Bonding machine for textile production
By designing the material collection bracket, fabric induction unit, drive unit and positioning unit in the textile production bonding machine, the automatic bearing and spreading of fabrics is realized, and the problem of cumbersome collection of discharge fabrics in the prior art is solved, and the operation convenience and efficiency are improved.
Patent Information
- Application Number
- CN202421893240.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-07
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-08-07
AI Technical Summary
In textile production, the collection steps of the discharge fabric of the existing adhesive machine are cumbersome and laborious, and two operators need to cooperate with each other, so there is room for improvement.
A bonding machine for textile production is designed, using a material collection bracket, a fabric induction unit, a driving unit and a positioning unit. Through the coordinated work of these units, the automatic bearing and spreading of the fabric is realized.
It realizes automatic handling and spreading of fabrics, reduces the steps of manual collection and organization, saves manpower and time, and improves operation convenience.
Smart Images

Figure CN222960856U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of textile processing technologies, and in particular, to a bonding machine for textile production. Background Art
[0002] A bonding machine is an essential device for bonding and laminating multiple layers of fabrics and hot-rolling bonding in the textile manufacturing industry. After different fabrics and different substrates are stacked in multiple layers with adhesives such as glue, they enter the bonding machine and are thermally bonded through the hot-pressing device inside the bonding machine.
[0003] In the prior art, a common hot-melt type bonding machine mainly includes a frame, on which a feeding belt, a hot-pressing device, a discharging belt, etc. are installed. During the process of textile production and processing, an operator places the stacked fabrics on the feeding belt on the frame, and the feeding belt conveys the fabrics to pass through the hot-pressing device. After the fabrics are hot-pressed and bonded, they are sent out via the discharging belt.
[0004] In the actual process of textile production and processing, it is necessary to continuously perform the operation of sticking the lining on a large number of fabrics using a bonding machine. During the use of the bonding machine, two operators need to cooperate with each other: one operator places the fabrics to be bonded at the feeding port, and the other operator removes and collects the bonded fabrics from the discharging belt at the discharging port. However, the steps of manually removing and collecting the fabrics are relatively cumbersome and laborious, and there is room for improvement. Utility Model Content
[0005] In order to improve the convenience for an operator to collect the fabrics bonded by the bonding machine, the present application provides a bonding machine for textile production.
[0006] The bonding machine for textile production provided by the present application adopts the following technical solutions:
[0007] A bonding machine for textile production includes a material receiving bracket, which is fixedly connected to the frame of the bonding machine, and the material receiving bracket is located at the discharging end of the discharging belt of the bonding machine. An installation seat is slidably installed on the material receiving bracket, and a carrier is detachably installed on the installation seat. The carrier is located below the discharging belt; and:
[0008] A fabric sensing unit, fixedly installed on the frame;
[0009] A driving unit, installed between the installation seat and the material receiving bracket, is signal-connected to the signal output end of the fabric sensing unit, and is used to drive the installation seat to slide in a direction away from the discharging belt and then drive the installation seat to reset;
[0010] The positioning unit is fixedly installed on the mounting base and is signal-connected to the signal output end of the fabric sensing unit, and is used to fix the end of the fabric on the carrier.
[0011] By adopting the above technical solution, when an operator uses a bonding machine to bond and process fabrics, the fabrics sent out by the feeding belt slide towards the carrier. The fabric sensing unit senses the sent fabrics, and the driving unit drives the mounting base and the carrier to slide out to receive the fabrics. Subsequently, the positioning unit fixes the end of the fabric on the carrier. At the same time, the driving unit synchronously drives the mounting base and the carrier to move away from the discharging belt so that the fabrics are completely laid out on the carrier, achieving the technical effects of automatically receiving fabrics and automatically spreading fabrics. During the process of using the bonding machine, there is no need to additionally arrange manpower to collect and sort the sent fabrics at the discharging belt, effectively saving manpower and time, and improving the convenience of the operator using the bonding machine.
