Traction pin distributing mechanism

By designing the feeding, lifting, discharging, and pushing components in coordination, the problems of low efficiency in material distribution and propulsion with long traction pins were solved, achieving efficient material distribution and propulsion, and improving the wear resistance of the equipment.

CN223591810UActive Publication Date: 2025-11-25苏州美科威尔自动化设备有限公司
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Patent Information

Application Number
CN202423324065.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2025-11-25
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

The existing material distribution mechanism cannot meet the material distribution and propulsion needs of the long traction pin, resulting in low efficiency.

Method used

A traction pin material distribution mechanism was designed, comprising a feeding assembly, a top feeding assembly, a discharge assembly, and a pusher assembly. Through the cooperation of the top feeding plate and the cylinder, the traction pin is used to distribute and advance the material. The support frame is made of aluminum alloy and equipped with wear-resistant plates to improve the wear resistance of the equipment.

Benefits of technology

It enables the traction pin to distribute and advance materials in the required direction, improving material distribution efficiency, and extends the service life of the equipment through aluminum alloy material and wear-resistant plate.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a traction pin distributing mechanism which comprises a supporting frame body, a feeding assembly, a jacking assembly, a discharging assembly and a pushing assembly are arranged on the supporting frame body, a gap for the jacking assembly to move is formed between the feeding assembly and the discharging assembly, and the pushing assembly is located on one side of the discharging assembly. The material jacking assembly comprises a material jacking plate and a jacking air cylinder, the driving end of the jacking air cylinder is connected with the bottom of the material jacking plate, the top of the material jacking plate is arranged to be a first inclined end used for discharging the traction pin, the material jacking plate is in sliding fit with the feeding assembly and the discharging assembly, and when the jacking air cylinder drives the material jacking plate to move downwards to the discharging position, the traction pin is discharged. And when the jacking air cylinder drives the jacking plate to move upwards to the feeding position, the lower end of the first inclined end of the jacking plate abuts against the discharging assembly, and when the jacking air cylinder drives the jacking plate to move upwards to the feeding position, the lower end of the first inclined end of the jacking plate abuts against the discharging assembly. According to the material distribution mechanism, material distribution of the traction pins is achieved, and the material distribution efficiency of the traction pins is improved.
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Description

Technical Field

[0001] This utility model relates to the field of automation technology, and in particular to a traction pin material distribution mechanism. Background Technology

[0002] In the existing technology, multiple traction pins need to be divided into materials according to the required arrangement direction. Due to the long length of the traction pins, the existing material distribution mechanism cannot meet the material distribution requirements of the traction pins, nor can it meet the propulsion requirements of the traction pins. Utility Model Content

[0003] The technical problem to be solved by this utility model is to provide a traction pin distribution mechanism, which not only realizes the distribution of traction pins, but also improves the distribution efficiency of traction pins.

[0004] The technical solution adopted by this utility model to solve its technical problem is: a traction pin material distribution mechanism, including a support frame, on which are provided a feeding component for placing traction pins, a lifting component for lifting traction pins, a feeding component for releasing traction pins, and a pushing component for pushing traction pins on the feeding component. A gap is provided between the feeding component and the feeding component for the lifting component to move, and the pushing component is located on one side of the feeding component.

[0005] The top material assembly includes a top material plate and a lifting cylinder. The driving end of the lifting cylinder is connected to the bottom of the top material plate. The top of the top material plate is configured as a first inclined end for unloading the traction pin. The top material plate is slidably engaged with the loading assembly and the unloading assembly. When the lifting cylinder drives the top material plate to move down to the unloading position, the higher end of the first inclined end of the top material plate abuts against the loading assembly. When the lifting cylinder drives the top material plate to move up to the loading position, the lower end of the first inclined end of the top material plate abuts against the unloading assembly.

[0006] In one embodiment, the feeding assembly of the traction pin feeding mechanism includes a horizontally arranged feeding plate, an inclinedly arranged rolling plate, and two symmetrically arranged baffles. The higher end of the rolling plate is connected to the feeding plate, and the lower end of the rolling plate abuts against the top plate. The two baffles are respectively installed on the two sides of the feeding plate and the rolling plate, and the two baffles are respectively connected to the feeding assembly.

