An intelligent distribution production line for clothing processing
By changing the separation method of hanging on the main support rail to move to the secondary support rail in the clothing processing production line, the roller and the guide plate are fitted, combined with the damping liquid to slow down the movement speed, the problem of easy hanging falling is solved, and processing efficiency and stability are improved.
Patent Information
- Application Number
- CN202411062866.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-05
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2044-08-05
AI Technical Summary
When the existing clothing processing production line moves from the main rail to the branch rail, if the branch rail deforms or the control program is incorrect, the hanging is prone to falling and affects the processing efficiency.
By changing the separation method when hanging on the main support rail moves to the secondary support rail, the roller and the main support rail are rolling and separated stably, keeping the roller always fit with the guide plate, reducing the probability of hanging derailing, and slowing down the movement speed of hanging through damping fluid to enhance stability.
Effectively reduce the probability of hanging derailment, avoid empty hangings entering the processing station, save operation steps, improve work efficiency, and prevent hanging shaking and fabric drop due to distributor limits.
Smart Images

Figure CN119117568B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of clothing processing production lines, and specifically relates to an intelligent distribution production line for clothing processing. Background Art
[0002] With the development of science and technology, clothing processing has gradually become intelligent and automated. The existing clothing processing process usually uses an intelligent hanging production line to transport fabrics and clothing. The production line usually includes a main rail, a branch rail and a processing station. Its main working process is: the clothing hanging in the processing station enters the main rail and moves along the main rail. Each clothing hanging contains an identification chip. The sensor on the main rail scans the identification chip on each hanging and transmits the information to the control terminal through the Internet of Things. The control terminal then assigns which processing station the clothing hanging needs to enter. When the clothing hanging moves to the processing station along the main rail, the branch rail of the processing station is extended and fits on the main rail. The garment hanging on the guide rail is diverted to the branch guide rail, and slides along the branch guide rail relying on its own gravity, and finally contacts with the distributor of the designated processing station. The distributor limits the garment hanging. When there is a vacant position in the designated processing station, the distributor releases the limit on the garment hanging, allowing the garment hanging to enter the designated processing station. When moving from the main rail to the branch guide rail, if the fitting part between the branch guide rail and the main rail is deformed or the branch guide rail and the main rail are not completely fitted due to confusion in the control program, the garment hanging is easy to fall off during the process of moving from the main rail to the branch guide rail, thereby affecting the process of the entire garment processing line and reducing the processing efficiency. Summary of the invention
[0003] The present invention provides an intelligent distribution production line for garment processing to solve the problems raised in the above background technology.
[0004] The technical solution of the present invention is:
[0005] An intelligent distribution production line for garment processing comprises a mounting plate, the mounting plate is fixedly connected with an equidistant main support rail, the mounting plate is slidably connected with a transfer belt, the transfer belt is fixedly connected with an equidistant L-shaped push rod, symmetrical and equidistant rollers are commonly arranged on the upper side of the equidistant main support rails, the symmetrically distributed rollers are commonly rotatably connected with a connecting frame, the rollers are in contact with and cooperate with the adjacent L-shaped push rods, a toothed frame is arranged on the lower side of the connecting frame, a fixed plate of a linear array is rotatably connected to the lower side of the toothed frame, and a torsion spring is fixed between the two, and a folding spring is fixedly connected to the lower side of the main support rail The folding plate has a secondary support rail fixedly connected to its lower part, and the main support rail is rotatably connected to a guide plate near the folding plate, a torsion spring is fixedly connected between the guide plate and the main support rail near its rotation axis, the guide plate is in contact with the main support rail far from its rotation axis, an electromagnet is fixedly connected inside the guide plate and is limitedly slidably connected to a limiting member, a limiting groove is provided on the main support rail for limiting cooperation with an adjacent limiting member, a spring is provided between the limiting member and the adjacent guide plate, and the limiting member is fixedly connected to a first magnet for cooperation with the magnetic repulsion of the adjacent electromagnet.
[0006] Furthermore, the position of the limiting member close to the adjacent limiting groove is hemispherical, and the depth of the limiting groove is greater than the diameter of the hemispherical shape of the limiting member.
[0007] Furthermore, a T-shaped rod slidably connected to the adjacent guide plate is fixedly connected to the side of the limiting member away from the adjacent limiting groove, and a locking groove is provided at a position of the main support rail close to the T-shaped rod, and the T-shaped rod is limitedly matched with the adjacent locking groove.
[0008] Furthermore, a buffer cylinder is rotatably connected to the upper side of the folding plate, and a swing piston rod is sealingly and slidably connected to the buffer cylinder. The swing piston rod is rotatably connected to the adjacent guide plate, and a first through hole is provided on the swing piston rod. The first through hole is located in the adjacent buffer cylinder, and damping fluid is stored in the buffer cylinder.