[0012] Preferably, the fabric sensing unit includes an infrared pair sensor located between the discharging belt and the receiving bracket. The infrared pair sensor includes a transmitting end and a receiving end fixedly installed on the machine frame;
[0013] The signal output end of the receiving end is signal-connected to a single-chip microcomputer, and the signal output end of the single-chip microcomputer is signal-connected to the signal output ends of the driving unit and the positioning unit.
[0014] By adopting the above technical solution, when the fabric is sent out by the discharging belt and flows between the transmitting end and the receiving end, the infrared rays emitted by the transmitting end cannot be received by the receiving end, and the receiving end outputs a high-level signal. The single-chip microcomputer recognizes the high-level signal and determines that the fabric is sent out. The single-chip microcomputer can control the driving unit to drive the carrier to send out to receive the fabric, and control the positioning unit to position the end of the fabric on the carrier after the carrier has been sent out for a set time. When the fabric is completely sent out, the infrared rays emitted by the transmitting end can be received by the receiving end, and the receiving end outputs a low-level signal. The single-chip microcomputer recognizes the low-level signal, controls the positioning unit to release the fabric, controls the driving unit to drive the mounting base and the carrier to slide to the initial position, and prepares for collecting the fabric next time.
[0015] Preferably, the driving unit includes transmission racks fixedly installed on both sides of the receiving bracket. A driving shaft rod is rotatably installed at the bottom of the mounting base. Two driving gears are respectively fixedly installed at both ends of the driving shaft rod, and the two driving gears are respectively meshed with the two transmission racks;
[0016] A servo motor is fixedly installed at the bottom of the mounting base. The servo motor is connected to the driving shaft rod through a coupling, and the signal input end of the servo motor is signal-connected to the signal output end of the single-chip microcomputer.
[0017] By adopting the above technical solution, the driving shaft rod is driven by a servo motor to rotate in different directions, which can synchronously drive the driving gears at both ends of the driving shaft rod to rotate, and drive the driving mount and the carrier to slide in different directions on the material receiving bracket.
[0018] Preferably, the mounting seat includes a bottom plate, the positioning unit includes two telescopic cylinders, the cylinder bodies of the two telescopic cylinders are respectively fixedly installed at the bottom of the bottom plate, the cylinder shaft ends of the two telescopic cylinders are respectively fixedly connected with positioning plates, the positioning plates are erected above the carrier, and the signal input ends of the two telescopic cylinders are in signal connection with the signal output end of the single-chip microcomputer.
[0019] By adopting the above technical solution, when the telescopic cylinder retracts the cylinder shaft, the positioning plate at the end of the telescopic cylinder can be lowered to abut against the fabric on the carrier, and the end of the fabric on the carrier can be fixed, which is convenient for the fabric to be spread out during the sliding process of the carrier.
[0020] Preferably, the mounting seat is provided with a mounting groove adapted to the carrier, and baffles are respectively fixedly connected to both ends of the carrier;
[0021] Avoidance grooves adapted to the two positioning plates are respectively formed on the two baffles.
[0022] By adopting the above technical solution, the baffle reduces the occurrence of the fabric falling from the carrier, and the avoidance grooves on the baffle facilitate the sliding in and out of the positioning plate.
[0023] Preferably, mounting plates are respectively fixedly connected to both sides of the mounting seat, connecting plates are respectively fixedly connected to both sides of the carrier, and connection holes adapted to the mounting plates are respectively formed on the two connecting plates.
[0024] By adopting the above technical solution, through the mutual cooperation and use between the mounting plate and the connecting plate, the position of the carrier on the mounting seat can be restricted, and the situation that the carrier deviates or falls off the mounting seat can be reduced.
[0025] In summary, the bonding machine for textile production of the present application includes at least one of the following beneficial technical effects:
[0026] 1. When an operator uses a bonding machine to process fabrics by bonding, the fabric sent out by the feeding belt slides onto the carrier. The fabric sensing unit senses the sent fabric, and the driving unit drives the mounting seat and the carrier to slide out to receive the fabric. Subsequently, the positioning unit fixes the end of the fabric on the carrier. At the same time, the driving unit synchronously drives the mounting seat and the carrier to move away from the discharging belt so that the fabric is completely laid out on the carrier. The technical effects of automatically receiving the fabric and automatically spreading the fabric can be achieved. During the use of the bonding machine, there is no need to additionally allocate manpower to collect and arrange the sent fabric at the discharging belt, effectively saving manpower and time and improving the convenience of the operator using the bonding machine;
[0027] 2. By the mutual cooperation and use between the mounting plate and the connecting plate, the position of the carrier on the mounting seat can be restricted, reducing the occurrence of the carrier shifting or falling off the mounting seat. Description of the Drawings
[0028] Figure 1 is a schematic diagram showing the overall structure of the bonding machine in the embodiment of the present application.
