Intelligent suspension type conveying system for garment production
By coordinating the adjustment components and processing tables in the suspended conveyor system, the problem of swaying of the hangers during the transport of semi-finished garments is solved, enabling stable transfer of garments and efficient multi-process processing, thereby improving the system's operational stability and efficiency.
Patent Information
- Application Number
- CN202512042340.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-31
- Publication Date
- 2026-02-27
AI Technical Summary
In existing intelligent overhead conveyor systems, the hanging units are prone to swaying during the transport of semi-finished garments, causing the garments to fall off and reducing the system's operational stability and reliability.
By coordinating the suspended conveyor mechanism and the processing table, the lifting and lowering of the locking plate is controlled by the adjustment component to achieve elastic locking or unlocking of the hanger, ensuring the stability of the garment during the conveying process. The accuracy and safety of the docking process are ensured by the pressure sensor and the elastic buffer mechanism.
The system enables automated transfer of semi-finished garments, improving the stability and reliability of the conveying process and ensuring efficient transfer of garments during multi-process manufacturing. The system reduces friction and improves operating efficiency through ball bearings and limit frames.
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Figure CN121573375A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of suspended conveying systems, in particular to an intelligent suspended conveying system for garment production. BACKGROUND
[0002] The intelligent suspended conveying system for garment production is an intelligent conveying device. With the aid of intelligent control technology, it can automatically convey materials such as cutting pieces and semi-finished products in garment production to various workstations or processing areas along the track above the workshop according to the preset program, accurately and efficiently, can monitor the transportation status in real time, flexibly adjust the conveying route and speed, effectively improve the production automation degree, production efficiency and product quality, and help garment enterprises realize intelligent upgrading.
[0003] Chinese patent CN118701627A discloses an intelligent suspended conveyor for garment production, which comprises a fixing mechanism for fixing the entire conveyor, a driving main body arranged at the top end of one side of the fixing mechanism, a conveying mechanism, a suspension mechanism arranged at the bottom of the conveying mechanism at equal intervals, and a poking mechanism symmetrically arranged at the bottom of the driving main body and having its top end deviated to the outside of the fixing mechanism. When the driving main body controls the conveying mechanism to convey garments, the poking mechanism is arranged at the bottom of the driving mechanism, and the suspension work between the garment rack and the suspension mechanism can be controlled at the position of the poking mechanism, so that after the suspension of a garment is completed, the suspended garment can be mechanically poked by the poking rod on the poking mechanism, and the collision part can be extruded, thereby not affecting the suspension work of the next garment.
[0004] As shown in the above-mentioned patent, the existing intelligent suspended conveying system generally uses hangers and other hanging units in the process of conveying garment semi-finished products. The hanging unit needs to be fixed first and then hung on the hanging ring of the suspension mechanism of the conveying system to complete the material transportation. However, due to the existence of the active gap between the hanging unit and the hanging ring, the hanging unit is prone to shaking during the conveying process due to factors such as motion inertia, mechanical vibration and air flow disturbance, which may cause the garment semi-finished product to fall off and reduce the running stability and reliability of the system during the conveying process.
[0005] Therefore, it is necessary to provide an intelligent suspended conveying system for garment production to solve the above technical problems. SUMMARY
[0006] The purpose of the present application is to provide an intelligent suspension type conveying system for garment production, which realizes the automatic transfer of garment semi-finished products through the cooperation of the suspension type conveying mechanism and the processing table, and realizes the elastic locking or unlocking of the clothes hanger by adjusting the lifting of the locking plate through the adjusting assembly, thereby ensuring the stability of the garment during the conveying process.
[0007] The above technical purpose of the present application is realized by the following technical scheme: an intelligent suspension type conveying system for garment production, comprising a suspension type conveying mechanism and a plurality of processing tables arranged beside the suspension type conveying mechanism, a plurality of limiting clamps are arranged on the suspension type conveying mechanism, the suspension type conveying mechanism is used to drive the limiting clamps to move back and forth, the bottom end of the limiting clamp is fixedly connected with a mounting bracket through a connecting column, a first support cross bar is fixedly installed on the mounting bracket, a locking plate is arranged above the first support cross bar, an adjusting assembly for driving the locking plate to lift is arranged on the mounting bracket, and a first driving assembly is arranged on the processing table, which is used to provide power to the adjusting assembly.
