A shoe and clothes buttoning device feeding mechanism
Patent Information
- Application Number
- CN202522321563.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-03
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2035-11-03
AI Technical Summary
[0005]因此,本实用新型目的是提供一种鞋服打扣装置送料机构,能够解决现有的斜幅打扣送料装置,部分采用齿轮、链条传动或无专用运动转化组件,易出现传动间隙或卡顿,导致传输部件运动精度不足,进而引发扣子输送偏移,影响与打扣机头的对接准确性,缺乏针对单枚扣子输送的定位结构,扣容纳槽与扣子尺寸适配性差,易出现多枚扣子堆叠进入输送通道的情况,造成通道堵塞,需停机清理以恢复生产的问题
[0012] In summary, this utility model has at least one of the following beneficial effects: 1. By setting a transmission rod in the clearance groove directly above the pneumatic piston push rod, the transmission rod and the pneumatic piston push rod are connected by a fastened transmission block, and an inclined groove is set on the transmission rod and an integrated inclined block is formed below the transmission block, a linkage and motion conversion structure between the piston push rod, the transmission rod and the transmission block is constructed, so as to convert the linear motion of the pneumatic piston push rod back and forth into the horizontal motion of the transmission block along the movable groove, so as to achieve the movement of the transmission block without deviation or jamming, avoid the misalignment of the buckle due to the movement deviation, and ensure the stability of the buckle transfer path.
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Figure CN224767844U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of garment processing equipment technology, and in particular to a feeding mechanism for a shoe and garment buttoning device. Background Technology
[0002] In the field of angled snap fastening, the feeding process is a key step to ensure the efficiency and accuracy of snap fastening. Currently, the feeding mechanism of mainstream angled snap fastening equipment in the industry mostly uses mechanical transmission combined with pneumatic components to assist in the action. By setting up transmission carriers, guide channels and other structures, the snap fasteners are received, transferred and transported from the storage module to the snap fastening head to cooperate with the snap fastening head to complete continuous processing.
[0003] Existing inclined button-attaching feeding devices often employ gear or chain drives or lack dedicated motion conversion components, making them prone to transmission gaps or jamming. This results in insufficient motion accuracy of the transmission components, leading to button conveying misalignment and affecting the accuracy of docking with the button-attaching head. Furthermore, they lack positioning structures for individual button conveying, and the button receiving slots have poor compatibility with button sizes, easily causing multiple buttons to stack in the conveying channel, resulting in blockages and requiring shutdown for cleaning to resume production. Therefore, we propose a new feeding mechanism for footwear and apparel button-attaching devices to address these problems. Utility Model Content
[0004] The purpose of this section is to outline some aspects of embodiments of the present invention and to briefly describe some preferred embodiments. Simplifications or omissions may be made in this section, as well as in the abstract and title of the present invention, to avoid obscuring the purpose of these documents, and such simplifications or omissions should not be construed as limiting the scope of the present invention.
[0005] Therefore, the purpose of this utility model is to provide a feeding mechanism for a shoe and clothing buttoning device, which can solve the problems of existing inclined buttoning feeding devices, which partially use gear and chain drives or lack dedicated motion conversion components, are prone to transmission gaps or jamming, resulting in insufficient motion accuracy of the transmission components, which in turn causes button conveying deviation, affecting the accuracy of docking with the buttoning head, lack of positioning structure for conveying single buttons, poor fit between the button receiving groove and button size, and easy for multiple buttons to stack into the conveying channel, causing channel blockage and requiring machine shutdown for cleaning to resume production.
[0006] To solve the above-mentioned technical problems, this utility model provides a feeding mechanism for a shoe and clothing button fastening device, which adopts the following technical solution: it includes a main base, a pneumatic conveying plate is fastened to the lower part of the main base, a button-releasing module for automatic feeding is arranged on the upper part of the main base, a pneumatic piston push rod is arranged on the lower part of the main base and directly below the pneumatic conveying plate, a movable groove is opened on the main base corresponding to the position of the pneumatic piston push rod, a transmission block is slidably assembled in the movable groove, and the pneumatic piston push rod can drive the transmission block to reciprocate along the movable groove to transmit the buttons output by the button-releasing module to the pneumatic conveying plate, and then the pneumatic conveying plate conveys them to the machine head.