[0007] In one embodiment, the feeding assembly of the traction pin feeding mechanism includes a support plate and an L-shaped feeding plate. The L-shaped feeding plate is connected to the end of the support plate away from the feeding assembly. A feeding groove for placing the traction pin is formed between the L-shaped feeding plate and the support plate. The top of the section of the support plate near the top plate is set as a second inclined end. The higher end of the second inclined end abuts against the lower end of the first inclined end of the top plate.

[0008] In one embodiment, the L-shaped feeding plate of the traction pin feeding mechanism is provided with a proximity sensor for detecting whether the traction pin is feeding material.

[0009] In one embodiment, the support plate of the traction pin material distribution mechanism is an aluminum plate, and several wear-resistant plates are spaced apart on the part of the support plate near the top material plate.

[0010] In one embodiment, the pushing assembly of the traction pin dispensing mechanism includes a mounting plate, a smooth rod cylinder, and an L-shaped push plate. The mounting plate is mounted on the top of the support frame, the smooth rod cylinder is mounted on the mounting plate, the driving end of the smooth rod cylinder is connected to one end of the L-shaped push plate, and the L-shaped push plate and the mounting plate are slidably engaged through a sliding assembly. The smooth rod cylinder is used to drive the L-shaped push plate to push the traction pin on the dispensing assembly.

[0011] In one embodiment, the support frame of the traction pin material distribution mechanism is made of aluminum alloy.

[0012] The beneficial effects of this application are as follows:

[0013] This application provides a traction pin distribution mechanism. By setting up a feeding component, a top component, a discharge component, and a pusher component to cooperate with each other, the traction pin can not only be placed in the required direction, but also realize the distribution and propulsion requirements of the traction pin, thereby improving the distribution efficiency of the traction pin.

[0014] This traction pin distribution mechanism uses a top plate to push the traction pins, thus realizing the distribution operation of individual traction pins.

[0015] The support frame of the traction pin material distribution mechanism is made of aluminum alloy, which reduces the overall weight of the equipment.

[0016] The support plate of the traction pin material distribution mechanism is equipped with multiple wear-resistant plates, which effectively improves the service life of the equipment. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the traction pin feeding mechanism according to an embodiment of this application;

[0018] Figure 2 This is a schematic diagram of the top material assembly, the unloading assembly, and the pushing assembly of the traction pin material distribution mechanism according to an embodiment of this application;

[0019] in:

[0020] 1. Support frame; 2. Feeding assembly; 3. Top assembly; 4. Discharge assembly; 5. Push assembly; 21. Feeding plate; 22. Rolling plate; 23. Baffle; 31. Top plate; 32. Lifting cylinder; 33. First inclined end; 41. Support plate; 42. L-shaped discharge plate; 43. Discharge chute; 44. Second inclined end; 45. Proximity sensor; 46. Wear-resistant plate; 51. Mounting plate; 52. Smooth rod cylinder; 53. L-shaped push plate. Detailed Implementation

[0021] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0022] like Figure 1 As shown, an embodiment of this application provides a traction pin feeding mechanism, including a support frame 1. The support frame 1 is provided with a feeding component 2 for placing traction pins, a lifting component 3 for lifting traction pins, a feeding component 4 for feeding traction pins, and a pushing component 5 for pushing traction pins on the feeding component 4. A gap is provided between the feeding component 2 and the feeding component 4 for the lifting component 3 to move, and the pushing component 5 is located on one side of the feeding component 4.

[0023] like Figure 2 As shown, the top material assembly 3 includes a top material plate 31 and a lifting cylinder 32. The driving end of the lifting cylinder 32 is connected to the bottom of the top material plate 31. The top of the top material plate 31 is configured as a first inclined end 33 for unloading the traction pin. The top material plate 31 is slidably engaged with the loading assembly 2 and the unloading assembly 4 respectively. When the lifting cylinder 32 drives the top material plate 31 to move down to the unloading position, the higher end of the first inclined end 33 of the top material plate 31 abuts against the loading assembly 2. When the lifting cylinder 32 drives the top material plate 31 to move up to the loading position, the lower end of the first inclined end 33 of the top material plate 31 abuts against the unloading assembly 4.