[0008] Further provided in the present application is that the adjusting assembly comprises a first push ring, a slide column and a first spring, the first push ring is slidingly sleeved on the first support cross bar, a groove for accommodating the first push ring is formed in the mounting bracket, an inclined surface is formed in the first push ring, the locking plate is elastically connected with the mounting bracket through the first spring, the slide column penetrates the mounting bracket and is in sliding fit with the mounting bracket, and the bottom end of the slide column is fixedly connected with the locking plate.
[0009] Further provided in the present application is that the adjusting assembly further comprises a first screw rod, a first sliding block and a first gear, the first sliding block is fixedly connected with the inner peripheral wall of the first push ring, a sliding groove is formed in the bottom of the first support cross bar, the first sliding block is slidingly installed in the sliding groove, the first screw rod is rotationally installed in the sliding groove, the first screw rod penetrates the first sliding block and is in threaded connection with the first sliding block, and the end of the first screw rod penetrates the side wall of the first support cross bar and is fixedly sleeved with the first gear.
[0010] Further provided in the present application is that the first driving assembly comprises a support groove slidingly arranged on the processing table, a vertical plate arranged on the support groove and a second support cross bar fixedly installed on the vertical plate, the height of the second support cross bar is the same as that of the first support cross bar, an electric push rod is fixedly installed on the processing table, the output end of the electric push rod is fixedly connected with the support groove, a rotating shaft is rotationally installed in the second support cross bar, a notch is formed in the end of the second support cross bar away from the vertical plate, a second gear fixedly connected with the end of the rotating shaft is arranged in the notch, the second gear is matched with the first gear, and a second motor for driving the rotating shaft to rotate is fixedly installed on the vertical plate.
[0011] The further setting of the present application is that the sliding seat is slidingly installed in the support groove, the vertical plate is fixedly installed on the sliding seat, the inner side wall of the support groove is fixedly installed with a pressure sensor, and the side wall of the sliding seat is elastically connected with the pressure sensor through a second spring.
[0012] The further setting of the present application is that the second push ring is slidingly sleeved on the second support cross bar, and a second driving assembly for driving the second push ring to move is arranged above the second support cross bar.
[0013] The further setting of the present application is that the second driving assembly comprises a guide rail, a third motor, a second screw rod and a second sliding block, the guide rail is arranged above the second support cross bar and fixedly connected with the vertical plate at the end thereof, the second sliding block is slidingly installed in the guide rail, the second screw rod is rotatably installed in the guide rail and penetrates through and is threadedly connected with the second sliding block, and the third motor is fixedly installed on the vertical plate and fixedly connected with the end of the second screw rod.
[0014] The further setting of the present application is that the suspension type conveying mechanism comprises two support plates, two transmission wheels rotatably installed below the support plates, a transmission belt commonly sleeved on the two transmission wheels and a limiting frame, the top end of one of the support plates is fixedly installed with a first motor, the output end of the first motor is drivingly connected with the transmission wheel below the same, the limiting clamp is slidingly arranged on the limiting frame and connected with the transmission belt through an elastic connecting block.
[0015] The further setting of the present application is that a plurality of rolling balls are embeddedly installed in the inner side of the limiting clamp, the rolling balls are in contact with the limiting frame, two limiting columns are fixedly installed on the limiting clamp, and the distance between the two limiting columns is smaller than the thickness of the limiting frame.
[0016] The further setting of the present application is that a plurality of first connecting frames are fixedly installed on the support plates, the first connecting frames are fixedly connected with the roof of the factory building, a plurality of second connecting frames are fixedly installed on the limiting frame, and the second connecting frames are fixedly connected with the roof of the factory building.