[0007] Optionally, a clearance groove is provided directly above the pneumatic piston push rod, and a transmission rod is arranged in the clearance groove along the front-to-back direction. The transmission rod and the pneumatic piston push rod are connected by a transmission block that is fastened together to realize the force transmission between the two. The transmission rod is movably assembled in the clearance groove, and an inclined groove is provided with an inclined arrangement directly behind the transmission rod.
[0008] Optionally, an inclined block adapted to the inclined groove is integrally formed directly below the transmission block. The inclined block moves synchronously with the transmission block. When the pneumatic piston push rod drives the transmission rod to move in the front-back direction, the transmission rod converts the front-back movement into the horizontal reciprocating motion of the transmission block along the movable groove through the adaptation and cooperation between the inclined groove and the inclined block.
[0009] Optionally, the main body base has a buckle transmission groove that runs through its body. The buckle transmission groove is connected to the buckle release module to receive the buckles output by the buckle release module. The pneumatic conveying plate has a pneumatic buckle transmission channel adapted to the size of the buckles. The conveying block has a buckle receiving groove adapted to the size of the buckles. When the conveying block is located at the rightmost end of the movable groove, the buckles output by the buckle release module fall into the buckle receiving groove of the conveying block through the buckle transmission groove. When the pneumatic piston push rod pushes the conveying block to the leftmost end of the movable groove, the buckle receiving groove on the conveying block is aligned with the pneumatic buckle transmission channel on the pneumatic conveying plate.
[0010] Optionally, the main body base has an air transmission hole on the right side, which is connected to an air transmission channel inside the main body base. The air transmission channel includes a first air transmission channel and a second air transmission channel. The first air transmission channel is connected to the rear of the transmission block. When the transmission block is located at the leftmost end of the movable slot and its buckle receiving slot is matched with the pneumatic buckle channel, the first air transmission channel can supply air into the buckle receiving slot. The second air transmission channel is inclined forward and is connected to the top of the pneumatic buckle channel.
[0011] Optionally, a fixed block isolated from the outside is fastened to the rear of the main base. A main shaft mounting hole is opened on the left side of the main base. A pneumatic push rod is set on the rear of the main base and above the fixed block. The pneumatic push rod can extend and retract in the vertical direction to drive the entire feeding mechanism to move axially around the main shaft mounting hole, thereby restoring the front of the pneumatic conveying plate to a horizontal position. A first inclined surface is opened directly below the fixed block. A second inclined surface adapted to the first inclined surface is opened at the tail of the transmission rod. When the aforementioned pneumatic piston push rod pushes the transmission rod forward, the second inclined surface fits into the first inclined surface, converting the forward movement of the transmission rod into the rotation of all other components of the feeding mechanism around the main shaft mounting hole, causing the tail of the entire component to descend and the front to rise. When the aforementioned pneumatic piston push rod retracts, the pneumatic push rod extends and retracts upward synchronously, driving the entire feeding mechanism to return to a horizontal state.
[0012] In summary, this utility model has at least one of the following beneficial effects: 1. By setting a transmission rod in the clearance groove directly above the pneumatic piston push rod, the transmission rod and the pneumatic piston push rod are connected by a fastened transmission block, and an inclined groove is set on the transmission rod and an integrated inclined block is formed below the transmission block, a linkage and motion conversion structure between the piston push rod, the transmission rod and the transmission block is constructed, so as to convert the linear motion of the pneumatic piston push rod back and forth into the horizontal motion of the transmission block along the movable groove, so as to achieve the movement of the transmission block without deviation or jamming, avoid the misalignment of the buckle due to the movement deviation, and ensure the stability of the buckle transfer path.