[0009] Furthermore, a curved portion and an inclined portion are provided on the secondary support rail, and symmetrically distributed support rods are fixedly connected to the inclined portion. A buffer wheel is sealingly and rotatably connected to the side of the support rod away from the adjacent inclined portion, and a reciprocating thread is provided on the portion of the support rod located in the adjacent buffer wheel. The buffer wheels symmetrically distributed on the same inclined portion are rotatably connected to a buffer belt together, and equidistant partition blocks are fixedly connected to the buffer belt. A buffer ring is slidingly connected to the buffer wheel in a limited position, and the buffer ring is threadedly connected to the adjacent support rod. A second through hole is provided on the buffer ring, and damping fluid is stored in the buffer wheel.
[0010] Furthermore, it also includes equidistant rollers, which are rotationally connected to adjacent L-shaped push rods in a limited position, and the rollers are in contact and cooperate with adjacent and symmetrically distributed rollers, and the connecting frame is rotationally connected to the adjacent gear frame in a limited position.
[0011] Furthermore, an inclined surface is provided on a side of the connecting frame away from the mounting plate, and the L-shaped push rod is extruded and matched with the inclined surface of the adjacent connecting frame.
[0012] Furthermore, a second magnet is fixedly connected to a position of the L-shaped push rod away from the mounting plate, a third magnet is slidably connected to a side of the connecting frame close to the mounting plate, the third magnet is magnetically engaged with the adjacent second magnet, a traction rope is fixedly connected to a side of the third magnet away from the mounting plate, a spring is fixedly connected between a side of the third magnet away from the mounting plate and an adjacent connecting frame, a symmetrically distributed pull rope is fixedly connected to a side of the toothed frame close to an adjacent connecting frame, the adjacent and symmetrically distributed pull ropes are fixedly connected to each other, the traction rope is fixedly connected to the connection between the adjacent and symmetrically distributed pull ropes, the connecting frame is rotatably connected to a support wheel at a position close to the adjacent and symmetrically distributed pull ropes, the adjacent and symmetrically distributed pull ropes are commonly wound around the adjacent support wheel, and the traction rope passes through the adjacent connecting frame.
[0013] Furthermore, an arcuate piston rod is fixedly connected to the connecting frame near the adjacent toothed frame, and the arcuate piston rod is sealingly and slidingly connected to the adjacent toothed frame. A buffer cavity is provided in the toothed frame, and the arcuate piston rod is located in the adjacent buffer cavity for sealing and sliding. Damping fluid is stored in the buffer cavity, and a third through hole is provided on the arcuate piston rod, and the third through hole is located in the adjacent buffer cavity.
[0014] Furthermore, in a vertical plane, an angle between two ends of the buffer cavity and a line connecting the rotation axes of adjacent gear racks is between 60° and 80°.
[0015] Compared with the prior art, the present invention has the following beneficial effects:
[0016] The present invention changes the separation mode of the hanging when it moves from the main support rail to the secondary support rail, so that the roller is stably rolled and separated from the main support rail, and the roller is kept in contact with the guide plate at all times, and there is no need to replace the guide rail on which the roller runs, thereby reducing the probability of the hanging derailing; the integrity of the cloth on the hanging is judged according to the pressure of the hanging and the cloth on the guide plate, and the empty hanging is prevented from entering the processing station, so as to save operation steps and improve work efficiency; by slowing down the swinging speed of the guide plate, the hanging on the guide plate is prevented from being subjected to a large impact and causing the cloth or clothing on the hanging to fall off; when the hanging moves along the inclined portion, the flow of the damping fluid is used to slow down the movement speed of the hanging, so as to enhance the stability of the hanging when moving on the inclined portion, and prevent the hanging from shaking violently when being limited by the distributor, causing the cloth or clothing on the hanging to fall off, thereby affecting the process of the entire clothing processing line. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;
[0018] Figure 2 It is a schematic diagram of the three-dimensional structure of the main support rail, the folding plate and the secondary support rail of the present invention;
[0019] Figure 3 It is a schematic diagram of the cross-sectional three-dimensional structure of the main support rail and the guide plate of the present invention;
[0020] Figure 4 It is a three-dimensional structural schematic diagram of the electromagnet, the limiter and the T-shaped rod of the present invention;
[0021] Figure 5 It is a three-dimensional structural schematic diagram of the folding plate, the guide plate and the buffer cylinder of the present invention;
[0022] Figure 6 For the present invention Figure 5 A schematic diagram of the enlarged structure at A in the middle;
[0023] Figure 7 It is a schematic diagram of the three-dimensional structure of the buffer wheel, buffer belt and separator block of the present invention;
[0024] Figure 8 It is a three-dimensional structural schematic diagram of the support rod, buffer wheel and buffer ring of the present invention;
[0025] Fig. 9 It is a schematic diagram of the three-dimensional structure of the L-shaped push rod, the roller and the second magnet of the present invention;
[0026] Fig.10 It is a schematic diagram of the three-dimensional structure of the third magnet, the traction rope and the pull rope of the present invention;
[0027] Fig.11 For the present invention Fig. 9 A schematic diagram of the enlarged structure at B in the middle;
[0028] Fig.12 For the present invention Fig. 9 Schematic diagram of the enlarged structure at point C in the middle.
