CN219706110U - High-frequency heat welding reflective material production line - Google Patents

High-frequency heat welding reflective material production line Download PDF

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Publication number
CN219706110U
CN219706110U CN202320967059.2U CN202320967059U CN219706110U CN 219706110 U CN219706110 U CN 219706110U CN 202320967059 U CN202320967059 U CN 202320967059U CN 219706110 U CN219706110 U CN 219706110U
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transition
frame
roller
production line
material production
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CN202320967059.2U
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Chinese (zh)
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杨加国
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Anhui Xinhenghui Reflective Material Co ltd
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Anhui Xinhenghui Reflective Material Co ltd
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Abstract

The utility model discloses a high-frequency thermal welding reflective material production line, which comprises a frame, wherein a left conveying line and a right conveying line are arranged at the front part of the upper end of the frame and are used for conveying products from right to left, and a transition platform which is driven by a first cylinder to move up and down is arranged between the left conveying line and the right conveying line; a transition plate is movably connected between the transition roller and the first driven roller through a pin shaft, the bottom of the transition platform is connected with a left group of lifting frames and a right group of lifting frames, and the lifting frames are used for enabling the inner side ends of the transition roller and the transition plate to rise or descend simultaneously; the second piston rod of second cylinder output is connected with the clamp plate after running through the support frame, and clamp plate lower extreme middle part is equipped with the thermal fuse joint of frequency. According to the utility model, under the lifting action of the first cylinder on the transition platform, the transition plate and the transition roller are lifted between the transition platform and the conveying line, so that products are not clamped between the transition platform and the conveying line during feeding and discharging of the products, and the rapid feeding and discharging of the products are realized.

