A garment processing hanging assembly line's entry device

CN224645884UActive Publication Date: 2026-08-18SHENZHEN SONGBO INTELLIGENT TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202521862744.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-31
Publication Date
2026-08-18
Estimated Expiration
2035-08-31

AI Technical Summary

Technical Problem

[0003]现有吊挂流水线中的进站装置一般是利用动力源驱动摆头伸出并搭在轨道上实现对接的,而通过上述方式实现主轨与进站轨道两者的对接,其对接位置处容易出现不平滑的情况,吊挂装置容易出现卡死或因颠簸而脱轨的现象,而通过摆头旋转摆入到摆头实现对接的进站装置,虽然能够在对接位置形成一个平滑的过渡面,降低了吊挂装置出现卡死或因颠簸而脱轨的现象,但是由于两者在接触属于硬性挤压,会一定存在的磨损,在使用一段时间后,摆头或主轨上磨损位置会影响吊挂装置的正常移动,不能达到平稳进站的效果

Benefits of technology

[0009]本实用新型的有益效果为:该进站装置利用动力源向传动结构传输动力,以驱动转接导轨旋转实现服装加工吊挂流水线的主轨与进站导轨的自动对接,而且通过缓冲结构调整转接导轨的端部位置,避免转接导轨在与主轨对接时发生硬性挤压,令转接导轨的端部能够平顺地旋入至主轨上,保证转接导轨与主轨对接效果的稳定,从而实现吊挂装置的平稳进站。

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224645884U_ABST
    Figure CN224645884U_ABST
Patent Text Reader

Abstract

The utility model discloses a kind of clothing processing hanging assembly line's entry device, it is related to production assembly line equipment field, the entry device includes entry guide rail and support, entry guide rail is fixedly connected to one side of support, the bottom end of support is fixedly connected with power source, the bottom surface of support close to power source side is fixedly connected with fixed seat, fixed seat is equipped with the transmission structure connected with the power output end of power source, transmission structure penetrates the bottom surface of support and is connected with switching guide rail, the connecting position of switching guide rail and transmission structure is equipped with buffer structure, switching guide rail is rotated by transmission structure drive, and when its end portion and the main rail of hanging assembly line contact, the movement of switching guide rail in height direction is realized by buffer structure, so that the end portion of switching guide rail is rotated into main rail, to realize the butt joint of main rail and entry guide rail, the entry device realizes the automatic butt joint of the main rail of clothing processing hanging assembly line and entry guide rail, and butt joint effect is stable, can realize that hanging device is smoothly in station.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of production line equipment, specifically an inlet device for a garment processing hanging production line. Background Technology

[0002] Hanging assembly lines are devices used by garment manufacturers to meet the needs of large-scale garment processing. They use automatically running tracks to transport hanging devices with garment materials to each workstation on the assembly line. The operation of transferring the hanging devices from the hanging assembly line to the workstation is achieved through the inlet device.

[0003] In existing suspended conveyor lines, the entry device typically uses a power source to drive a swing head to extend and rest on the track for docking. However, this method of docking the main rail and the entry rail is prone to unevenness at the docking point, which can cause the suspension device to jam or derail due to bumps. While the entry device that uses a swing head to rotate and dock can create a smooth transition surface at the docking point, reducing the risk of jamming or derailment, the contact between the two is a hard compression, which inevitably causes wear. After a period of use, the wear on the swing head or main rail can affect the normal movement of the suspension device, preventing it from achieving a smooth entry. Utility Model Content

[0004] To address the technical deficiencies in the background technology, this utility model proposes an inlet device for a garment processing hanging assembly line, which solves the aforementioned technical problems and meets practical needs. The specific technical solution is as follows: An inbound device for a garment processing hanging assembly line includes an inbound guide rail and a support. The inbound guide rail is fixedly connected to one side of the support. A power source is fixedly connected to the bottom end of the support. A fixed seat is fixedly connected to the bottom surface of the support near the power source. The fixed seat has a transmission structure connected to the power output end of the power source. The transmission structure passes through the bottom surface of the support and is connected to a transfer guide rail. A buffer structure is provided at the connection position between the transfer guide rail and the transmission structure. The transfer guide rail is driven to rotate by the transmission structure. When its end contacts the main rail of the hanging assembly line, the buffer structure enables the transfer guide rail to move in the height direction, so that the end of the transfer guide rail is screwed into the main rail, thereby realizing the docking of the main rail and the inbound guide rail.