[0013] 2. By opening a buckle receiving slot in the transmission block that matches the size of a single buckle, opening a buckle transmission slot in the main body base that connects to the buckle placement module, opening a pneumatic buckle transmission channel in the pneumatic conveying plate, and setting a first air transmission channel and a second air transmission channel in the main body base, a single-buckle positioning-directional docking-dual air channel boosting conveying system is formed. This achieves the purpose of controlling the number of buckles conveyed at one time and ensuring that the buckles enter the pneumatic buckle transmission channel efficiently, thereby avoiding the stacking and jamming of multiple buckles and reducing the retention of buckles in the channel. Attached Figure Description
[0014] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the overall half-section structure of this utility model; Figure 3 This is a schematic diagram of the overall exploded structure of this utility model; Figure 4 This is a partial structural schematic diagram of the present invention.
[0016] Explanation of reference numerals in the attached figures: 1. Main body base; 12. Movable groove; 13. Fastening transmission groove; 14. Air transmission hole; 15. Air transmission channel; 151. First air transmission channel; 152. Second air transmission channel; 16. Spindle mounting hole; 2. Pneumatic conveyor plate; 21. Pneumatic transmission channel; 3. Buckle release module; 4. Pneumatic piston push rod; 41. Clearance groove; 5. Transmission block; 51. Tilt block; 52. Clamping slot; 6. Transmission rod; 61. Transmission block; 62. Inclined groove; 63. Second inclined surface; 7. Fixed block; 71. First inclined surface; 8. Pneumatic push rod. Detailed Implementation
[0017] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments. It should be understood that the specific embodiments described herein are merely for explaining the present utility model and are not intended to limit the present utility model.
[0018] Furthermore, it should be understood in the description of this utility model that the terms "center," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "axial," "radial," and "circumferential" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0019] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral unit; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. However, specifying a direct connection indicates that the two main bodies at the connection point are not connected through a transitional structure, but are simply connected to form a whole through a connecting structure. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood according to the specific circumstances.
[0020] In this utility model, unless otherwise expressly specified and limited, the first feature "on" or "below" the second feature may be in direct contact with the first and second features, or indirect contact through an intermediate medium. In the description of this specification, references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this utility model. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0021] The following is in conjunction with the appendix Figure 1-4 The present invention will be described in further detail below.
[0022] Example 1, refer to Figure 1-4 In this embodiment, to address the shortcomings of existing inclined button-attaching feeding devices, which often employ gear or chain drives or lack dedicated motion conversion components, leading to transmission gaps or jamming, insufficient motion accuracy of the transmission components, and consequently, button conveying deviation, affecting the accuracy of docking with the button-attaching head, the lack of a positioning structure for single button conveying, poor fit between the button receiving slot and button size, and the tendency for multiple buttons to stack into the conveying channel, causing blockage and requiring machine shutdown for cleaning to resume production, this utility model discloses a feeding mechanism for a shoe and apparel button-attaching device. The system includes a main base 1, with a pneumatic conveying plate 2 fastened to its lower part. A buckle-releasing module 3 for automatic feeding is positioned above the main base 1. A pneumatic piston pusher 4 is located directly below the main base 1 and below the pneumatic conveying plate 2. A movable groove 12 is provided on the main base 1 corresponding to the position of the pneumatic piston pusher 4. A transmission block 5 is slidably mounted within the movable groove 12. The pneumatic piston pusher 4 drives the transmission block 5 to reciprocate along the movable groove 12, transferring the buckles output from the buckle-releasing module 3 to the pneumatic conveying plate 2, which then transports them to the machine head. The buckle-releasing module 3 directly above the main base 1 is responsible for continuously outputting buckles, while the pneumatic conveying plate 2, which is fastened directly below, undertakes the final task of conveying the buckles to the machine head. The pneumatic piston push rod 4 located directly below the pneumatic conveying plate 2 can drive the transmission block 5 in the movable groove 12 of the main base 1 to reciprocate along the groove. When the transmission block 5 moves towards the buckle-releasing module 3, it receives the buckles output by the buckle-releasing module 3 and then transfers the buckles to the pneumatic conveying plate 2 through reciprocating motion. Finally, the pneumatic conveying plate 2 stably conveys the buckles to the buckling machine head, completing the basic feeding process of loading, transferring and conveying.