[0029] In the figure: 1, mounting plate; 2, main support rail; 3, transfer belt; 4, L-shaped push rod; 5, roller; 6, connecting frame; 7, toothed frame; 701, fixing plate; 8, folding plate; 9, secondary support rail; 901, bending part; 902, inclined part; 10, guide plate; 11, electromagnet; 12, limiter; 121, limit groove; 13, first magnet; 14, T-shaped rod; 141, locking groove; 15, buffer cylinder; 16, swing piston rod; 161, first through hole; 17, support rod; 18, buffer wheel; 19, buffer belt; 20, partition block; 21, buffer ring; 211, second through hole; 22, roller; 23, second magnet; 24, third magnet; 25, traction rope; 26, pull rope; 27, support wheel; 28, arc piston rod; 281, buffer cavity; 282, third through hole. DETAILED DESCRIPTION
[0030] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0031] When the existing clothing distribution production line is transporting hanging clothing, when the clothing hanging is moved from the main rail to the branch rail, if the branch rail is deformed or the program controlling its fit with the main rail is wrong, resulting in the branch rail and the main rail not being fully fitted, the clothing hanging cannot be smoothly moved from the main rail to the branch rail, causing the clothing hanging to easily fall off, disrupting the process of the entire clothing processing line and reducing the production efficiency of the entire assembly line.
[0032] Example 1: An intelligent distribution production line for garment processing, please refer to Figure 1-Figure 3, including a mounting plate 1, on which a control terminal is arranged (this is an existing device and is not shown in the figure), an equidistant main support rail 2 is fixedly connected to the lower part of the front side of the mounting plate 1, a transfer belt 3 is slidably connected to the mounting plate 1, and the transfer belt 3 slides along the mounting plate 1 by an external motor, and a plurality of equidistant L-shaped push rods 4 are fixedly connected to the lower side of the transfer belt 3, and a sensor electrically connected to the control terminal is arranged in the L-shaped push rod 4, and a plurality of symmetrical and equidistant rollers 5 are commonly arranged on the equidistant main support rails 2, and the rollers 5 are in contact with adjacent L-shaped push rods 4, and are used to push adjacent rollers 5 along adjacent main support rails 2 through the L-shaped push rods 4. The two symmetrically distributed rollers 5 rotate together and are connected to a connecting frame 6. An identification chip is arranged in the connecting frame 6, which is used to enable the control terminal to allocate the connecting frame 6 to the corresponding processing station. A toothed frame 7 is arranged on the lower side of the connecting frame 6. The lower side of the toothed frame 7 is rotatably connected to a plurality of fixed plates 701 in a linear array (this is an existing structure, which will not be described and shown in detail here). A torsion spring is fixedly connected between the fixed plate 701 and the adjacent toothed frame 7. The cloth or clothing is hung on the adjacent toothed frame 7 through the fixed plate 701. A folding plate 8 is fixedly connected to the right part of the lower side of the main support rail 2. A secondary support rail 9 is fixedly connected to the lower part of the folding plate 8. The support rail 9 is provided with a distributor (this is an existing mechanism, not shown in the figure) electrically connected to the control terminal. The distributor is used to limit the connection frame 6 and release the limit of the connection frame 6 when there is a vacant position in the adjacent processing station, so that the connection frame 6 enters the corresponding processing station. The right side of the main support rail 2 is rotatably connected to the guide plate 10. The main support rail 2 adjacent to the left side of the guide plate 10 is fixedly connected with a torsion spring. The main support rail 2 adjacent to the right side of the guide plate 10 contacts and cooperates with it. The torsion spring is only used to reset the adjacent guide plate 10. The left part of the guide plate 10 is fixedly connected with an electromagnet 11, and the electromagnet 11 is electrically connected to the control terminal. The right limit sliding connection of the guide plate 10 is connected to the limit piece 12, the right end of the limit piece 12 is hemispherical, and a limit groove 121 is set on the left side of the main support rail 2, and the limit groove 121 is limited and matched with the adjacent limit piece 12. The depth of the limit groove 121 is greater than the diameter of the upper hemisphere of the limit piece 12, and is used to limit the adjacent guide plate 10 through the limit piece 12 and the adjacent limit groove 121. An initially compressed spring is set between the limit piece 12 and the adjacent guide plate 10, and the left part of the limit piece 12 is fixed with a first magnet 13, and the first magnet 13 cooperates with the magnetic repulsion of the adjacent electromagnet 11.