[0017] In summary, the present application has the following beneficial effects: the present application realizes the automatic transfer of garment semi-finished products through the cooperation of the suspension conveying mechanism and the processing table, the limiting clamp on the suspension conveying mechanism drives the mounting frame to move through the connecting column, the first supporting cross bar on the mounting frame is used for suspending the clothes hanger, and the lifting of the locking plate is controlled through the adjusting assembly to realize the elastic locking or unlocking of the clothes hanger, and the stability of the garment during the conveying process is ensured, when the garment needs to be transferred to the processing table, the second supporting cross bar is driven to approach the first supporting cross bar by the electric push rod, the second gear is engaged with the first gear, the adjusting assembly is driven to unlock the clothes hanger and push it to the processing table; when the reverse operation is performed, the second driving assembly pushes the garment from the processing table back to the conveying mechanism to complete the bidirectional automatic transfer; the system ensures the accuracy and safety of the docking process through the pressure sensor and the elastic buffering mechanism, and adopts the ball and the limiting frame design to reduce the friction and improve the operation efficiency. The control panel and the control system realize the man-machine interaction, the staff can flexibly select to receive or send the garment, so that the whole transfer process is efficient, stable and intelligent, and the demand of the multi-process cooperation of the garment production line is met. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 is a three-dimensional structure schematic diagram of the present application; Figure 2 is a structure schematic diagram of the suspension conveying mechanism of the present application; Figure 3 is a structure schematic diagram of the second supporting cross bar and the first supporting cross bar of the present application when they are docked; Figure 4 is a structure schematic diagram of the limiting clamp, the connecting column, the mounting frame and the first supporting cross bar of the present application; Figure 5 is a sectional structure schematic diagram of the mounting frame and the first supporting cross bar of the present application; Figure 6 is an enlarged structure schematic diagram of A of the present application; Figure 5 Figure 7 is a structure schematic diagram of the first push ring and the first sliding block of the present application; Figure 8 is a sectional structure schematic diagram of the guide rail and the second supporting cross bar of the present application; Figure 9 is an enlarged structure schematic diagram of B of the present application; Figure 8 Figure 10 is a structure schematic diagram of the supporting groove, the sliding seat, the second spring and the pressure sensor of the present application.
[0019] In the figure: 1, support plate; 2, first connecting frame; 3, first motor; 4, transmission wheel; 5, transmission belt; 6, limiting frame; 7, second connecting frame; 8, elastic connecting block; 9, limiting clamp; 10, ball; 11, limiting column; 12, connecting column; 13, mounting frame; 14, first support cross bar; 1401, sliding groove; 15, locking plate; 16, sliding column; 17, first spring; 18, first push ring; 1801, inclined surface; 19, first sliding block; 20, first screw; 21, first gear; 22, processing table; 23, electric push rod; 24, support groove; 25, sliding seat; 26, second spring; 27, pressure sensor; 28, vertical plate; 29, second support cross bar; 2901, notch; 30, second motor; 31, second gear; 32, rotating shaft; 33, guide rail; 34, third motor; 35, second screw; 36, second sliding block; 37, second push ring; 38, control panel. DETAILED DESCRIPTION
[0020] The application will be further described below with reference to the drawings of the embodiments thereof.
[0021] Please refer to Figures 1-10 In the embodiments of the present application, an intelligent suspension type conveying system for garment production comprises a suspension type conveying mechanism and a plurality of processing tables 22 arranged beside the suspension type conveying mechanism, the suspension type conveying mechanism is provided with a plurality of limiting clamps 9, the suspension type conveying mechanism is used to drive the limiting clamps 9 to move back and forth in cycles, the bottom end of the limiting clamp 9 is fixedly connected with a mounting frame 13 through a connecting column 12, the mounting frame 13 is of L-shaped structure, a first support cross bar 14 is fixedly installed on the mounting frame 13, the cross section of the first support cross bar 14 is circular, a locking plate 15 is arranged above the first support cross bar 14, the cross section of the first support cross bar 14 is circular, an arc-shaped groove is formed in the bottom wall of the locking plate 15, and the bottom wall of the locking plate 15 is made of elastic rubber material to improve the locking firmness, an adjusting assembly for driving the locking plate 15 to move up and down is arranged on the mounting frame 13, a first driving assembly is arranged on the processing table 22, and the first driving assembly is used to provide power to the adjusting assembly; in specific use, the semi-finished garment to be conveyed is first fixed on a clothes hanger, the clothes hanger is then hung on the first support cross bar 14, and the first driving assembly is used to drive the adjusting assembly to work, so that the adjusting assembly drives the locking plate 15 to move downward to lock the clothes hanger hung on the first support cross bar 14, to prevent the clothes on the clothes hanger from falling off due to shaking of the clothes hanger during conveying, the suspension type conveying mechanism can drive the limiting clamps 9 to move along the conveying route, and then drive the mounting frame 13 to move through the connecting column 12, so that the first support cross bar 14 drives the semi-finished garment fixed thereon to move along the conveying route, and the suspension type conveying mechanism can transfer the garment between the multiple processing tables 22, to facilitate processing of each process of the garment.