[0024] Specifically, multiple traction pins roll down the hopper onto the feeding plate 21 and roller plate 22 of the feeding assembly 2. The traction pins then roll down the roller plate 22 onto the first inclined end 33 of the top plate 31 of the top feeding assembly 3. The lifting cylinder 32 drives the top plate 31 to move a single traction pin along the side of the support plate 41 of the discharging assembly 4 to the top of the support plate 41. The traction pin then rolls down the first inclined end 33 across the support plate 41 onto the L-shaped discharging plate 42 of the discharging assembly 4. If there are stacked traction pins on the top plate 31, when the lifting cylinder 32 drives the top plate 31 upwards, the stacked traction pins fall onto the roller plate 22 of the feeding assembly 2 due to the structure of the first inclined end 33. The diameter of the traction pin is 7mm, the thickness of the first inclined end 33 is 8mm, and the top plate 31 performs a single-pin discharging operation on a single traction pin at a time.

[0025] In the above structure, the feeding component 2, the top-feeding component 3, the unloading component 4, and the pushing component 5 work together to achieve the feeding, distributing, and pushing operations of the traction pins. Furthermore, the top-feeding plate 31 pushes the traction pins according to their arrangement direction, thus achieving the distribution of the traction pins. This distribution mechanism not only achieves the distribution and advancement of the traction pins but also improves the distribution efficiency.

[0026] like Figure 1 As shown, in one embodiment, the feeding assembly 2 of the traction pin distribution mechanism includes a horizontally arranged feeding plate 21, an inclined rolling plate 22, and two symmetrically arranged baffles 23. The higher end of the rolling plate 22 is connected to the feeding plate 21, and the lower end of the rolling plate 22 abuts against the top plate 31. The two baffles are respectively installed on the two sides of the feeding plate 21 and the rolling plate 22, and are respectively connected to the discharging assembly 4. Multiple traction pins are placed on the feeding plate 21, and the traction pins roll down along the rolling plate 22 onto the first inclined end 33 of the top plate 31 and abut against the support plate 41 of the discharging assembly 4. The two baffles 23 prevent the traction pins from slipping off the rolling plate 22. This arrangement facilitates the feeding of traction pins and also facilitates the discharging operation of the traction pins by the top plate 31.

[0027] like Figure 2 As shown, in one embodiment, the feeding assembly 4 of the traction pin feeding mechanism includes a support plate 41 and an L-shaped feeding plate 42. The L-shaped feeding plate 42 is connected to the end of the support plate 41 away from the feeding assembly 2. A feeding groove 43 for placing the traction pin is formed between the L-shaped feeding plate 42 and the support plate 41. The top of the section of the support plate 41 near the top plate 31 is configured as a second inclined end 44, with the higher end of the second inclined end 44 abutting against the lower end of the first inclined end 33 of the top plate 31. When the lifting cylinder 32 drives the top plate 31 to move the traction pin to the top of the support plate 41, the traction pin rolls down along the first inclined end 33 of the top plate 31 and then rolls up along the second inclined end 44 of the support plate 41 onto the L-shaped feeding plate 42, so that the traction pin is located in the feeding groove 43. This arrangement not only realizes the feeding of the traction pin according to the arrangement direction but also increases the rolling speed of the traction pin, thereby improving the feeding efficiency.

[0028] like Figure 2 As shown, in one embodiment, the L-shaped feeding plate 42 of the traction pin feeding mechanism is equipped with a proximity sensor 45 for detecting whether the traction pin is feeding. The lifting cylinder 32 drives the top plate 31 to move upwards to feed the traction pins. If no traction pin rolls onto the L-shaped feeding plate 42 from the top plate 31, the proximity sensor 45 detects the absence of a traction pin on the L-shaped feeding plate 42 and issues an alarm signal. This design facilitates timely reminders to personnel for handling.

[0029] like Figure 2 As shown, in one embodiment, the support plate 41 of the traction pin material distribution mechanism is an aluminum plate, and several wear-resistant plates 46 are spaced apart on the support plate 41 near the top plate 31. The use of aluminum alloy for the support plate 41 significantly reduces the overall weight of the equipment. The presence of three wear-resistant plates 46 on the support plate 41 improves the wear resistance of both the support plate 41 and the top plate 31, thereby extending the service life of the equipment.

