Metal detection and weighing integrated equipment

By introducing a guide mechanism and a dual-channel mechanism into the integrated metal detection and weighing equipment, and using a motor to drive the conveyor belt to tilt, the problem of conveyor belt pauses is solved, achieving efficient metal detection and processing, improving production efficiency and simplifying the operation process.

CN224157339UActive Publication Date: 2026-04-24SHANGHAI JINGZHINUO COSMETICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANGHAI JINGZHINUO COSMETICS CO LTD
Filing Date
2025-05-16
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

Existing metal detection and weighing integrated equipment will stop operating the conveyor belt after detecting metal substances, requiring manual cleaning, which leads to low work efficiency and production delays.

Method used

A device comprising a support frame, a conveyor assembly, a weighing device, a metal detection device, a guide mechanism, and a dual-channel mechanism is designed. The conveyor belt is tilted by a motor-driven swing rod and connector, which guides the detected metal material to the dual-channel mechanism to ensure the normal operation of the conveyor belt.

Benefits of technology

This technology enables the conveyor belt to continue operating normally even when metal is detected, improving work efficiency and production progress, and simplifying the operation process.

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Abstract

The utility model discloses metal detecting and weighing integrated equipment, which comprises a support frame, a conveying assembly, a weighing device, a metal detecting device, a dividing and guiding mechanism and a double-channel mechanism, the conveying assembly is arranged at the top of the support frame, the weighing device is arranged at the left end of the conveying assembly, and the metal detecting device is arranged at the right end of the conveying assembly. The metal detection device is arranged on the conveying assembly, the guiding mechanism is arranged on the right side of the conveying assembly, and the double-channel mechanism is arranged on the right side of the guiding mechanism. According to the scheme, the working efficiency and the production progress are greatly improved, and the operation process of workers is greatly simplified.
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Description

Technical Field

[0001] This utility model relates to the field of production quality control technology, specifically to an integrated metal detection and weighing device. Background Technology

[0002] Metal detectors are used to detect foreign metal objects mixed in during the production of food, medicine, cosmetics, textiles, etc. They are mainly used for quality control and product safety screening in industrial production.

[0003] In existing metal detection and weighing integrated equipment, the conveyor belt usually stops operating when the metal detection device detects metal, requiring manual cleaning before it can resume operation. This significantly reduces work efficiency and delays production schedules.

[0004] Therefore, a solution is needed. Utility Model Content

[0005] (a) Technical problems to be solved

[0006] To address the shortcomings of existing technologies, this utility model provides an integrated metal detection and weighing device to solve the problems mentioned in the background section.

[0007] (II) Technical Solution

[0008] To achieve the above objectives, this utility model provides the following technical solution:

[0009] A metal detection and weighing integrated device, characterized in that it includes a support frame, a conveying assembly, a weighing device, a metal detection device, a guide mechanism, and a dual-channel mechanism. The conveying assembly is located on the top of the support frame, the weighing device is located at the left end of the conveying assembly, the metal detection device is located on the conveying assembly, the guide mechanism is located on the right side of the conveying assembly, and the dual-channel mechanism is located on the right side of the guide mechanism.

[0010] The guiding mechanism includes a conveyor frame, several bases, a conveyor belt, a control box, a motor, a chute, a rotating shaft, bearings, several spring plates, anti-slip pads, a return spring, a second motor, a fixed plate, a rotating shaft, a swing rod, and a connector. Several bases are evenly distributed at the bottom of the conveyor frame. The conveyor belt is positioned at the top of the conveyor frame. The control box is located at the front end of the conveyor frame. The motor is located at the left end of the front end of the conveyor belt. The chute is oppositely positioned at the front and rear ends of the conveyor frame and is located below the right end of the conveyor belt. The rotating shaft is connected to the right end of the conveyor belt and is located inside the chute. The bearing is located on the top of the conveyor belt, the spring plate is arranged in an upper and lower structure inside the slide groove and located below the bearing, the anti-slip pad is located on top of the upper spring plate, the return spring is located between the upper and lower spring plates, the second motor is located on the back of the first conveyor belt and corresponds to the position of the first motor, the fixing plate is located on top of the second motor and connected to the first conveyor frame, the rotating shaft is located between the second motor and the first conveyor belt, the swing rod is located at the end of the rotating shaft facing the slide groove, and the connector is located at the output end of the swing rod and connected to the bearing.