[0005] As a further embodiment of this utility model, the transmission structure includes a connecting end, a connecting shaft, and a transmission shaft. One end of the connecting end is fixedly connected to the power output end of the power source. The other end of the connecting end is provided with a first connecting member connected via a rotating shaft. The end of the first connecting member away from the rotating shaft is provided with a first groove in the shape of a strip. The connecting shaft is fitted through the bottom end of the bracket. The bottom end of the fixed seat is provided with a through hole. The connecting shaft extends into the through hole. The portion of the through hole located outside the bottom end of the connecting shaft forms a second groove in the shape of an annular shape. The portion of the connecting shaft located above the through hole is provided with a limiting block with a diameter larger than the diameter of the through hole. The transmission shaft is fixedly connected to the bottom end of the limiting block and passes through the second groove and the first groove sequentially from top to bottom. The top end of the connecting shaft is connected to the adapter rail via a buffer structure.

[0006] As a further embodiment of this utility model, the buffer structure is a compression spring. The bottom end of the compression spring is fixedly connected to the wall outside the connecting shaft through position of the bracket. The compression spring extends along the axial direction of the connecting shaft. The top end of the connecting shaft is T-shaped and fixedly connected to the adapter rail. The end of the compression spring is wrapped around the top end of the connecting shaft. The bottom end of the adapter rail located outside the compression spring is provided with a first notch.

[0007] As a further embodiment of this utility model, the projection of the end face of the transition guide rail near the entry guide rail on a plane parallel to the axis of the connecting shaft is an arc. The end of the entry guide rail near the transition guide rail is provided with a second notch. The projection of the end face of the second notch on a plane parallel to the axis of the connecting shaft is an arc. After the transition guide rail and the entry guide rail are connected, the projections of the two on a plane parallel to the axis of the connecting shaft coincide.

[0008] As a further embodiment of this utility model, the power source is a cylinder or a telescopic motor. The end of the power source away from its output end is provided with a mating hole. The mating hole is fitted with a second connecting piece. The power source is fixedly connected to the bottom surface of the bracket through the second connecting piece and is located below the bracket.

[0009] The beneficial effects of this utility model are as follows: The entry device uses a power source to transmit power to the transmission structure to drive the rotation of the transfer guide rail to realize the automatic docking of the main rail and the entry guide rail of the garment processing hanging assembly line. Moreover, by adjusting the end position of the transfer guide rail through the buffer structure, the transfer guide rail is prevented from being rigidly squeezed when docking with the main rail, so that the end of the transfer guide rail can be smoothly screwed into the main rail, ensuring the stability of the docking effect between the transfer guide rail and the main rail, thereby realizing the smooth entry of the hanging device. Attached Figure Description

[0010] Figure 1 This is a schematic diagram of the structure of the station entry device when it is docked with the main rail.

[0011] Figure 2 This is a schematic diagram of the structure of the station entry device.

[0012] Figure 3 Schematic diagram of the transmission structure Figure 1 .

[0013] Figure 4 Schematic diagram of the transmission structure Figure 2 .

[0014] Figure 5 This is a schematic diagram of the buffer structure.

[0015] Figure 6 This is a schematic diagram of the structure when the transition rail and the entry rail are connected.

[0016] Figure 7 This is a schematic diagram of the power source.

[0017] In the diagram, 1. Station guide rail; 11. Second notch; 2. Bracket; 3. Power source; 31. Mating hole; 32. Second connector; 4. Fixed seat; 41. Through hole; 5. Transmission structure; 51. Connecting end; 52. Connecting shaft; 521. Limiting block; 53. Transmission shaft; 54. Rotating shaft; 55. First connector; 56. First slide groove; 57. Second slide groove; 6. Transfer guide rail; 61. First notch; 7. Buffer structure; 71. Compression spring; 8. Main rail. Detailed Implementation

[0018] The embodiments of this utility model will be described below with reference to the accompanying drawings and related examples: This utility model discloses an inlet device for a garment processing hanging assembly line, such as... Figure 1 and Figure 2 As shown, the station entry device includes an entry guide rail 1 and a support 2. The entry guide rail 1 is fixedly connected to one side of the support 2. A power source 3 is fixedly connected to the bottom end of the support 2. A fixed seat 4 is fixedly connected to the bottom surface of the support 2 near the power source 3. The fixed seat 4 is provided with a transmission structure 5 connected to the power output end of the power source 3. The transmission structure 5 passes through the bottom surface of the support 2 and is connected to a transfer guide rail 6. A buffer structure 7 is provided at the connection position between the transfer guide rail 6 and the transmission structure 5. The transfer guide rail 6 is driven to rotate by the transmission structure 5. When its end contacts the main rail 8 of the suspended conveyor line, the buffer structure 7 realizes the movement of the transfer guide rail 6 in the height direction, so that the end of the transfer guide rail 6 is screwed into the main rail 8, thereby realizing the docking of the main rail 8 and the entry guide rail 1.

