the content disclosed in the present utility model should be included in the protection scope recorded in the claims.

Claims

1. A device for detecting the flipping of a fever-reducing patch, characterized in that: The system includes a circulating conveyor belt (2), a storage platform (3), a detection mechanism (4), and a kicking cylinder (5) mounted on a frame (1). The storage platform and the circulating conveyor belt are arranged side by side. A partition plate (6) is provided between the storage platform (3) and the circulating conveyor belt. The detection mechanism is located near the input end of the circulating conveyor belt (2). The kicking cylinder (5) is located behind the detection mechanism. A first sensor (7) is located in front of the kicking cylinder. The first sensor is used to detect whether a heat-reducing patch is passing through the circulating conveyor belt. The partition plate (6) has a material outlet (8) corresponding to the position of the kicking cylinder. The first sensor, the kicking cylinder, the detection mechanism, and the controller (9) are electrically connected.

2. The fever-reducing patch flipping detection device according to claim 1, characterized in that: The detection mechanism includes an outer cover (41), an industrial camera (42), and a fill light (43). The outer cover is set across the circulating conveyor belt (2), and the industrial camera and fill light are mounted on the inner top of the outer cover.

3. The fever-reducing patch flipping detection device according to claim 1, characterized in that: The storage platform (3) is equipped with a pusher cylinder (10) on one side of the material outlet. The storage platform is equipped with a second sensor (11) at the position corresponding to the material outlet. The second sensor is used to control the pusher cylinder to perform the pushing operation. The second sensor, the pusher cylinder and the controller are electrically connected.

4. The fever-reducing patch flipping detection device according to claim 3, characterized in that: The storage platform (3) is equipped with a third sensor (12) in the pushing direction of the pushing cylinder. The third sensor is spaced apart from the second sensor. The controller (9) is equipped with an alarm (13). When the third sensor is triggered, the alarm sounds. The third sensor, the alarm and the controller are electrically connected.

5. The fever-reducing patch flipping detection device according to claim 4, characterized in that: The alarm (13) is a buzzer or a flashing light.

6. A fever-reducing patch flipping detection device according to any one of claims 1-5, characterized in that: The circulating conveyor belt (2) includes a conveyor belt body (21), a driven pulley (22), a driving pulley (23), and a drive motor (24). The conveyor belt body is sleeved on the driven pulley and the driving pulley. The driven pulley and the driving pulley are respectively installed at both ends of the frame (1). The driving pulley and the driven pulley are driven by a transmission belt (25). The drive motor is used to drive the driving pulley to rotate.