[0023] A clearance groove 41 is provided directly above the pneumatic piston push rod 4. A transmission rod 6 is arranged in the clearance groove 41 along the front-to-back direction. The transmission rod 6 and the pneumatic piston push rod 4 are connected by a transmission block 61 that is fastened together to realize the force transmission between the two. The transmission rod 6 is movably mounted in the clearance groove 41, and an inclined groove 62 is provided with an upward angle directly behind the transmission rod 6. In order to ensure that the power of the pneumatic piston push rod 4 can be stably transmitted to the transmission block 5, a clearance groove 41 is provided directly above the pneumatic piston push rod 4. The transmission rod 6 arranged in the groove along the front-to-back direction is rigidly connected to the pneumatic piston push rod 4 through the transmission block 61 that is fastened together. This connection method can realize the force transmission between the two without gaps. When the pneumatic piston push rod 4 extends and retracts in the front-to-back direction, it can directly drive the transmission rod 6 to move back and forth synchronously in the clearance groove 41. At the same time, the inclined groove 62 with an upward angle directly behind the transmission rod 6 is not just a structural feature, but a reserved transmission interface for converting the front-to-back movement into horizontal movement later.
[0024] An inclined block 51, integrally formed directly below the transmission block 5, is adapted to the inclined groove 62. The inclined block 51 moves synchronously with the transmission block 5. When the pneumatic piston push rod 4 drives the transmission rod 6 to move in the front-back direction, the transmission rod 6, through the adapted cooperation of the inclined groove 62 and the inclined block 51, converts the front-back movement into the horizontal reciprocating movement of the transmission block 5 along the movable groove 12. The inclined block 51, integrally formed directly below the transmission block 5, has a slope angle and size that are perfectly adapted to the inclined groove 62 of the transmission rod 6, forming a coordinated motion conversion structure. When the pneumatic piston push rod 4 drives the transmission rod 6... When moving forward and backward, the inclined groove 62 of the transmission rod 6 will exert a force on the inclined block 51 along the inclined plane direction. Since the inclined block 51 is integrally formed with the transmission block 5 and can only slide in the left and right direction in the movable groove 12, the inclined plane force will be decomposed into a horizontal component force that drives the transmission block 5 to move left and right: when the transmission rod 6 moves forward, the force of the inclined groove 62 on the inclined block 51 pushes the transmission block 5 to move to the right along the movable groove 12. When the transmission rod 6 moves backward, the reverse force of the inclined groove 62 drives the transmission block 5 to reset to the left, thereby causing the pneumatic piston push rod 4 to move forward and backward in a straight line.
[0025] The main base 1 has a buckle transmission groove 13 that runs through its body. The buckle transmission groove 13 is connected to the buckle release module 3 to receive the buckles output by the buckle release module 3. The pneumatic conveying plate 2 has a pneumatic buckle transmission channel 21 adapted to the size of the buckles. The transmission block 5 has a buckle receiving groove 52 adapted to the size of the buckles. When the transmission block 5 is located at the rightmost end of the movable groove 12, the buckles output by the buckle release module 3 fall into the buckle receiving groove 52 of the transmission block 5 through the buckle transmission groove 13. When the pneumatic piston push rod 4 pushes the transmission block 5 to the leftmost end of the movable groove 12, the buckle receiving groove 52 on the transmission block 5 mates with the pneumatic buckle transmission channel 21 on the pneumatic conveying plate 2. The buckle transmission groove 13 runs through the main base 1. The button output by the button release module 3 can be guided to fall into the transmission block 5, preventing the button from shifting or falling off during the descent. At the same time, the button receiving groove 52 on the transmission block 5 is adapted to the size of the button, which can form a positioning constraint on the button and prevent the button from shaking or falling off during the movement of the transmission block 5. The pneumatic button transmission channel 21 on the pneumatic conveying plate 2 is also matched with the size of the button. When the pneumatic piston push rod 4 pushes the transmission block 5 to the leftmost end of the movable groove 12, the button receiving groove 52 of the transmission block 5 and the pneumatic button transmission channel 21 of the pneumatic conveying plate 2 are connected. At this time, the opening of the button receiving groove 52 is completely overlapped with the entrance of the pneumatic button transmission channel 21, and the button can smoothly enter the pneumatic button transmission channel 21 from the button receiving groove 52.