[0019] It should be noted that when the hanging device (not shown in the figure) used for hanging garment materials on the main rail 8 of the garment processing hanging production line needs to be transferred to the workstation, power is transmitted from the power source 3 to the transmission structure 5. The transmission structure 5 drives the transfer guide rail 6 to rotate, and the rotating transfer guide rail 6 abuts against the surface of the main rail 8, thereby realizing the automatic docking of the main rail 8 of the garment processing hanging production line with the inbound guide rail 1. Moreover, when the end of the transfer guide rail 6 moves onto the main rail 8, the buffer structure 7 can make the end of the transfer guide rail 6 movable, thereby adjusting the position of the end of the transfer guide rail 6 and avoiding hard compression when the transfer guide rail 6 docks with the main rail 8. This allows the end of the transfer guide rail 6 to smoothly screw into the main rail 8, ensuring the stability of the docking effect between the transfer guide rail 6 and the main rail 8, thereby realizing the smooth entry of the hanging device into the workstation.

[0020] It needs to be further explained that, such as Figures 3-5 As shown, the transmission structure 5 includes a connecting end 51, a connecting shaft 52, and a transmission shaft 53. One end of the connecting end 51 is fixedly connected to the power output end of the power source 3. The other end of the connecting end 51 is provided with a first connecting member 55 connected to it via a rotating shaft 54. The end of the first connecting member 55 away from the rotating shaft 54 ​​is provided with a first groove 56 in the shape of a strip. The connecting shaft 52 is fitted through the bottom end of the bracket 2. The bottom end of the fixed seat 4 is provided with a through hole 41. The connecting shaft 52 extends into the through hole 41. The portion of the through hole 41 located outside the bottom end of the connecting shaft 52 forms a second groove 57 in the shape of an annular shape. The portion of the connecting shaft 52 located above the through hole 41 is provided with a limiting block 521 with a diameter larger than that of the through hole 41. The transmission shaft 53 is fixedly connected to the bottom end of the limiting block 521 and passes through the second groove 57 and the first groove 56 sequentially from top to bottom. The top end of the connecting shaft 52 is connected to the adapter rail 6 via a buffer structure 7.

[0021] In this system, the power source 3 extends and retracts through its output end and transmits power to the drive shaft 53 via both the connecting end 51 and the first connecting member 55. Then, the connection between the drive shaft 53 and the limiting block 521 causes the limiting block 521 to rotate, thereby achieving the rotation of the connecting shaft 52. Consequently, the adapter rail 6 connected to the top of the connecting shaft 52 rotates around the connecting shaft 52 as the rotation center, allowing the end of the adapter rail 6 to move out of or into the main rail 8. The connecting end 51 is connected to the first connecting member 55 via the first connecting member 55 of the rotating shaft 54 ​​and the drive shaft 53 through the first sliding groove 56. This allows the output end of the power source 3 to transmit power to the drive shaft 53 during its extension and retraction, thereby causing the drive shaft 53 to move along the trajectory of the second sliding groove 57 to achieve the purpose of rotating the connecting shaft 52.

[0022] Specifically, such as Figure 5 and Figure 6 As shown, the buffer structure 7 is a compression spring 71. The bottom end of the compression spring 71 is fixedly connected to the wall of the bracket 2 outside the position through which the connecting shaft 52 passes. The compression spring 71 extends along the axial direction of the connecting shaft 52. The top end of the connecting shaft 52 is T-shaped and fixedly connected to the adapter rail 6. The end of the compression spring 71 is wrapped around the top end of the connecting shaft 52. The bottom end of the adapter rail 6 located outside the compression spring 71 is provided with a first notch 61.

[0023] When the end of the adapter rail 6 moves onto the main rail 8, the connecting shaft 52, which is designed to fit through the bracket 2, can move up and down. Combined with the compression spring 71, this allows the end of the adapter rail 6 to move upwards a certain distance when it contacts the surface of the main rail 8, thus adjusting the position of the end of the adapter rail 6. As the end of the adapter rail 6 moves, its height also increases, preventing hard compression when the adapter rail 6 is docked with the main rail 8. This ensures that the end of the adapter rail 6 can smoothly screw into the main rail 8, guaranteeing a stable docking effect between the adapter rail 6 and the main rail 8. The first notch 61 simplifies the operation within the adapter rail 6 when the compression spring 71 is connected to the connecting shaft 52.