[0011] Preferably, the chute has an arc-shaped structure with the midpoint of the motor as the center, the spring plate has an arc-shaped structure, the spring plate at the bottom is fixed to the conveyor frame, and the spring plate at the top can move freely.

[0012] Preferably, the rotating shaft has a circular structure, the swing rod has a cuboid structure, and the connector has a cylindrical structure, and the rotating shaft, swing rod, and connector are integrally formed.

[0013] Preferably, the dual-channel mechanism includes a second conveyor frame, several second bases, a second conveyor belt, a third conveyor belt, a second control box, and a third motor. Several second bases are evenly arranged at the bottom of the second conveyor frame. The second and third conveyor belts are arranged in an upper and lower structure inside the second conveyor frame. The second control box is located at the front end of the second conveyor frame. The third motor is located at the left end of the second conveyor belt and the left end of the third conveyor belt.

[0014] (III) Beneficial Effects

[0015] This utility model provides an integrated metal detection and weighing device. It has the following beneficial effects:

[0016] 1. This solution uses motor 2 to drive the swing rod to rotate downwards, which in turn drives the shaft to slide downwards in the chute through the connector. This causes the right end of conveyor belt 1 to tilt downwards, guiding the products that need to be processed detected by the metal detection device to the dual-channel mechanism. During this process, all conveyor belts work normally, which can greatly improve work efficiency and production progress.

[0017] 2. The dual-channel mechanism has two channels, one above the other. When a product passes through without any abnormalities, the conveyor belt will be laid flat normally and the product will be guided to the second conveyor belt to be transported to the next process. Products that need to be processed will be guided to the third conveyor belt to be transported to the collection point for unified processing. This effectively sorts products without delaying the production schedule and greatly simplifies the operation process for staff. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0019] Figure 2 This is a front structural diagram of the distribution mechanism of this utility model;

[0020] Figure 3 This is a schematic diagram of the internal structure of the groove of this utility model;

[0021] Figure 4 This is a schematic diagram of the rear structure of the distribution mechanism of this utility model;

[0022] Figure 5 This is a schematic diagram of the lower swing structure of the conveyor belt of this utility model.

[0023] In the diagram, 1-support frame; 2-transfer assembly; 3-weighing device; 4-metal detection device; 5-guiding mechanism; 51-transfer frame one; 52-several bases one; 53-transfer belt one; 54-control box one; 55-motor one; 56-slide groove; 57-rotating shaft; 58-bearing; 59-several spring plates; 510-anti-slip pad; 511-reset spring; 512-motor two; 513-fixed plate; 514-rotating shaft; 515-swing rod; 516-connector; 6-dual-channel mechanism; 61-transfer frame two; 62-several bases two; 63-transfer belt two; 64-transfer belt three; 65-control box two; 66-motor three. Detailed Implementation

[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0025] Please see Figure 1-5 The present invention provides a technical solution to achieve this: including a support frame 1, a conveying component 2, a weighing device 3, a metal detection device 4, a guide mechanism 5, and a dual-channel mechanism 6. The conveying component 2 is disposed on the top of the support frame 1, the weighing device 3 is disposed on the left end of the conveying component 2, the metal detection device 4 is disposed on the conveying component 2, the guide mechanism 5 is disposed on the right side of the conveying component 2, and the dual-channel mechanism 6 is disposed on the right side of the guide mechanism 5.