[0030] like Figure 2 As shown, in one embodiment, the pushing assembly 5 of the traction pin feeding mechanism includes a mounting plate 51, a smooth rod cylinder 52, and an L-shaped push plate 53. The mounting plate 51 is mounted on the top of the support frame 1, and the smooth rod cylinder 52 is mounted on the mounting plate 51. The driving end of the smooth rod cylinder 52 is connected to one end of the L-shaped push plate 53. The L-shaped push plate 53 and the mounting plate 51 are slidably engaged through a sliding assembly. The smooth rod cylinder 52 is used to drive the L-shaped push plate 53 to push the traction pin on the feeding assembly 4. When the traction pin is located in the feeding groove 43, the smooth rod cylinder 52 drives the L-shaped push plate 53 to extend into the feeding groove 43, pushing the traction pin in the feeding groove 43 to the next operating position. This arrangement facilitates the pushing of the traction pin and improves the pushing efficiency of the traction pin.

[0031] like Figure 1 As shown, in one embodiment, the support frame 1 of the traction pin dispensing mechanism is made of aluminum alloy. This aluminum alloy material reduces the overall weight of the equipment.

[0032] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.

Claims

1. A traction pin material distribution mechanism, characterized in that, The support frame (1) includes a feeding assembly (2) for placing the traction pin, a lifting assembly (3) for lifting the traction pin, a feeding assembly (4) for feeding the traction pin, and a pushing assembly (5) for pushing the traction pin on the feeding assembly (4). A gap is provided between the feeding assembly (2) and the feeding assembly (4) for the lifting assembly (3) to move. The pushing assembly (5) is located on one side of the feeding assembly (4). The top material assembly (3) includes a top material plate (31) and a lifting cylinder (32). The driving end of the lifting cylinder (32) is connected to the bottom of the top material plate (31). The top of the top material plate (31) is set as a first inclined end (33) for unloading the traction pin. The top material plate (31) is slidably engaged with the loading assembly (2) and the unloading assembly (4). When the lifting cylinder (32) drives the top material plate (31) to move down to the unloading position, the higher end of the first inclined end (33) of the top material plate (31) abuts against the loading assembly (2). When the lifting cylinder (32) drives the top material plate (31) to move up to the loading position, the lower end of the first inclined end (33) of the top material plate (31) abuts against the unloading assembly (4).

2. The traction pin material distribution mechanism according to claim 1, characterized in that, The feeding assembly (2) includes a horizontally arranged feeding plate (21), an inclinedly arranged rolling plate (22), and two symmetrically arranged baffles (23). The higher end of the rolling plate (22) is connected to the feeding plate (21), and the lower end of the rolling plate (22) abuts against the top plate (31). The two baffles are respectively installed on the two sides of the feeding plate (21) and the rolling plate (22), and the two baffles are respectively connected to the feeding assembly (4).

3. The traction pin material distribution mechanism according to claim 1, characterized in that, The feeding assembly (4) includes a support plate (41) and an L-shaped feeding plate (42). The L-shaped feeding plate (42) is connected to the end of the support plate (41) away from the feeding assembly (2). A feeding groove (43) for placing the traction pin is formed between the L-shaped feeding plate (42) and the support plate (41). The top of the section of the support plate (41) near the top plate (31) is set as a second inclined end (44). The higher end of the second inclined end (44) abuts against the lower end of the first inclined end (33) of the top plate (31).

4. The traction pin material distribution mechanism according to claim 3, characterized in that, The L-shaped feeding plate (42) is equipped with a proximity sensor (45) for detecting whether the traction pin is feeding material.

5. The traction pin material distribution mechanism according to claim 3, characterized in that, The support plate (41) is an aluminum plate, and several wear-resistant plates (46) are spaced apart on the part of the support plate (41) near the top plate (31).

6. The traction pin material distribution mechanism according to claim 1, characterized in that, The feeding assembly (5) includes a mounting plate (51), a smooth rod cylinder (52), and an L-shaped push plate (53). The mounting plate (51) is mounted on the top of the support frame (1), and the smooth rod cylinder (52) is mounted on the mounting plate (51). The driving end of the smooth rod cylinder (52) is connected to one end of the L-shaped push plate (53). The L-shaped push plate (53) and the mounting plate (51) are slidably engaged through a sliding assembly. The smooth rod cylinder (52) is used to drive the L-shaped push plate (53) to push the material onto the traction pin on the feeding assembly (4).

7. The traction pin material distribution mechanism according to claim 1, characterized in that, The support frame (1) is made of aluminum alloy.