[0024] More specifically, such as Figure 7 As shown, the projection of the end face of the transition rail 6 near the entry rail 1 on the plane parallel to the axis of the connecting shaft 52 is an arc. The end of the entry rail 1 near the transition rail 6 is provided with a second notch 11. The projection of the end face of the second notch 11 on the plane parallel to the axis of the connecting shaft 52 is an arc. After the transition rail 6 and the entry rail 1 are connected, their projections on the plane parallel to the axis of the connecting shaft 52 coincide.

[0025] In this process, after the end of the transfer guide rail 6 moves to the main rail 8 to form a docking, the end of the transfer guide rail 6 away from the main rail 8 will be screwed into the second notch 11 of the entry guide rail 1 and the two will be tangent, so that the docking position of the transfer guide rail 6 and the entry guide rail 1 becomes smooth. The hanging device will not experience any bumps or jamming when passing through the docking position, thus smoothly reaching the work station along the entry guide rail 1.

[0026] It needs to be further explained that, such as Figure 7 As shown, the power source 3 is a cylinder or a telescopic motor. The end of the power source 3 away from its output end is provided with a mating hole 31. The mating hole 31 is fitted with a second connecting piece 32. The power source 3 is fixedly connected to the bottom surface of the bracket 2 through the second connecting piece 32 and is located below the bracket 2.

[0027] The second connector 32 is fitted into the mating hole 31 and then inserted into the bottom surface of the bracket 2, thereby connecting the power source 3 and the bracket 2. Since the power source 3 uses a cylinder or telescopic motor, its output end is mostly linear movement. Therefore, the power source 3 rotates around the central axis of the second connector 32 to adjust the position of its output end, making it more convenient to connect the power source 3 and the transmission structure 5.

[0028] 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. An inbound device for a garment processing hanging assembly line, the inbound device comprising an inbound guide rail and a support, wherein the inbound guide rail is fixedly connected to one side of the support, characterized in that, A power source is fixedly connected to the bottom end of the bracket, and a fixed seat is fixedly connected to the bottom surface of the bracket near the power source. The fixed seat is provided with a transmission structure connected to the power output end of the power source. The transmission structure passes through the bottom surface of the bracket and is connected to a transfer guide rail. A buffer structure is provided at the connection position between the transfer guide rail and the transmission structure. The transfer guide rail is driven to rotate by the transmission structure, and when its end contacts the main rail of the suspended conveyor line, the buffer structure realizes the movement of the transfer guide rail in the height direction, so that the end of the transfer guide rail is screwed into the main rail, thereby realizing the docking of the main rail and the entry guide rail.

2. The station entry device according to claim 1, characterized in that, The transmission structure includes a connecting end, a connecting shaft, and a transmission shaft. One end of the connecting end is fixedly connected to the power output end of the power source. The other end of the connecting end is provided with a first connecting member connected via a rotating shaft. The end of the first connecting member away from the rotating shaft is provided with a first groove in the shape of a strip. The connecting shaft is fitted through the bottom end of the bracket. The bottom end of the fixed seat is provided with a through hole. The connecting shaft extends into the through hole. The portion of the through hole located outside the bottom end of the connecting shaft forms a second groove in the shape of an annular shape. The portion of the connecting shaft above the through hole is provided with a limiting block with a diameter larger than the diameter of the through hole. The transmission shaft is fixedly connected to the bottom end of the limiting block and passes through the second groove and the first groove sequentially from top to bottom. The top end of the connecting shaft is connected to the adapter rail via a buffer structure.

3. The station entry device according to claim 2, characterized in that, The buffer structure is a compression spring. The bottom end of the compression spring is fixedly connected to the wall outside the connecting shaft through position of the bracket. The compression spring extends along the axial direction of the connecting shaft. The top end of the connecting shaft is T-shaped and fixedly connected to the adapter rail. The end of the compression spring is wrapped around the top end of the connecting shaft. The bottom end of the adapter rail located outside the compression spring has a first notch.

4. The station entry device according to claim 3, characterized in that, The projection of the end face of the transition guide rail near the entry guide rail on a plane parallel to the axis of the connecting shaft is an arc. The end of the entry guide rail near the transition guide rail is provided with a second notch. The projection of the end face of the second notch on a plane parallel to the axis of the connecting shaft is an arc. After the transition guide rail and the entry guide rail are connected, their projections on a plane parallel to the axis of the connecting shaft coincide.

5. The station entry device according to claim 1, characterized in that, The power source is a cylinder or a telescopic motor. The end of the power source away from its output end is provided with a mating hole. The mating hole is fitted with a second connecting piece. The power source is fixedly connected to the bottom surface of the bracket through the second connecting piece and is located below the bracket.