[0026] A gas transmission hole 14 is provided on the right side of the main base 1. The gas transmission hole 14 is connected to a gas transmission channel 15 inside the main base 1. The gas transmission channel 15 includes a first gas transmission channel 151 and a second gas transmission channel 152. The first gas transmission channel 151 is connected to the rear of the transmission block 5. When the transmission block 5 is located at the leftmost end of the movable slot 12 and its buckle receiving slot 52 is matched with the pneumatic buckle channel 21, the first gas transmission channel 151 can supply gas into the buckle receiving slot 52. The second gas transmission channel 152 is inclined forward and is connected to the top of the pneumatic buckle channel 21. The gas transmission hole 14 on the right side of the main base 1 is connected to an external gas source. The gas is divided into two paths through the gas transmission channel 15 inside the main base 1. Conveying: The first path is the first air transmission channel 151 connected to the rear of the transmission block 5. When the transmission block 5 is located at the leftmost end of the movable slot 12 and the buckle receiving slot 52 is connected to the pneumatic buckle transmission channel 21, the first air transmission channel 151 can spray gas into the buckle receiving slot 52. The gas pressure is used to quickly push the buckle in the buckle receiving slot 52 into the pneumatic buckle transmission channel 21. The second path is the second air transmission channel 152 that is inclined forward and connected to the top of the pneumatic buckle transmission channel 21. Its spray direction is consistent with the conveying direction of the pneumatic buckle transmission channel 21. When the buckle enters the pneumatic buckle transmission channel 21, the gas sprayed by the second air transmission channel 152 can apply a forward auxiliary thrust to the buckle and accelerate the movement speed of the buckle in the channel.
[0027] A fixed block 7, isolated from the outside, is securely installed directly behind the main base 1. A main shaft mounting hole 16 is provided on the left side of the main base 1. A pneumatic push rod 8 is provided directly behind the main base 1 and above the fixed block 7. The pneumatic push rod 8 can extend and retract in the vertical direction to drive the entire feeding mechanism to move axially around the main shaft mounting hole 16, thereby restoring the front of the pneumatic conveying plate 2 to a horizontal position. A first inclined surface 71 is provided directly below the fixed block 7, and the tail of the transmission rod 6 is provided with a surface that connects to the first inclined surface 71. The second ramp 63, when the pneumatic piston push rod 4 pushes the transmission rod 6 forward, engages with the first ramp 71, converting the forward movement of the transmission rod 6 into the rotation of all other components of the feeding mechanism around the main shaft mounting hole 16. This causes the rear of the component to descend and the front to rise. When the pneumatic piston push rod 4 retracts, the pneumatic push rod 8 extends and retracts upward simultaneously, driving the entire feeding mechanism to return to a horizontal state. The main body base 1 is installed in isolation directly behind it. The fixed block 7 provides a fixed support point for the mechanism's posture adjustment. The first slope surface 71 directly below it is adapted to the second slope surface 63 at the tail of the transmission rod 6, forming a transmission structure for posture adjustment. When the pneumatic piston push rod 4 pushes the transmission rod 6 forward, the second slope surface 63 at the tail of the transmission rod 6 will fit against the first slope surface 71 of the fixed block 7. Since the fixed block 7 is fixed, the forward movement of the transmission rod 6 is converted into an upward force along the slope surface, which drives the main body base 1 and the other components of the feeding mechanism to rotate around the main shaft mounting hole 16 on the left. At this time, the tail of the entire component is lowered by the support of the fixed block 7, and the end where the front pneumatic conveying plate 2 is located is tilted upward, which facilitates subsequent docking with the buckle head or completion of feeding