[0033] Please refer to Figure 3 and Figure 4 A T-shaped rod 14 is fixedly connected to the left side of the limit member 12, and the T-shaped rod 14 is slidably connected to the adjacent guide plate 10. A locking groove 141 is provided in the middle of the right side of the main support rail 2. The T-shaped rod 14 and the adjacent locking groove 141 are limitedly matched to prevent the limit member 12 from protruding from the adjacent guide plate 10 when the guide plate 10 swings.
[0034] Please refer to Figure 3 , Figure 5 and Figure 6 A buffer cylinder 15 is rotatably connected to the upper side of the folding plate 8, and a swing piston rod 16 is sealingly and slidably connected to the buffer cylinder 15. The upper part of the swing piston rod 16 is rotatably connected to the adjacent guide plate 10. A first through hole 161 is provided on the swing piston rod 16 at a position located in the adjacent buffer cylinder 15. Damping fluid is stored in the buffer cylinder 15 to slow down the speed of the swing piston rod 16 moving relative to the adjacent buffer cylinder 15.
[0035] Please refer to Figure 7 and Figure 8 The secondary support rail 9 is provided with a curved portion 901 and an inclined portion 902 from top to bottom, and two symmetrically distributed support rods 17 are fixedly connected to the inclined portion 902. The upper part of the support rod 17 is sealed and rotatably connected to a buffer wheel 18, and the two symmetrically distributed buffer wheels 18 on the same inclined portion 902 are rotatably connected to a buffer belt 19, and equidistant partition blocks 20 are fixedly connected to the buffer belt 19. A buffer ring 21 is connected to the left and right limited sliding in the buffer wheel 18, and a reciprocating thread is provided on the portion of the support rod 17 located in the adjacent buffer wheel 18. The buffer ring 21 is threadedly connected to the adjacent support rod 17, and a second through hole 211 is provided on the buffer ring 21. Damping fluid is stored in the buffer wheel 18.
[0036] When the garments are processed through the distribution production line, the process from the cutting and processing station (cutting the cloth required for processing the specified garments and hanging it on the toothed frame 7) to the sewing processing station (sewing the cloth into finished garments) is subsequently explained. The staff of the cutting and processing station classifies the cloth and hangs it on the toothed frame 7 by means of the fixed plate 701. Then the staff hangs the two rollers 5 corresponding to the toothed frame 7 on the adjacent main support rail 2. The sensor on the main support rail 2 identifies the identification chip on the connecting frame 6. Then the transfer belt 3 drives the L-shaped push rod 4 to move right. The L-shaped push rod 4 gradually contacts the two rollers 5 and pushes the two rollers 5 to roll to the right. The two rollers 5 jointly drive the adjacent connecting frame 6, the adjacent toothed frame 7 and the cloth thereon to move right. When moving to the corresponding sewing processing station, the control terminal controls the current flowing through the electromagnet 11 to weaken, so that the magnetic repulsion of the electromagnet 11 on the adjacent first magnet 13 is weakened, and the limit member 12 moves left under the action of its adjacent spring. Until the spring is reset, the limiter 12 stops moving leftward, at which time the center of the hemisphere of the limiter 12 is located inside the adjacent guide plate 10, but the hemisphere of the limiter 12 protrudes out of the adjacent guide plate 10. As the L-shaped push rod 4 pushes the connecting frame 6 to move rightward, when both rollers 5 move to the upper side of the guide plate 10, the guide plate 10 rotates clockwise (the rotation and swinging perspectives in this article are all from the front) under the action of the gravity of the two rollers 5, the adjacent connecting frame 6, the adjacent toothed frame 7 and the fabric thereon. The L-shaped push rod 4 gradually separates from the two rollers 5, and then the L-shaped push rod 4 continues to move with the transfer belt 3. The guide plate 10 drives the adjacent limit member 12 to swing, and the hemisphere of the limit member 12 is squeezed by the adjacent limit groove 121, so that the limit member 12 overcomes the magnetic repulsion of the adjacent electromagnet 11 to the adjacent first magnet 13 and slides into the adjacent guide plate 10.
[0037] When the two rollers 5 move to the adjacent guide plates 10, if the cloth on the toothed frame 7 falls off during the movement along the main support rail 2, the two rollers 5 and the parts thereon will not have enough pressure on the adjacent guide plates 10, and the adjacent limit members 12 cannot be pushed to move into the adjacent guide plates 10. At this time, the L-shaped push rod 4 continues to push the two rollers 5 to the right, preventing the empty toothed frame 7 from entering the processing station, thereby saving operating steps and improving processing efficiency.