[0029] Figure 2 is a schematic diagram showing the overall structure of the material receiving bracket in the embodiment of the present application.
[0030] Figure 3 is a schematic diagram showing the overall structure of the driving unit in the embodiment of the present application.
[0031] Description of the Reference Numerals: 1. Material receiving bracket; 2. Machine frame; 3. Mounting seat; 31. Bottom plate; 32. Mounting groove; 33. Mounting plate; 4. Carrier; 41. Baffle; 42. Avoidance groove; 43. Connecting plate; 44. Connecting hole; 5. Fabric sensing unit; 6. Driving unit; 61. Transmission rack; 62. Driving shaft rod; 63. Driving gear; 64. Servo motor; 7. Positioning unit; 71. Telescopic cylinder; 72. Positioning plate. Detailed Description of the Embodiment
[0032] The following further describes the present application in detail Figures 1 - 3 with reference to the attached drawings.
[0033] Embodiment
[0034] The embodiment of the present application discloses a bonding machine for textile production. Referring to Figures 1 - 3 , it mainly includes a material receiving bracket 1, and the material receiving bracket 1 is fixedly connected to the machine frame 2 of the bonding machine. The material receiving bracket 1 is located at the discharging end of the discharging belt of the bonding machine. A mounting seat 3 is slidably mounted on the material receiving bracket 1, and a carrier 4 is detachably mounted on the mounting seat 3. The carrier 4 is located below the discharging belt.
[0035] And: a fabric induction unit 5, fixedly installed on the frame 2; a driving unit 6, installed between the mounting base 3 and the material receiving bracket 1, signal-connected to the signal output end of the fabric induction unit 5, and used to drive the mounting base 3 to slide away from the discharge belt and then drive the mounting base 3 to reset; a positioning unit 7, fixedly installed on the mounting base 3, signal-connected to the signal output end of the fabric induction unit 5, and used to fix the end of the fabric on the carrier 4.
[0036] When an operator uses a bonding machine to bond the fabric, the fabric sent out by the feeding belt slides towards the carrier 4. The fabric induction unit 5 senses the sent fabric, and the driving unit 6 drives the mounting base 3 and the carrier 4 to slide out to receive the fabric. Subsequently, the positioning unit 7 fixes the end of the fabric on the carrier 4. At the same time, the driving unit 6 synchronously drives the mounting base 3 and the carrier 4 to move away from the discharge belt so that the fabric is completely laid out on the carrier 4. The technical effects of automatically receiving the fabric and automatically spreading the fabric can be achieved. During the use of the bonding machine, there is no need to additionally arrange manpower to collect and sort the sent fabric at the discharge belt, effectively saving manpower and time, and improving the convenience of the operator using the bonding machine.
[0037] In the embodiment of the present application, the fabric induction unit 5 includes an infrared pair sensor located between the discharge belt and the material receiving bracket 1. The infrared pair sensor includes a transmitting end and a receiving end fixedly installed on the frame 2; the signal output end of the receiving end is signal-connected to a single-chip microcomputer, and the signal output end of the single-chip microcomputer is signal-connected to the signal output ends of the driving unit 6 and the positioning unit 7.
[0038] When the fabric is sent out by the discharge belt and flows between the transmitting end and the receiving end, the infrared rays emitted by the transmitting end cannot be received by the receiving end, and the receiving end outputs a high-level signal. The single-chip microcomputer recognizes the high-level signal and determines that the fabric is sent out. The single-chip microcomputer can control the driving unit 6 to drive the carrier 4 to send out to receive the fabric, and control the positioning unit 7 to position the end of the fabric on the carrier 4 after the carrier 4 has been sent out for a set time.