[0022] In this embodiment, preferably, the adjusting assembly includes a first push ring 18, a sliding column 16, and a first spring 17. The first push ring 18 is slidably sleeved on the first support crossbar 14. The mounting bracket 13 has a groove for accommodating the first push ring 18. The first push ring 18 has a chamfered surface 1801. The locking plate 15 is elastically connected to the mounting bracket 13 via the first spring 17. The sliding column 16 penetrates the mounting bracket 13 and is slidably engaged with the mounting bracket 13. The bottom end of the sliding column 16 is fixedly connected to the locking plate 15. The adjusting assembly also includes a first screw 20, a first slider 19, and a first gear 21. The first slider 19 is fixedly connected to the inner peripheral wall of the first push ring 18. The bottom of the first support crossbar 14 has a sliding groove 1401. The first slider 19 is slidably installed in the sliding groove 1401. The first screw 20 is rotatably installed in the sliding groove 1401. The first screw 20 penetrates the first support crossbar 14. A slider 19 is provided, and a first screw 20 is threadedly connected to the first slider 19. The end of the first screw 20 passes through the side wall of the first support crossbar 14 and is fixedly fitted with a first gear 21. The sliding column 16 can limit the lifting and lowering of the locking plate 15 to prevent the locking plate 15 from shifting. When the first push ring 18 is located in the groove opened on the mounting bracket 13, the first push ring 18 does not contact the locking plate 15. At this time, the locking plate 15 has downward pressure under the elastic action of the first spring 17. If a clothes hanger is suspended on the first support crossbar 14, the locking plate 15 presses on the hook of the clothes hanger to squeeze and lock the hook. When the first push ring 18 moves to the right, under the action of the inclined surface 1801 of the first push ring 18, the locking plate 15 is gradually pushed upward to release the locking plate 15 from locking the clothes hanger so that the clothes hanger can be removed. When the first gear 21 rotates, it can drive the first screw 20 to rotate. When the first screw 20 rotates, it drives the first slider 19 to move, thereby driving the first push ring 18 to move.
[0023] In this embodiment, preferably, the first driving assembly includes a support groove 24 slidably disposed on the processing table 22, a vertical plate 28 disposed on the support groove 24, and a second support crossbar 29 fixedly mounted on the vertical plate 28. The second support crossbar 29 has the same height as the first support crossbar 14 and is perpendicular to the vertical plate 28. An electric push rod 23 is fixedly mounted on the processing table 22. The output end of the electric push rod 23 is fixedly connected to the support groove 24. The extension and retraction direction of the electric push rod 23 is perpendicular to the movement direction of the limiting clamp 9. A rotating shaft 32 is rotatably mounted inside the second support crossbar 29. The second support crossbar 29 is located away from the vertical plate 28. One end of the plate 28 has a notch 2901, and a second gear 31 is fixedly connected to the end of the rotating shaft 32 within the notch 2901. The second gear 31 is adapted to the first gear 21. A second motor 30 for driving the rotating shaft 32 to rotate is fixedly installed on the plate 28, and the output end of the second motor 30 is fixedly connected to the end of the rotating shaft 32. When the processing table 22 is not receiving clothing, there is a certain gap between the second support crossbar 29 and the first support crossbar 14, which will not affect the operation of the suspended conveyor mechanism. When the processing table 22 needs to receive clothing from the suspended conveyor mechanism, when the clothing moves to the side of the processing table 22, it is activated by an electric push rod 2. 3. The drive support groove 24 moves, causing the upright plate 28 to move the second support crossbar 29 towards the first support crossbar 14. When the first support crossbar 14 moves to the side of the first support crossbar 14, the gap between the first support crossbar 14 and the second support crossbar 29 is small, within 2mm. When the first support crossbar 14 moves to be on the same straight line as the second support crossbar 29, the second gear 31 meshes with the first gear 21. At this time, the second motor 30 drives the rotating shaft 32 to rotate. The rotation of the rotating shaft 32 drives the second gear 31 to rotate, which in turn drives the first gear 21 to rotate. The rotation of the first gear 21 then... The first screw 20 rotates, which drives the first slider 19 to move, thereby driving the first push ring 18 to move towards the second support crossbar 29. When the first push ring 18 first starts to move, the inclined surface 1801 on the first push ring 18 pushes the locking plate 15 to move upward, thereby releasing the lock on the hanger on the first support crossbar 14. As the first push ring 18 continues to move, it pushes the hanger and the semi-finished garment toward the second support crossbar 29, so that the hanger and the semi-finished garment are transferred to the second support crossbar 29, thereby realizing the transfer of the semi-finished garment on the suspended conveyor mechanism to the processing table 22.