[0038] When the stopper 12 slides into the adjacent guide plate 10, the stopper 12 drives the adjacent T-shaped rod 14 to slide, so that the left end of the T-shaped rod 14 gradually enters the adjacent locking groove 141, until the stopper 12 completely enters the adjacent guide plate 10, the left end of the adjacent T-shaped rod 14 completely enters the adjacent locking groove 141, and as the guide plate 10 swings clockwise, the guide plate 10 drives the adjacent T-shaped rod 14 to swing, so that the left end of the T-shaped rod 14 moves along the adjacent The locking groove 141 slides, and the adjacent T-shaped rod 14 is limited by the locking groove 141 (at this time, the limiting member 12 is just detached from the main support rail 2 adjacent to its right side), and the T-shaped rod 14 limits the adjacent limiting member 12 to prevent the limiting member 12 from protruding out of the adjacent guide plate 10 due to the magnetic repulsion of the adjacent electromagnet 11 and the adjacent first magnet 13 after being detached from the adjacent main support rail 2, thereby affecting the docking of the adjacent guide plate 10 with the adjacent secondary support rail 9.
[0039] When the limiting member 12 slides into the adjacent guide plate 10, the limiting member 12 gradually disengages from the adjacent limiting groove 121 and releases the limiting of the adjacent guide plate 10. At this time, the guide plate 10 continues to swing clockwise until the lower side of the guide plate 10 is in contact with the upper right side of the adjacent folding plate 8 and stops. At this time, the guide plate 10 is docked with the adjacent secondary support rail 9, and then the two rollers 5 roll along the guide plate 10 and the adjacent secondary support rail 9 under the action of their gravity, and finally enter the corresponding sewing processing station.
[0040] During the clockwise swinging of the guide plate 10, if the swinging speed of the guide plate 10 is fast, when the guide plate 10 swings into place, the impact force exerted on the connecting frame 6 thereon is relatively large, which may cause the cloth on the toothed frame 7 to fall off or the two rollers 5 to separate from the guide plate 10. To prevent the above two situations from occurring, when the guide plate 10 swings clockwise, the guide plate 10 squeezes the adjacent swinging piston rod 16 into the adjacent buffer cylinder 15, and the damping fluid in the buffer cylinder 15 flows through the adjacent first through hole 161, thereby slowing down the swinging speed of the adjacent guide plate 10.
[0041] When the two rollers 5 roll onto the adjacent secondary support rails 9, the adjacent guide plate 10 swings counterclockwise under the action of its adjacent torsion spring and re-joins with the adjacent main support rail 2. During the counterclockwise swinging of the guide plate 10, the guide plate 10 drives the adjacent T-shaped rod 14 to swing, and the left end of the T-shaped rod 14 moves along the adjacent locking groove 141. When the hemisphere of the adjacent limiting member 12 contacts the adjacent main support rail 2, the locking groove 141 releases the limit on the adjacent T-shaped rod 14. At this time, the limiting member 12 has a tendency to move right under the action of the magnetic repulsion force of the adjacent electromagnet 11 and the adjacent first magnet 13, until the guide plate 10 and the adjacent main support are rejoined. When the rails 2 are docked, the limit piece 12 corresponds to the adjacent limit groove 121. At this time, the limit piece 12 protrudes from the adjacent guide plate 10 and enters the adjacent limit groove 121 to limit the adjacent guide plate 10; if the cloth on the upper and lower toothed frames 7 of the main support rail 2 does not need to be transported to the sewing processing station, the control terminal notifies the current flowing through the adjacent electromagnet 11 to increase, so that the magnetic repulsion of the electromagnet 11 on the adjacent first magnet 13 increases, and pushes the adjacent first magnet 13 and the adjacent limit piece 12 to move right, until the hemisphere of the adjacent limit piece 12 completely enters the adjacent limit groove 121, and the adjacent guide plate 10 is limited again.