Description

High-frequency heat welding reflective material production line
Technical Field
The utility model relates to the technical field of heat welding reflective materials, in particular to a high-frequency heat welding reflective material production line.
Background
The high-frequency electromagnetic field generated by electromagnetic wave with frequency higher than 100KHz is utilized to enable the molecules in the reflective material to collide with each other to generate high temperature, the reflective material is welded with products (such as clothes and the like) after hot melting, the reflective material reflects light at night, and the clothes have warning effect.
The common high-frequency heat-welding reflective material production line is used for continuously conveying products, so that when the heat-welding joint carries out heat welding on reflective materials, the reflective materials cannot be accurately heat-welded on the products, a certain distance is reserved between a platform under the heat-welding joint and conveying lines on two sides of the platform, the products can be clamped between the platform and the conveying lines when being conveyed, normal conveying of the products is not facilitated, and therefore the high-frequency heat-welding reflective material production line is provided.
Disclosure of Invention
The utility model aims to provide a high-frequency thermal welding reflective material production line so as to solve the problems in the background technology.
In order to achieve the above purpose, the present utility model provides the following technical solutions: the high-frequency heat welding reflective material production line comprises a frame, wherein a left conveying line and a right conveying line are arranged at the front part of the upper end of the frame and used for conveying products from right to left, and a transition platform driven by a first cylinder to move up and down is further arranged between the left conveying line and the right conveying line;
the conveying line comprises a conveying groove, and a transition roller, a first driven roller, a second driven roller and a driving roller which are sequentially arranged in the conveying groove from inside to outside, wherein the driving roller is driven by a motor, so that the first driven roller and the second driven roller are driven to rotate anticlockwise;
a transition plate is movably connected between the transition roller and the first driven roller through a pin shaft, the bottom of the transition platform is connected with a left group of lifting frames and a right group of lifting frames, and the lifting frames are used for enabling the inner side ends of the transition roller and the transition plate to rise or descend simultaneously;
the upper end rear portion of frame is equipped with the support frame, and the second cylinder is installed to support frame top front end, is connected with the clamp plate behind the second piston rod of second cylinder output runs through the support frame, and clamp plate lower extreme middle part is equipped with the cycle hot melt joint.
Compared with the prior art, the utility model has the beneficial effects that: according to the utility model, under the lifting action of the first cylinder on the transition platform, the transition plate and the transition roller are lifted to between the transition platform and the conveying line, so that products are not clamped between the transition platform and the conveying line during feeding and discharging of the products, and the rapid feeding and discharging of the products are realized;
and after the product moves to the transition platform, the transition platform descends to a height, and when the reflective material is thermally fused on the surface of the product through the cycle thermal fusion joint, the movement of the product is prevented, so that the product is stopped, and the reflective material and the surface of the product are accurately thermally fused.
Drawings
FIG. 1 is a schematic view of the overall exploded construction of the present utility model;
FIG. 2 is a schematic perspective view of a conveyor line according to the present utility model;
FIG. 3 is a schematic perspective view of a lifting frame according to the present utility model;
fig. 4 is a schematic structural view of the first cylinder driving the transition platform, the transition roller and the transition plate to rise.
In the figure: 1. a frame; 2. a conveying line; 21. a motor; 22. a conveying trough; 23. a vertical plate; 24. a vertical slot; 25. a rotating shaft; 26. a transition roller; 27. a transition plate; 28. a first driven roller; 29. a second driven roller; 30. a drive roll; 31. a pin shaft; 32. a third pulley; 33. a second belt; 34. a second pulley; 35. a first belt; 36. a first pulley; 3. touching the display screen; 4. an access door; 5. a first cylinder; 6. a first piston rod; 7. a lifting frame; 71. an arc-shaped seat; 72. an extension plate; 73. a connecting frame; 74. reinforcing ribs; 8. a transition platform; 9. a case; 10. a second cylinder; 11. a light rod sleeve; 12. a top plate; 13. a pressing plate; 14. a polish rod; 15. a cyclic hot melt joint; 16. a product; 17. and a second piston rod.
Detailed Description
The following description of the embodiments of the present utility model will be made clearly and completely with reference to the accompanying drawings, in which it is apparent that the embodiments described are only some embodiments of the present utility model, but not all embodiments. All other embodiments, which can be made by those skilled in the art based on the embodiments of the utility model without making any inventive effort, are intended to be within the scope of the utility model.
Referring to fig. 1-4, the present utility model provides a technical solution: the high-frequency heat welding reflective material production line comprises a frame 1, wherein a left conveying line and a right conveying line 2 are arranged at the front part of the upper end of the frame 1 and are used for conveying products 16 from right to left, and a transition platform 8 which is driven by a first cylinder 5 to move up and down is further arranged between the left conveying line and the right conveying line 2; the first cylinder 5 is fixed inside the frame 1, and a first piston rod 6 at the top output end of the first cylinder 5 penetrates through the frame 1 and then is connected to the middle part of the lower end of the transition platform 8.