[0024] In this embodiment, preferably, a slide block 25 is slidably installed in the support groove 24, and the upright plate 28 is fixedly installed on the slide block 25. A pressure sensor 27 is fixedly installed on the inner side wall of the support groove 24, and the side wall of the slide block 25 is elastically connected to the pressure sensor 27 through a second spring 26. When the processing table 22 receives the semi-finished garment from the suspended conveyor mechanism, as the first gear 21 and the second gear 31 come into contact, the first gear 21 pushes the second support crossbar 29 and the upright plate 28 toward the pressure sensor 27 through the second gear 31, thereby driving the slide block 25 to move and compressing the second spring 26, so that the pressure value detected by the pressure sensor 27 increases. When the detected pressure value reaches the threshold, the suspended conveyor mechanism can be stopped by transmitting a signal, and then the garment can be transferred. The setting of the pressure sensor 27 and the second spring 26 allows the first support crossbar 14 and the second support crossbar 29 to be buffered when they dock, preventing rigid impact from damaging the first gear 21 and the second gear 31.
[0025] In this embodiment, preferably, a second push ring 37 is slidably sleeved on the second support crossbar 29, and a second driving assembly for driving the second push ring 37 to move is provided above the second support crossbar 29; the second driving assembly includes a guide rail 33, a third motor 34, a second screw 35, and a second slider 36. The guide rail 33 is located above the second support crossbar 29, and the end of the guide rail 33 is fixedly connected to the upright plate 28. The second slider 36 is slidably installed inside the guide rail 33, and the second screw 35 is rotatably installed inside the guide rail 33, and the second screw 35 passes through the second slider 36 and is threadedly connected to the second slider 36. The third motor 34 is fixedly installed on the upright plate 28, and the output end of the third motor 34 is fixedly connected to the end of the second screw 35; the workers next to the processing table 22 can transfer the garments that need to be transferred to the hanging conveyor mechanism through the hanger. During operation, the garments are first transferred through the hanger. The garment hanger is suspended on the second support crossbar 29. When the first support crossbar 14, which is used to receive clothing, and the second support crossbar 29 on the processing table 22 are on the same straight line, the second gear 31 drives the locking plate 15 to move upward through the adjusting component, so that there is a gap between the locking plate 15 and the first support crossbar 14. Then, the third motor 34 is turned on, and the third motor 34 drives the second screw 35 to rotate, thereby driving the second slider 36 to move, thereby driving the second push ring 37 to move closer to the first support crossbar 14, thus pushing the clothing on the second support crossbar 29 onto the first support crossbar 14. Then, the second gear 31 drives the adjusting component to operate, causing the locking plate 15 to descend and lock the garment hanger, thereby realizing the transfer of clothing on the processing table 22 to the hanging conveyor mechanism. This can conveniently transfer multiple garments suspended on the second support crossbar 29 to the first support crossbar 14 at the same time, improving the transfer efficiency.