[0026] The core guiding mechanism 5 includes a conveyor frame 51, several bases 52, a conveyor belt 53, a control box 54, a motor 55, a chute 56, a rotating shaft 57, a bearing 58, several spring plates 59, anti-slip pads 510, a return spring 511, a second motor 512, a fixing plate 513, a rotating shaft 514, a swing rod 515, and a connector 516. The bases 52 are evenly distributed at the bottom of the conveyor frame 51, the conveyor belt 53 is positioned at the top of the conveyor frame 51, the control box 54 is positioned at the front end of the conveyor frame 51, the motor 55 is positioned at the left end of the front end of the conveyor belt 53, the chute 56 is positioned opposite each other at the front and rear ends of the conveyor frame 51 and is located below the right end of the conveyor belt 53, and the rotating shaft 57 connects to the conveyor belt 51. The right end of 53 is located at the top inside the slide 56. The bearing 58 is mounted on the rotating shaft 57. The spring plate 59 is arranged in an upper and lower structure inside the slide 56 and is located below the bearing 58. The anti-slip pad 510 is mounted on the top of the upper spring plate 59. The reset spring 511 is mounted between the upper and lower spring plates 59. The second motor 512 is mounted on the back of the first conveyor belt 53 and corresponds to the position of the first motor 55. The fixing plate 513 is mounted on the top of the second motor 512 and connected to the first conveyor frame 51. The rotating shaft 514 is located between the second motor 512 and the first conveyor belt 53. The swing rod 515 is located at the end of the rotating shaft 514 facing the slide 56. The connector 516 is located at the output end of the swing rod 515 and connected to the bearing 58. The motor 512 drives the swing rod 515 to rotate downwards, which in turn drives the shaft 57 to slide downwards in the chute 56 through the connector 516. This causes the right end of the conveyor belt 53 to tilt downwards, guiding the products that need to be processed detected by the metal detection device 4 to the dual-channel mechanism 6. During this process, all conveyor belts work normally, which can greatly improve work efficiency and production progress.

[0027] In detail, the chute 56 has an arc-shaped structure with the midpoint of the motor 55 as the center, the spring plate 59 has an arc-shaped structure, the spring plate 59 at the bottom is fixed to the conveyor frame 51, and the spring plate 59 at the top can move freely.

[0028] The rotating shaft 514 has a circular structure, the swing rod 515 has a cuboid structure, and the connector 516 has a cylindrical structure. The rotating shaft 514, the swing rod 515, and the connector 516 are integrally formed.

[0029] The dual-channel mechanism 6 includes a second conveyor frame 61, several second bases 62, a second conveyor belt 63, a third conveyor belt 64, a second control box 65, and a third motor 66. The second bases 62 are evenly distributed at the bottom of the second conveyor frame 61. The second conveyor belt 63 and the third conveyor belt 64 are arranged vertically inside the second conveyor frame 61. The second control box 65 is located at the front end of the second conveyor frame 61. The third motor 66 is located at the left end of both the second and third conveyor belts 63 and 64. The dual-channel mechanism 6 has two channels, upper and lower. When products without abnormalities pass through, the first conveyor belt 53 lies flat, and the products are guided to the second conveyor belt 63 to be transported to the next process. Products that require processing are guided to the third conveyor belt 64 and transported to a collection point for unified processing. This effectively sorts products without delaying production, significantly simplifying the operator's workflow.

[0030] Working principle: After weighing, the product is conveyed to the right by the conveyor assembly 2 and passes through the metal detection device 4. If no abnormality is detected, the product then passes through conveyor belt 1 53 and conveyor belt 2 63 and is finally transported to the next process. If an abnormality is detected, the metal detection device 4 will send a signal to the control box 1 54, at which time the motor 2 512 drives the rotating shaft 514 to rotate, which in turn drives the swing arm 515 to swing downward, causing the connector 516 to slide down the slide groove 56 with the bearing 58. During this process, the upper spring plate 59 will be pressed against the return spring 511, and the anti-slip pad 510 can fix the outer ring of the bearing 58 without affecting the rotation of the internal rotating shaft 57, that is, without affecting the normal operation of conveyor belt 1 53. Finally, conveyor belt 1 53 tilts to the lower right, guiding the product to conveyor belt 3 64 and transporting the product to the collection point for unified processing. During this period, when the product arrives at conveyor belt 3 64, conveyor belt 1 53 immediately returns to its original position.

[0031] This utility model comprises: 1-support frame; 2-transfer assembly; 3-weighing device; 4-metal detection device; 5-guiding mechanism; 51-transfer frame one; 52-several bases one; 53-transfer belt one; 54-control box one; 55-motor one; 56-slide groove; 57-rotating shaft; 58-bearing; 59-several spring plates; 510-anti-slip pad; 511-reset spring; 512-motor two; 513-fixed plate; 514-rotating shaft; 515-swing rod; 516-connector; 6-dual-channel mechanism; 61-transfer frame two; 62-several bases two; 63- Conveyor belt two; 64-Conveyor belt three; 65-Control box two; 66-Motor three. These components are all general standard parts or components known to those skilled in the art. Their structure and principles can be learned by those skilled in the art through technical manuals or conventional experimental methods. The problem solved by this utility model is that in existing metal detection and weighing integrated equipment, when conveying products, the conveyor belt generally stops operating after the metal detection device detects metal, requiring manual cleaning before it resumes operation. This significantly reduces work efficiency and delays production progress. This utility model greatly improves work efficiency and production progress, and significantly simplifies the operation process for workers.