The conveying line 2 comprises a conveying groove 22, and a transition roller 26, a first driven roller 28, a second driven roller 29 and a driving roller 30 which are sequentially arranged inside the conveying groove 22 from inside to outside, wherein the driving roller 30 is driven by a motor 21 so as to drive the first driven roller 28 and the second driven roller 29 to rotate anticlockwise;
the motor 21 is fixed at the side of the conveying groove 22, and the front ends of the first driven roller 28, the second driven roller 29 and the driving roller 30 penetrate through the conveying groove 22 and are respectively connected with a first belt pulley 36, a second belt pulley 34 and a third belt pulley 32, the first belt pulley 36 is connected with the second belt pulley 34 through a first belt 35, and the second belt pulley 34 is connected with the third belt pulley 32 through a second belt 33.
A transition plate 27 is movably connected between the transition roller 26 and the first driven roller 28 through a pin shaft 31, the bottom of the transition platform 8 is connected with a left group of lifting frames 7 and a right group of lifting frames 7, and the lifting frames 7 are used for enabling the inner side ends of the transition roller 26 and the transition plate 27 to rise or fall simultaneously;
vertical plates 23 are arranged at the front end and the rear end of the inner side of the conveying groove 22, vertical grooves 24 are arranged on the vertical plates 23, and a rotating shaft 25 penetrating through the middle of a transition roller 26 is slidingly connected in the vertical grooves 24.
The lifting frame 7 comprises a front arc-shaped seat 71, a rear arc-shaped seat 71 and an extension plate 72 connected with the outer side end of the arc-shaped seat 71, the rotating shaft 25 is supported on the arc-shaped seat 71, and the extension plate 72 extends into the bottom of the inner side end of the transition plate 27.
The top of the inner side end of the arc-shaped seat 71 is provided with a connecting frame 73, a reinforcing rib 74 is connected between the front group of connecting frames 73 and the rear group of connecting frames 73, and the top of the connecting frame 73 is fixed at the bottom of the transition platform 8.
The rear part of the upper end of the frame 1 is provided with a support frame, the front end of the top of the support frame is provided with a second cylinder 10, a second piston rod 17 at the output end of the second cylinder 10 penetrates through the support frame and then is connected with a pressing plate 13, and the middle part of the lower end of the pressing plate 13 is provided with a thermal welding joint 15.
The support frame comprises a box body 9 fixed at the rear part of the upper end of the frame 1 and a top plate 12 extending forwards from the top of the box body 9, and a second air cylinder 10 is fixed at the upper end of the top plate 12. The top plate 12 is provided with a polish rod sleeve 11, and polish rods 14 arranged at four corners of the upper end of the pressing plate 13 extend through the corresponding polish rod sleeves 11.
The front part of the frame 1 is provided with a touch display screen 3 and an access door 4, and the touch display screen 3 is internally provided with a PLC controller for controlling the operation of the first cylinder 5, the second cylinder 10 and the motor 21.
Specifically, when in use, the PLC controller controls the motors 21 on the two groups of conveying lines 2 to work through touching the display screen 3, so that the driving roller 30 drives the first driven roller 28 and the second driven roller 29 to simultaneously rotate anticlockwise;
the product 16 is placed on the right-hand conveyor line 2, and the product 16 is moved leftward under conveyance by the driving roller 30, the second driven roller 29, and the first driven roller 28 in the right-hand conveyor groove 22;
at this time, the PLC controller controls the first piston rod 6 of the first cylinder 5 to extend so that the transition platform 8 and the lifting frame 7 move upward, and since the arc-shaped seat 71 of the lifting frame 7 is used to support the rotating shaft 25, the extension plate 72 extends into the bottom of the inner side end of the transition plate 27, and drives the transition roller 26 to move upward, the transition plate 27 rotates around the pin shaft 31 so that the inner side end of the transition plate 27 is lifted (as shown in fig. 4)
The product 16 moves leftwards, slides to the upper end surface of the transition platform 8 through the transition plate 27 and the transition roller 26 on the right side under the action of inertia, then the first piston rod 6 of the first air cylinder 5 is retracted to enable the transition platform 8 to descend, at the moment, the PLC controller controls the second piston rod 17 of the second air cylinder 10 to extend out, so that the pressing plate 13 moves downwards until the circumferential thermal welding joint 15 is in contact with the surface of the product 16, and the reflective material on the surface of the product 16 is adhered to the product 16 after being thermally fused;
the high-frequency thermal welding head 15 uses the high-frequency electromagnetic field generated by electromagnetic wave with frequency higher than 100KHz to mutually and violently collide with each other to generate high temperature, and the high-frequency thermal welding head is welded with the product 16 after thermal welding, so that the high-frequency thermal welding head has wide application field, and therefore, a high-frequency plastic welding machine, a high-frequency plastic fusing machine, a high-frequency folding box creasing machine, a high-frequency metal heating machine and the like are the prior art and are not repeated.
The first piston rod 6 of the first cylinder 5 is extended so that the inner ends of the transition platform 8, the transition roller 26 and the transition plate 27 are raised, and when the next product 16 is conveyed by the right conveying trough 22, the next product 16 pushes the previous product 16 leftwards, and the previous product 16 slides onto the first driven roller 28, the second driven roller 29 and the driving roller 30 in the left conveying trough 22 via the left transition roller 26 and the transition plate 27, and moves leftwards out of the production line under the rotation of the first driven roller 28, the second driven roller 29 and the driving roller 30.
Although embodiments of the present utility model have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made therein without departing from the principles and spirit of the utility model, the scope of which is defined in the appended claims and their equivalents.