[0039] When the fabric is completely sent out, the infrared rays emitted by the transmitting end can be received by the receiving end, and the receiving end outputs a low-level signal. The single-chip microcomputer recognizes the low-level signal, controls the positioning unit 7 to release the fabric, controls the driving unit 6 to drive the mounting base 3 and the carrier 4 to slide to the initial position, and prepares for the next collection of the fabric.
[0040] Wherein, two mounting rods are fixedly installed on the frame 2. The two mounting rods are located at the discharge end of the discharge belt. After the fabric is sent out by the discharge belt, it flows between the two mounting rods towards the carrier 4. The transmitting end and the receiving end are respectively fixedly installed on the two mounting rods by screws.
[0041] It should be noted that in the embodiment of the present application, the single-chip microcomputer is pre-loaded with a program for identifying high and low levels, and the single-chip microcomputer delays the control of the driving unit 6 and the positioning unit 7 to prevent the positioning unit 7 from colliding with the rack 2.
[0042] Referring to Figure 2 and Figure 3 , the driving unit 6 includes transmission racks 61 fixedly installed on both sides of the material receiving bracket 1. A driving shaft rod 62 is rotatably installed at the bottom of the mounting seat 3. Two driving gears 63 are respectively fixedly installed at both ends of the driving shaft rod 62. The two driving gears 63 are respectively engaged with the two transmission racks 61. A servo motor 64 is fixedly installed at the bottom of the mounting seat 3. The servo motor 64 is connected to the driving shaft rod 62 through a coupling. The signal input end of the servo motor 64 is signal-connected to the signal output end of the single-chip microcomputer.
[0043] By driving the driving shaft rod 62 to rotate in different directions through the servo motor 64, the driving gears 63 at both ends of the driving shaft rod 62 can be synchronously driven to rotate, and the mounting seat 3 and the carrier 4 can be driven to slide in different directions on the material receiving bracket 1.
[0044] Referring to Figure 2 , the mounting seat 3 includes a bottom plate 31. The positioning unit 7 includes two telescopic cylinders 71. The cylinders of the two telescopic cylinders 71 are respectively fixedly installed at the bottom of the bottom plate 31. The cylinder shaft ends of the two telescopic cylinders 71 are respectively fixedly connected with positioning plates 72. The positioning plates 72 are arranged above the carrier 4. The signal input ends of the two telescopic cylinders 71 are signal-connected to the signal output end of the single-chip microcomputer.
[0045] When the telescopic cylinder 71 retracts its cylinder shaft, the positioning plate 72 at the end of the telescopic cylinder 71 can be moved down to abut against the fabric on the carrier 4, and the end of the fabric on the carrier 4 can be fixed, which is convenient for the fabric to spread out during the sliding process of the carrier 4.
[0046] Referring to Figure 2 , an installation groove 32 adapted to the carrier 4 is formed on the mounting seat 3. Baffles 41 are respectively fixedly connected to both ends of the carrier 4. Avoidance grooves 42 adapted to the two positioning plates 72 are respectively formed on the two baffles 41.
[0047] The baffle 41 reduces the occurrence of the fabric falling from the carrier 4. The avoidance groove 42 on the baffle 41 facilitates the sliding in and out of the positioning plate 72.
[0048] Referring to Figure 2 , mounting plates 33 are respectively fixedly connected to both sides of the mounting seat 3. Connection plates 43 are respectively fixedly connected to both sides of the carrier 4. Connection holes 44 adapted to the mounting plates 33 are respectively formed on the two connection plates 43.
[0049] By the mutual cooperation and use between the mounting plate 33 and the connecting plate 43, the position of the carrier 4 on the mounting seat 3 can be restricted, reducing the occurrence of the carrier 4 shifting or falling off the mounting seat 3.