[0032] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. It will be apparent to those skilled in the art that this utility model is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or basic characteristics of this utility model. Therefore, the embodiments should be considered exemplary and non-limiting in all respects. The scope of this utility model is defined by the appended claims rather than the foregoing description, and thus all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this utility model. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0033] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A metal detection and weighing integrated device, characterized in that: It includes a support frame (1), a conveying assembly (2), a weighing device (3), a metal detection device (4), a guide mechanism (5), and a dual-channel mechanism (6). The conveying assembly (2) is located on the top of the support frame (1), the weighing device (3) is located on the left end of the conveying assembly (2), the metal detection device (4) is located on the conveying assembly (2), the guide mechanism (5) is located on the right side of the conveying assembly (2), and the dual-channel mechanism (6) is located on the right side of the guide mechanism (5). The guiding mechanism (5) includes a conveyor frame (51), several bases (52), a conveyor belt (53), a control box (54), a motor (55), a chute (56), a rotating shaft (57), a bearing (58), several spring plates (59), anti-slip pads (510), a return spring (511), a second motor (512), a fixing plate (513), a rotating shaft (514), a swing rod (515), and a connector (516). Several of the bases (52) are evenly arranged in the... The bottom of the first conveyor frame (51) is located, the first conveyor belt (53) is located at the top of the first conveyor frame (51), the first control box (54) is located at the front end of the first conveyor frame (51), the first motor (55) is located at the left end of the front end of the first conveyor belt (53), the slide (56) is oppositely located at the front and rear ends of the first conveyor frame (51) and is located below the right end of the first conveyor belt (53), and the rotating shaft (57) is connected to the right end of the first conveyor belt (53) and is located at the bottom of the first conveyor frame (51), ... first motor (56) is located at the front and rear ends of the first conveyor frame (51) and is located below the right end of the first conveyor belt (53), and the first control box (54) is located at the front end of the first conveyor frame (51), the first motor (55) is located at the left end of the front end of the first conveyor belt (53), the first motor (56) is located at the The bearing (58) is located on the rotating shaft (57) at the top of the inside of the chute (56). The spring plate (59) is arranged in an upper and lower structure inside the chute (56) and located below the bearing (58). The anti-slip pad (510) is located on top of the upper spring plate (59). The return spring (511) is located between the upper and lower spring plates (59). The second motor (512) is located on the back of the first conveyor belt (53). Corresponding to the position of the first motor (55), the fixing plate (513) is set on the top of the second motor (512) and connected to the first conveyor frame (51), the rotating shaft (514) is set between the second motor (512) and the first conveyor belt (53), the swing rod (515) is set at one end of the rotating shaft (514) facing the slide (56), and the connector (516) is set at the output end of the swing rod (515) and connected to the bearing (58).

2. The integrated metal detection and weighing device according to claim 1, characterized in that: The chute (56) has an arc-shaped structure with the midpoint of the motor (55) as the center. The spring plate (59) has an arc-shaped structure. The spring plate (59) at the bottom is fixed to the conveyor frame (51), and the spring plate (59) at the top can move freely.

3. The integrated metal detection and weighing device according to claim 1, characterized in that: The rotating shaft (514) has a circular structure, the swing rod (515) has a cuboid structure, and the connector (516) has a cylindrical structure. The rotating shaft (514), the swing rod (515), and the connector (516) are integrally formed.

4. The integrated metal detection and weighing device according to claim 1, characterized in that: The dual-channel mechanism (6) includes a second conveyor frame (61), several second bases (62), a second conveyor belt (63), a third conveyor belt (64), a second control box (65), and a third motor (66). Several second bases (62) are evenly arranged at the bottom of the second conveyor frame (61). The second conveyor belt (63) and the third conveyor belt (64) are respectively arranged in an upper and lower structure inside the second conveyor frame (61). The second control box (65) is located at the front end of the second conveyor frame (61). The third motor (66) is located at the left end of the second conveyor belt (63) and the left end of the third conveyor belt (64).