[0026] In this embodiment, preferably, the processing table 22 is equipped with a control panel 38, which integrates a high-definition LCD screen and capacitive touch buttons, providing a human-machine interface. The operator can achieve two core functions through the control panel 38: First, in the garment receiving stage, based on production scheduling or real-time needs, the operator can select the batch, style number, and other information of the garment to be received through a visual interface. The system will automatically match the position of the corresponding garment on the suspended conveyor mechanism and generate the optimal transfer path instruction. Second, in the garment transfer stage, after suspending the garment on the second support crossbar 29, the operator inputs the transfer instruction through the panel. The instruction includes parameters such as the target transfer path and priority. The system's control system uses an industrial-grade programmable logic controller as its core, combined with a distributed control architecture. The system establishes a data connection with the control panel 38, the first motor 3, the second motor 30, the third motor 34, and the electric push rod 23 via an Ethernet communication protocol. When the control panel 38 receives the operation instruction, the control system immediately parses the instruction and calculates the operating parameters of each executing component according to a preset algorithm, such as motor speed, extension stroke and speed of the electric push rod 23, etc. For example, when receiving garments, the control system first drives the electric push rod 23 to precisely align the second support crossbar 29 with the corresponding first support crossbar 14. Simultaneously, it controls the second motor 30 to drive the rotating shaft 32, which in turn engages the second gear 31 with the first gear 21. Then, the adjustment component releases the hanger lock. When transferring garments, the control system, according to instructions, controls the third motor 34 to drive the second push ring 37 to precisely push the garments. After completion, it controls the adjustment component to relock the hanger. In addition, the control system has a built-in fault diagnosis module and safety protection mechanism. By monitoring the operating status parameters of each component in real time, the system will immediately trigger an alarm and automatically stop the operation of the relevant components once an abnormality is detected, preventing equipment damage and production accidents. At the same time, the control system supports remote monitoring and program upgrade functions. Maintenance personnel can access the system via a local area network or the Internet to view equipment operating data in real time, troubleshoot faults, and update programs, further improving the intelligence and convenience of production management.
[0027] Please see Figures 1-4In this embodiment of the invention, the suspended conveying mechanism includes two support plates 1, two drive wheels 4 rotatably mounted below the support plates 1, a drive belt 5 and a limiting frame 6 jointly mounted on the two drive wheels 4. The drive belt 5 is disposed inside the limiting frame 6, and the shape of the limiting frame 6 is adapted to the drive belt 5. The limiting frame 6 is a closed-loop structure. The shapes of the drive belt 5 and the limiting frame 6 can be adjusted according to actual usage requirements. A first motor 3 is fixedly mounted on the top of one of the support plates 1, and the output end of the first motor 3 is connected to the drive wheel 4 below it. The limiting clamp 9 is slidably mounted on the limiting frame 6. The limiting clamp 9 is connected to the transmission belt 5 through the elastic connecting block 8, which is made of rubber. The first motor 3 can drive the transmission wheel 4 to rotate. When the transmission wheel 4 rotates, it drives the transmission belt 5 to rotate. When the transmission belt 5 rotates, it drives the limiting clamp 9 to move through the elastic connecting block 8, thereby driving the mounting frame 13 to move through the connecting column 12. The limiting frame 6 can guide the movement of the limiting clamp 9 and support the limiting clamp 9 to improve the load capacity of the mounting frame 13.
[0028] In this embodiment, preferably, a plurality of ball bearings 10 are embedded and installed on the inner side of the limiting clamp 9. The ball bearings 10 are in contact with the limiting frame 6. The ball bearings 10 can reduce the friction when the limiting clamp 9 moves. Two limiting posts 11 are fixedly installed on the limiting clamp 9. The distance between the two limiting posts 11 is less than the thickness of the limiting frame 6, so that the limiting clamp 9 will not fall off the limiting frame 6.
[0029] In this embodiment, preferably, a plurality of first connecting frames 2 are fixedly installed on the support plate 1, and the first connecting frames 2 are fixedly connected to the roof of the factory building. A plurality of second connecting frames 7 are fixedly installed on the limiting frame 6, and the second connecting frames 7 are fixedly connected to the roof of the factory building, thereby realizing the suspension of the suspended conveyor mechanism in the factory building.
[0030] The above description is only a preferred embodiment of the present invention. Therefore, all equivalent changes or modifications made to the structure, features and principles described in the claims of this patent application are included in the scope of this patent application.
Claims
1. An intelligent suspended conveyor system for garment production, comprising a suspended conveyor mechanism and multiple processing tables disposed beside the suspended conveyor mechanism, wherein the suspended conveyor mechanism is provided with multiple limit clamps, and the suspended conveyor mechanism is used to drive the limit clamps to move cyclically back and forth, characterized in that: The bottom end of the limiting clamp is fixedly connected to a mounting bracket via a connecting column. A first support crossbar is fixedly installed on the mounting bracket. A locking plate is provided above the first support crossbar. An adjustment component for driving the locking plate to rise and fall is provided on the mounting bracket. A first drive component is provided on the processing table. The first drive component is used to provide power to the adjustment component.