[0042] When the two rollers 5 roll along the adjacent secondary support rails 9 under the action of their own gravity, the two rollers 5 gradually move to the adjacent inclined parts 902. In order to save space inside the garment processing factory, the inclination angle of the inclined part 902 is usually set to be larger, so that the two rollers 5 can roll faster along the inclined part 902. When the two rollers 5 are suddenly limited by the adjacent dispenser during the rolling process, the cloth on the adjacent toothed frames 7 of the two rollers 5 will shake violently, which may easily cause the cloth on the toothed frames 7 to fall off. The solution is as follows: when the two rollers 5 enter the adjacent inclined parts 902, the connecting frame 6 contacts the adjacent buffer belt 19 and is limited by the dividing block 20 on the buffer belt 19. Then, the connecting frame 6 squeezes the adjacent dividing block 20 downward under the action of the gravity of the parts thereon, and the dividing block 20 drives the two adjacent buffer wheels 18 to rotate through the adjacent buffer belt 19. The two buffer wheels 18 drive the buffer rings 21 therein to rotate. The buffer rings 21 are threadedly matched with the adjacent support rods 17 and move back and forth along the adjacent buffer wheels 18. The damping fluid in the buffer wheel 18 flows through the adjacent second through holes 211 to slow down the movement speed of the adjacent buffer rings 21, thereby slowing down the rotation speed of the adjacent buffer wheels 18, preventing the connecting frame 6 from sliding too fast on the adjacent inclined portion 902, causing the cloth on the toothed frame 7 to shake violently and fall off when the connecting frame 6 is limited by the adjacent distributor. When the toothed frame 7 moves to the end of the adjacent inclined portion 902, the connecting frame 6 is limited by the adjacent distributor until there is a vacant position in the sewing processing station. The distributor releases the limit on the connecting frame 6, allowing the parts on the two rollers 5 to continue to move under the action of gravity and enter the sewing processing station, and the cloth on the toothed frame 7 is sewn into finished garments through the sewing processing station.
[0043] It should be noted that only in this embodiment, the connection frame 6 and the adjacent toothed frame 7 are fixedly connected. In subsequent embodiments, the connection frame 6 and the adjacent toothed frame 7 are rotationally connected. Meanwhile, only in this embodiment, the L-shaped push rod 4 pushes the adjacent roller 5 to move. In subsequent embodiments, the two are not in contact.
[0044] When hanging cloth or sewn clothes on the hanging, since the center of gravity of the cloth or clothes is not directly below the main rail, the hanging is tilted as a whole when sliding on the main rail, and it is more likely to derail when the hanging is impacted.
[0045] Example 2: Based on Example 1, please refer to Fig. 9, and also includes equidistant rollers 22, which are limited and rotatably connected to adjacent L-shaped push rods 4, and the rollers 22 are in contact and cooperate with two adjacent and symmetrically distributed rollers 5, which are used to reduce the resistance of the L-shaped push rod 4 in the process of pushing the two adjacent rollers 5 to roll, and the connecting frame 6 is limited and rotatably connected to the adjacent toothed frame 7, and the front side of the upper part of the connecting frame 6 is provided with an inclined surface, and the L-shaped push rod 4 is squeezed and cooperated with the inclined surface of the adjacent connecting frame 6, which is used to straighten the adjacent connecting frame 6 when the L-shaped push rod 4 approaches the adjacent connecting frame 6.
[0046] Please refer to Figure 9-11 A second magnet 23 is fixedly connected to the front part of the L-shaped push rod 4, and a third magnet 24 is slidably connected to the upper part of the connecting frame 6 front and back. The third magnet 24 is magnetically attracted to and cooperates with the adjacent second magnet 23. A traction rope 25 is fixedly connected to the front side of the third magnet 24, and a spring is fixedly connected between the front side of the third magnet 24 and the adjacent connecting frame 6. Two pull ropes 26 symmetrically distributed front and back are fixedly connected to the upper side of the toothed frame 7. The two adjacent pull ropes 26 are fixedly connected to each other, and the lower end of the traction rope 25 is fixedly connected to the connection point of the two adjacent pull ropes 26. The lower part of the connecting frame 6 is rotatably connected to a supporting wheel 27. The two adjacent pull ropes 26 are jointly wound around the adjacent support wheels 27. The traction rope 25 passes through the adjacent connecting frame 6. The connection points of the two pull ropes 26 and the adjacent toothed frames 7 are located in the same plane as the rotation axis of the adjacent toothed frames 7, which are used to make the pull ropes 26 initially in a taut state. As the toothed frame 7 rotates relative to the adjacent connecting frame 6, the pull ropes 26 become relaxed.
[0047] Please refer to Fig.10 and Fig.12 The lower part of the connecting frame 6 is fixedly connected with an arcuate piston rod 28 which is sealed and slidably connected to the adjacent toothed frame 7. A buffer chamber 281 is provided in the toothed frame 7. The arcuate piston rod 28 is located in the adjacent buffer chamber 281 for sealed sliding. Damping fluid is stored in the buffer chamber 281. A third through hole 282 is provided on the arcuate piston rod 28. The third through hole 282 is located in the adjacent buffer chamber 281. In the vertical plane, the angle between the two ends of the buffer chamber 281 and the line connecting the rotation axis of the adjacent toothed frame 7 is between 60° and 80° (60° is taken here), which is convenient for the pull rope 26 to pull the adjacent toothed frame 7 to rotate and reset.