[0050] The implementation principle of an adhesive machine for textile production in an embodiment of the present application is as follows: When an operator uses the adhesive machine to perform adhesive processing on the fabric, the fabric sent out by the feeding belt slides towards the carrier 4. The fabric sensing unit 5 senses the sent fabric, and the driving unit 6 drives the mounting seat 3 and the carrier 4 to slide out to receive the fabric. Subsequently, the positioning unit 7 fixes the end of the fabric on the carrier 4. At the same time, the driving unit 6 synchronously drives the mounting seat 3 and the carrier 4 to move away from the discharging belt direction so that the fabric is completely laid out and placed on the carrier 4, achieving the technical effects of automatically receiving the fabric and automatically spreading the fabric. During the use of the adhesive machine, there is no need to additionally arrange manpower to collect and sort the sent fabric at the discharging belt, effectively saving manpower and time, and improving the convenience of the operator using the adhesive machine.
[0051] The above are all preferred embodiments of the present application. Without restricting the protection scope of the present application based on this, therefore: Any equivalent changes made according to the structure, shape, and principle of the present application shall be covered within the protection scope of the present application.
Claims
1. A fusing machine for textile production, characterized in that: The invention comprises a material receiving bracket (1), wherein the material receiving bracket (1) is fixedly connected to a frame (2) of a bonding machine, and the material receiving bracket (1) is located at the discharge end of the discharge belt of the bonding machine, and a mounting seat (3) is slidably mounted on the material receiving bracket (1), and a carrier (4) is detachably mounted on the mounting seat (3), and the carrier (4) is located below the discharge belt; as well as: A cloth sensing unit (5) is fixedly mounted on the frame (2); A driving unit (6) is installed between the mounting seat (3) and the material receiving bracket (1), and is connected to the signal output end of the cloth sensing unit (5), and is used to drive the mounting seat (3) to slide in a direction away from the material discharging belt and then drive the mounting seat (3) to reset; A positioning unit (7) is fixedly mounted on the mounting seat (3) and is signal-connected to the signal output end of the cloth sensing unit (5) and is used to fix the end of the cloth on the carrier (4).
2. A fusing machine for textile production according to claim 1, characterized in that: The cloth sensing unit (5) comprises an infrared radiation sensor located between the discharging belt and the receiving bracket (1), and the infrared radiation sensor comprises a transmitting end and a receiving end fixedly mounted on the frame (2); The signal output end of the receiving end is signal-connected to a single-chip microcomputer, and the signal output end of the single-chip microcomputer is signal-connected to the signal output ends of the driving unit (6) and the positioning unit (7).
3. A fusing machine for textile production according to claim 2, characterized in that: The driving unit (6) comprises transmission racks (61) fixedly mounted on both sides of the material receiving bracket (1); a driving shaft (62) is rotatably mounted on the bottom of the mounting seat (3); two driving gears (63) are respectively fixedly mounted on both ends of the driving shaft (62); and the two driving gears (63) are respectively meshed with the two transmission racks (61); A servo motor (64) is fixedly mounted on the bottom of the mounting seat (3); the servo motor (64) is connected to the driving shaft (62) via a coupling; and a signal input end of the servo motor (64) is signal-connected to a signal output end of the single-chip microcomputer.
4. A fusing machine for textile production according to claim 3, characterized in that: The mounting seat (3) comprises a base plate (31), and the positioning unit (7) comprises two telescopic cylinders (71), the cylinder bodies of the two telescopic cylinders (71) are respectively fixedly mounted on the bottom of the base plate (31), the cylinder shaft ends of the two telescopic cylinders (71) are respectively fixedly connected with positioning plates (72), the positioning plates (72) are mounted above the carrier (4), and the signal input ends of the two telescopic cylinders (71) are signal-connected to the signal output ends of the single-chip microcomputer.
5. A fusing machine for textile production according to claim 4, characterized in that: The mounting seat (3) is provided with a mounting groove (32) adapted to the carrier (4), and baffles (41) are fixedly connected to both ends of the carrier (4). The two baffles (41) are respectively provided with avoidance grooves (42) for the two positioning plates (72) to match.
6. A fusing machine for textile production according to claim 5, characterized in that: The mounting seat (3) is fixedly connected to mounting plates (33) on both sides, and the carrier (4) is fixedly connected to connecting plates (43) on both sides. The two connecting plates (43) are respectively provided with connecting holes (44) that are compatible with the mounting plates (33).