2. The intelligent suspended conveyor system for garment production according to claim 1, characterized in that: The adjustment assembly includes a first push ring, a sliding column, and a first spring. The first push ring is slidably sleeved on the first support crossbar. The mounting bracket has a groove for accommodating the first push ring. The first push ring has an inclined surface. The locking plate is elastically connected to the mounting bracket through the first spring. The sliding column passes through the mounting bracket and is slidably engaged with the mounting bracket. The bottom end of the sliding column is fixedly connected to the locking plate.
3. The intelligent suspended conveyor system for garment production according to claim 2, characterized in that: The adjustment assembly further includes a first screw, a first slider, and a first gear. The first slider is fixedly connected to the inner peripheral wall of the first push ring. A groove is provided at the bottom of the first support crossbar. The first slider is slidably installed in the groove. The first screw is rotatably installed in the groove. The first screw passes through the first slider and is threadedly connected to the first slider. The end of the first screw passes through the side wall of the first support crossbar and is fixedly fitted with the first gear.
4. The intelligent suspended conveyor system for garment production according to claim 3, characterized in that: The first driving assembly includes a support groove slidably disposed on the processing table, a vertical plate disposed on the support groove, and a second support crossbar fixedly mounted on the vertical plate. The second support crossbar has the same height as the first support crossbar. An electric push rod is fixedly mounted on the processing table, and the output end of the electric push rod is fixedly connected to the support groove. A rotating shaft is rotatably mounted inside the second support crossbar. A notch is opened at the end of the second support crossbar away from the vertical plate, and a second gear is disposed in the notch and fixedly connected to the end of the rotating shaft. The second gear is adapted to the first gear. A second motor for driving the rotating shaft to rotate is fixedly mounted on the vertical plate.
5. The intelligent suspended conveyor system for garment production according to claim 4, characterized in that: A slide block is slidably installed in the support groove, the upright plate is fixedly installed on the slide block, a pressure sensor is fixedly installed on the inner side wall of the support groove, and the side wall of the slide block is elastically connected to the pressure sensor through a second spring.
6. The intelligent suspended conveyor system for garment production according to claim 4, characterized in that: A second push ring is slidably sleeved on the second support crossbar, and a second drive assembly for driving the second push ring to move is provided above the second support crossbar.
7. The intelligent suspended conveyor system for garment production according to claim 6, characterized in that: The second drive assembly includes a guide rail, a third motor, a second screw, and a second slider. The guide rail is positioned above the second support crossbar, and its end is fixedly connected to the vertical plate. The second slider is slidably mounted inside the guide rail. The second screw is rotatably mounted inside the guide rail, and it passes through the second slider and is threadedly connected to it. The third motor is fixedly mounted on the vertical plate, and its output end is fixedly connected to the end of the second screw.
8. The intelligent suspended conveyor system for garment production according to claim 1, characterized in that: The suspended conveying mechanism includes two support plates, two drive wheels rotatably mounted below the support plates, a drive belt and a limiting frame that are mounted together on the two drive wheels. A first motor is fixedly mounted on the top of one of the support plates, and the output end of the first motor is connected to the drive wheel below it. The limiting clamp is slidably mounted on the limiting frame and is connected to the drive belt through an elastic connecting block.
9. The intelligent suspended conveyor system for garment production according to claim 8, characterized in that: Multiple balls are embedded in the inner side of the limiting clamp, and the balls are in contact with the limiting frame. Two limiting posts are fixedly installed on the limiting clamp, and the distance between the two limiting posts is less than the thickness of the limiting frame.
10. The intelligent suspended conveyor system for garment production according to claim 8, characterized in that: Multiple first connecting frames are fixedly installed on the support plate, and the first connecting frames are fixedly connected to the roof of the factory building. Multiple second connecting frames are fixedly installed on the limiting frame, and the second connecting frames are fixedly connected to the roof of the factory building.
Citation Information
Patent Citations
Intelligent suspension conveyor for garment production
CN118701627A