at a special angle. When the pneumatic piston push rod 4 retracts, the pneumatic push rod 8 located directly above the fixed block 7 extends and retracts upward in sync, applying an upward reset force to the main body base 1 and the entire component, driving the component to rotate in the opposite direction around the main shaft mounting hole 16 until it returns to a horizontal state. The specific working principle is as follows: Taking the main base 1 as the installation reference, the buckles continuously output by the buckle release module 3 fall through the buckle transmission groove 13 of the main base 1. When the transmission block 5 is located at the rightmost end of the movable groove 12, the buckle receiving groove 52 opened at its top is only suitable for a single buckle to align with the buckle transmission groove 13, receiving a single buckle and completing the positioning. Subsequently, the pneumatic piston push rod 4 drives the transmission rod 6 to move forward through the transmission block 61. The inclined groove 62 of the transmission rod 6 cooperates with the inclined block 51 below the transmission block 5, converting the forward and backward movement into the leftward horizontal movement of the transmission block 5 along the movable groove 12. At the same time, the second inclined surface 63 at the tail of the transmission rod 6 fits with the first inclined surface 71 of the fixed block 7, pushing the entire mechanism to rotate around the main shaft mounting hole 16, causing the front of the pneumatic conveying plate 2 to rotate. When the transmission block 5 moves to the leftmost end of the movable groove 12, the buckle receiving groove 52 connects with the pneumatic buckle transmission channel 21 of the pneumatic conveying plate 2. At this time, the air transmission hole 14 on the right side of the main body base 1 sprays air into the buckle receiving groove 52 through the first air transmission channel 151, pushing a single buckle into the pneumatic buckle transmission channel 21. Then, air is sprayed through the inclined forward second air transmission channel 152, pushing the buckle forward along the channel. After the transmission is completed, the pneumatic piston push rod 4 retracts, driving the transmission rod 6 to move backward, and the transmission block 5 resets to the right. At the same time, the pneumatic push rod 8 above the fixed block 7 extends and retracts upward, pushing the mechanism to rotate in the opposite direction around the main shaft mounting hole 16 to a horizontal state. The transmission block 5 returns to the rightmost end of the movable groove 12 to receive the next buckle again. This cycle realizes the automated single buckle transmission.
[0028] The wiring diagrams of the pneumatic piston push rod 4 and pneumatic push rod 8 in this utility model are common knowledge in the field. Their working principle is a well-known technology. The appropriate model is selected according to the actual use. Therefore, the control method and wiring arrangement of the pneumatic piston push rod 4 and pneumatic push rod 8 will not be explained in detail.
[0029] The above are all preferred embodiments of this utility model, and are not intended to limit the scope of protection of this utility model. Therefore, all equivalent changes made to the structure, shape and principle of this utility model should be covered within the scope of protection of this utility model.
Claims
1. A shoe and clothes buttoning device feeding mechanism comprising a main base (1), characterized in that: A pneumatic conveying plate (2) is fastened to the bottom of the main body base (1). A buckle release module (3) for automatic feeding is set on the top of the main body base (1). A pneumatic piston push rod (4) is set on the bottom of the main body base (1) and directly below the pneumatic conveying plate (2). A movable groove (12) is opened on the main body base (1) corresponding to the position of the pneumatic piston push rod (4). A transmission block (5) is slidably assembled in the movable groove (12). The pneumatic piston push rod (4) can drive the transmission block (5) to reciprocate along the movable groove (12) to transmit the buckle output by the buckle release module (3) to the pneumatic conveying plate (2), and then the pneumatic conveying plate (2) conveys it to the machine head.