[0048] When the toothed frame 7 is located at the cutting and processing station, the adjacent traction rope 25 and the two adjacent pull ropes 26 are in a taut state due to the elastic force of the spring adjacent to the third magnet 24. At this time, the angle between the toothed frame 7 and the connecting frame 6 is 90°, which is convenient for the staff to hang the cut cloth on the toothed frame 7, and then hang the two rollers 5 on the adjacent main support rail 2. When the L-shaped push rod 4 drives the roller 22 thereon to contact the two rollers 5, the L-shaped push rod 4 squeezes the inclined surface of the connecting frame 6 to keep the connecting frame 6 roughly in a vertical state, and then the L-shaped push rod 4 pushes the two rollers 5 to the right through the adjacent roller 22. At the same time, the adjacent second magnet 23 attracts the third magnet 24 to move forward through the magnetic attraction force, and compresses the spring adjacent to the third magnet 24 to make the adjacent traction rope 25 in a relaxed state. At this time, the toothed frame 7 is affected by the cloth on it, and the toothed frame 7 swings relative to the adjacent connecting frame 6, so that the center of gravity of the toothed frame 7 and the cloth on it approaches directly below the adjacent main support rail 2.
[0049] When the toothed frame 7 swings relative to the adjacent connecting frame 6, the toothed frame 7 drives the two adjacent pull ropes 26 to move, and the two pull ropes 26 jointly drive the lower ends of the adjacent traction ropes 25 to move along the adjacent support wheels 27. By making the toothed frame 7 swing relative to the adjacent connecting frame 6, the center of gravity of the cloth or clothing on the toothed frame 7 is brought close to the bottom of the adjacent main support rail 2, so that the squeezing forces of the two adjacent rollers 5 of the toothed frame 7 on the adjacent main support rail 2 are equal, thereby reducing the probability of the adjacent rollers 5 being derailed due to the impact of the toothed frame 7.
[0050] During the swinging process of the toothed frame 7 relative to the adjacent connecting frame 6, the toothed frame 7 drives the adjacent buffer chamber 281 and the damping fluid therein to swing relative to the adjacent arc-shaped piston rod 28, so that the damping fluid in the buffer chamber 281 flows through the adjacent third through hole 282, thereby slowing down the swinging speed of the toothed frame 7 relative to the adjacent connecting frame 6, thereby preventing the connecting frame 6 from shaking violently due to the swinging between the two, thereby affecting the stability of the two rollers 5 moving on the adjacent main support rails 2.
[0051] As the roller 5 moves along the main support rail 2 when it moves to the secondary support rail 9, the roller 5 disengages from the adjacent roller 22. At this time, the third magnet 24 releases the magnetic attraction with the adjacent second magnet 23. The third magnet 24 moves backward under the action of its adjacent spring. The third magnet 24 pulls the adjacent traction rope 25, thereby pulling the two adjacent pull ropes 26 to reset. The two adjacent pull ropes 26 jointly pull the adjacent toothed frame 7 to swing and reset relative to the adjacent connecting frame 6, so that the staff of the processing station can remove the cloth on the toothed frame 7.
[0052] Finally, it should be noted that: Obviously, the above embodiments are only examples for clearly explaining the present application, and are not intended to limit the implementation methods. For ordinary technicians in the relevant field, other different forms of changes or modifications can be made based on the above description. It is not necessary and impossible to list all the implementation methods here. The obvious changes or modifications derived from this are still within the scope of protection of this application.
Claims
1. An intelligent distribution production line for garment processing, comprising a mounting plate (1), wherein the mounting plate (1) is fixedly connected to an equidistant main support rail (2), a transfer belt (3) is slidably connected to the mounting plate (1), and the transfer belt (3) is fixedly connected to an equidistant L-shaped push rod (4), and symmetrical and equidistant rollers (5) are commonly arranged on the upper side of the equidistant main support rail (2), and the symmetrically distributed rollers (5) are commonly rotatably connected to a connecting frame (6), and the rollers (5) are in contact and cooperation with adjacent L-shaped push rods (4), and a toothed frame (7) is arranged on the lower side of the connecting frame (6), and a fixed plate (701) of a linear array is rotatably connected to the lower side of the toothed frame (7), and a torsion spring is fixedly connected between the two, characterized in that: The invention also comprises equidistant folding plates (8), wherein the folding plates (8) are fixedly connected to the lower side of the adjacent main support rail (2), the lower part of the folding plates (8) is fixedly connected to a secondary support rail (9), the main support rail (2) is rotatably connected to a guide plate (10) at a position close to the folding plates (8), a torsion spring is fixedly connected between the guide plate (10) and the main support rail (2) close to its rotation axis, and the guide plate (10) is fixedly connected to the main support rail (2) far from its rotation axis. The support rail (2) is in contact with the guide plate (10), an electromagnet (11) is fixedly connected inside the guide plate (10) and is limitedly slidably connected to a limit piece (12), a limit groove (121) is provided on the main support rail (2) and is limitedly matched with the adjacent limit piece (12), a spring is provided between the limit piece (12) and the adjacent guide plate (10), and the limit piece (12) is fixedly connected with a first magnet (13) that is matched with the magnetic repulsion force of the adjacent electromagnet (11); The position of the limiting member (12) close to the adjacent limiting groove (121) is hemispherical, and the depth of the limiting groove (121) is greater than the diameter of the upper hemispherical shape of the limiting member (12); A T-shaped rod (14) slidably connected to the adjacent guide plate (10) is fixedly connected to the side of the limiting member (12) away from the adjacent limiting groove (121); a locking groove (141) is provided at a position of the main support rail (2) close to the T-shaped rod (14); the T-shaped rod (14) is limitedly matched with the adjacent locking groove (141).