2. The feeding mechanism of the shoe and clothing button fastening device according to claim 1, characterized in that: A clearance groove (41) is provided directly above the pneumatic piston push rod (4). A transmission rod (6) is provided in the clearance groove (41) along the front-back direction. The transmission rod (6) and the pneumatic piston push rod (4) are connected by a transmission block (61) that is fastened together to realize the force transmission between the two. The transmission rod (6) is movably assembled in the clearance groove (41), and an inclined groove (62) is provided in the rear of the transmission rod (6) facing upward.
3. The feeding mechanism of the shoe and clothing button fastening device according to claim 1, characterized in that: The transmission block (5) has an integrally formed inclined block (51) that is adapted to the inclined groove (62) directly below it. The inclined block (51) moves synchronously with the transmission block (5). When the pneumatic piston push rod (4) drives the transmission rod (6) to move in the front-back direction, the transmission rod (6) transforms the front-back movement into the horizontal reciprocating movement of the transmission block (5) along the movable groove (12) through the adaptation and cooperation between the inclined groove (62) and the inclined block (51).
4. The feeding mechanism of the shoe and clothing button fastening device according to claim 1, characterized in that: The main body base (1) has a buckle transmission groove (13) that runs through its body. The buckle transmission groove (13) is connected to the buckle release module (3) to receive the buckle output by the buckle release module (3). The pneumatic conveying plate (2) has a pneumatic buckle transmission channel (21) that matches the size of the buckle. The transmission block (5) has a buckle receiving groove (52) that matches the size of the buckle. When the transmission block (5) is located at the rightmost end of the movable groove (12), the buckle output by the buckle release module (3) falls into the buckle receiving groove (52) of the transmission block (5) through the buckle transmission groove (13). When the pneumatic piston push rod (4) pushes the transmission block (5) to the leftmost end of the movable groove (12), the buckle receiving groove (52) on the transmission block (5) is connected and matched with the pneumatic buckle transmission channel (21) on the pneumatic conveying plate (2).
5. The feeding mechanism of the shoe and clothing button fastening device according to claim 1, characterized in that: The main base (1) has an air transmission hole (14) on the right side. The air transmission hole (14) is connected to the air transmission channel (15) inside the main base (1). The air transmission channel (15) includes a first air transmission channel (151) and a second air transmission channel (152). The first air transmission channel (151) is connected to the rear of the transmission block (5). When the transmission block (5) is located at the leftmost end of the movable slot (12) and its buckle receiving slot (52) is matched with the pneumatic buckle channel (21), the first air transmission channel (151) can supply air into the buckle receiving slot (52). The second air transmission channel (152) is inclined forward and is connected to the top of the pneumatic buckle channel (21).
6. The feeding mechanism of a shoe and clothing button fastening device according to claim 2, characterized in that: A fixed block (7) isolated from the outside is fastened to the rear of the main base (1). A main shaft mounting hole (16) is opened on the left side of the main base (1). A pneumatic push rod (8) is set on the rear of the main base (1) and above the fixed block (7). The pneumatic push rod (8) can extend and retract in the vertical direction to drive the entire feeding mechanism to move axially around the main shaft mounting hole (16) to realize the horizontal reset of the front of the pneumatic conveying plate (2). A first inclined surface (71) is opened directly below the fixed block (7). The transmission rod ( The tail of 6) is provided with a second slope (63) that is adapted to the first slope (71). When the aforementioned pneumatic piston push rod (4) pushes the transmission rod (6) forward, the second slope (63) fits and cooperates with the first slope (71), converting the forward movement of the transmission rod (6) into the rotation of all other components of the feeding mechanism around the main shaft mounting hole (16), causing the tail of the component to drop and the front to rise. When the aforementioned pneumatic piston push rod (4) retracts, the pneumatic push rod (8) extends and retracts synchronously upward, driving the entire feeding mechanism to reset to a horizontal state.