2. According to claim 1, the intelligent distribution production line for garment processing is characterized in that: The upper side of the folding plate (8) is rotatably connected to a buffer cylinder (15), and the buffer cylinder (15) is sealingly and slidably connected to a swing piston rod (16). The swing piston rod (16) is rotatably connected to the adjacent guide plate (10). A first through hole (161) is provided on the swing piston rod (16), and the first through hole (161) is located in the adjacent buffer cylinder (15). Damping fluid is stored in the buffer cylinder (15).
3. The intelligent distribution production line for garment processing according to claim 1, characterized in that: The secondary support rail (9) is provided with a curved portion (901) and an inclined portion (902); the inclined portion (902) is fixedly connected with symmetrically distributed support rods (17); the support rod (17) is sealed and rotatably connected with a buffer wheel (18) on a side away from the adjacent inclined portion (902); the portion of the support rod (17) located in the adjacent buffer wheel (18) is provided with a reciprocating thread; the buffer wheels (18) symmetrically distributed on the same inclined portion (902) are rotatably connected with a buffer belt (19); the buffer belt (19) is fixedly connected with equidistant partition blocks (20); a buffer ring (21) is limitedly slidably connected in the buffer wheel (18); the buffer ring (21) is threadedly connected to the adjacent support rod (17); a second through hole (211) is provided on the buffer ring (21); damping fluid is stored in the buffer wheel (18).
4. The intelligent distribution production line for garment processing according to claim 1, characterized in that: It also includes equally spaced rollers (22), wherein the rollers (22) are connected to the adjacent L-shaped push rods (4) in a limited rotation manner, the rollers (22) are in contact and cooperation with the adjacent and symmetrically distributed rollers (5), and the connecting frame (6) is connected to the adjacent toothed frame (7) in a limited rotation manner.
5. The intelligent distribution production line for garment processing according to claim 4, characterized in that: The connecting frame (6) is provided with an inclined surface on one side away from the mounting plate (1), and the L-shaped push rod (4) is pressed and matched with the inclined surface adjacent to the connecting frame (6).
6. The intelligent distribution production line for garment processing according to claim 5, characterized in that: A second magnet (23) is fixedly connected to the position of the L-shaped push rod (4) away from the mounting plate (1); a third magnet (24) is slidably connected to the side of the connecting frame (6) close to the mounting plate (1); the third magnet (24) is magnetically matched with the adjacent second magnet (23); a traction rope (25) is fixedly connected to the side of the third magnet (24) away from the mounting plate (1); a spring is fixedly connected between the side of the third magnet (24) away from the mounting plate (1) and the adjacent connecting frame (6); and the toothed frame (7) A symmetrically distributed pull rope (26) is fixedly connected to one side close to the adjacent connecting frame (6); the adjacent and symmetrically distributed pull ropes (26) are fixedly connected to each other; the traction rope (25) is fixedly connected to the connection between the adjacent and symmetrically distributed pull ropes (26); the connecting frame (6) is rotatably connected to a support wheel (27) close to the adjacent and symmetrically distributed pull ropes (26); the adjacent and symmetrically distributed pull ropes (26) are commonly wound around the adjacent support wheel (27); and the traction rope (25) passes through the adjacent connecting frame (6).
7. The intelligent distribution production line for garment processing according to claim 6, characterized in that: The connecting frame (6) is fixedly connected with an arcuate piston rod (28) at a position close to the adjacent toothed frame (7); the arcuate piston rod (28) is sealingly and slidably connected to the adjacent toothed frame (7); a buffer chamber (281) is provided in the toothed frame (7); the arcuate piston rod (28) is located in the adjacent buffer chamber (281) for sealing and sliding; damping fluid is stored in the buffer chamber (281); a third through hole (282) is provided on the arcuate piston rod (28); the third through hole (282) is located in the adjacent buffer chamber (281).
8. The intelligent distribution production line for garment processing according to claim 7, characterized in that: In a vertical plane, the angle between the two ends of the buffer cavity (281) and the line connecting the rotation axes of the adjacent toothed racks (7) is between 60° and 80°.
Citation Information
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