Claims (9)

1. The utility model provides a high frequency heat fusion reflective material production line, includes frame (1), its characterized in that: the front part of the upper end of the frame (1) is provided with a left conveying line and a right conveying line (2) which are used for conveying products (16) from right to left, and a transition platform (8) which is driven by a first air cylinder (5) to move up and down is arranged between the left conveying line and the right conveying line (2);
the conveying line (2) comprises a conveying groove (22) and a transition roller (26), a first driven roller (28), a second driven roller (29) and a driving roller (30) which are sequentially arranged inside the conveying groove (22) from inside to outside, and the driving roller (30) is driven by a motor (21) so as to drive the first driven roller (28) and the second driven roller (29) to rotate anticlockwise;
a transition plate (27) is movably connected between the transition roller (26) and the first driven roller (28) through a pin shaft (31), the bottom of the transition platform (8) is connected with a left group of lifting frames (7) and a right group of lifting frames (7), and the lifting frames (7) are used for enabling the inner side ends of the transition roller (26) and the transition plate (27) to rise or descend simultaneously;
the rear part of the upper end of the frame (1) is provided with a support frame, the front end of the top of the support frame is provided with a second air cylinder (10), a second piston rod (17) of the output end of the second air cylinder (10) penetrates through the support frame and then is connected with a pressing plate (13), and the middle part of the lower end of the pressing plate (13) is provided with a cycle hot melt joint (15).
2. The high frequency heat fusion retroreflective material production line of claim 1, wherein: the first cylinder (5) is fixed inside the frame (1), and a first piston rod (6) at the top output end of the first cylinder (5) penetrates through the frame (1) and then is connected to the middle part of the lower end of the transition platform (8).
3. The high frequency heat fusion retroreflective material production line of claim 1, wherein: the motor (21) is fixed on the side edge of the conveying groove (22), the front ends of the first driven roller (28), the second driven roller (29) and the driving roller (30) penetrate through the conveying groove (22) and then are respectively connected with a first belt pulley (36), a second belt pulley (34) and a third belt pulley (32), the first belt pulley (36) is connected with the second belt pulley (34) through a first belt (35), and the second belt pulley (34) is connected with the third belt pulley (32) through a second belt (33).
4. The high frequency heat fusion retroreflective material production line of claim 1, wherein: vertical plates (23) are arranged at the front end and the rear end of the inner side of the conveying groove (22), vertical grooves (24) are formed in the vertical plates (23), and a rotating shaft (25) penetrating through the middle of the transition roller (26) is connected in the vertical grooves (24) in a sliding mode.
5. The high-frequency heat-welding reflective material production line according to claim 4, wherein: the lifting frame (7) comprises a front arc-shaped seat (71) and a rear arc-shaped seat (71) and an extension plate (72) connected with the outer side ends of the arc-shaped seats (71), the rotating shaft (25) is supported on the arc-shaped seats (71), and the extension plate (72) extends into the bottom of the inner side end of the transition plate (27).
6. The high-frequency heat-welding reflective material production line according to claim 5, wherein: the top of the inner side end of the arc-shaped seat (71) is provided with a connecting frame (73), reinforcing ribs (74) are connected between the front connecting frame and the rear connecting frame (73), and the top of the connecting frame (73) is fixed at the bottom of the transition platform (8).
7. The high frequency heat fusion retroreflective material production line of claim 1, wherein: the support frame comprises a box body (9) fixed at the rear part of the upper end of the frame (1) and a top plate (12) extending forwards from the top of the box body (9), and the second air cylinder (10) is fixed at the upper end of the top plate (12).
8. The high frequency heat fusion retroreflective material production line of claim 7, wherein: the top plate (12) is provided with a polish rod sleeve (11), and polish rods (14) arranged at four corners of the upper end of the pressing plate (13) penetrate through the corresponding polish rod sleeves (11) to extend out.
9. The high frequency heat fusion retroreflective material production line of claim 1, wherein: the front part of the frame (1) is provided with a touch display screen (3) and an access door (4), and the touch display screen (3) is internally provided with a PLC (programmable logic controller) for controlling the work of the first air cylinder (5), the second air cylinder (10) and the motor (21).
CN202320967059.2U 2023-04-25 2023-04-25 High-frequency heat welding reflective material production line Active CN219706110U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202320967059.2U CN219706110U (en) 2023-04-25 2023-04-25 High-frequency heat welding reflective material production line

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202320967059.2U CN219706110U (en) 2023-04-25 2023-04-25 High-frequency heat welding reflective material production line

Publications (1)

Publication Number Publication Date
CN219706110U true CN219706110U (en) 2023-09-19

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CN202320967059.2U Active CN219706110U (en) 2023-04-25 2023-04-25 High-frequency heat welding reflective material production line

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN117970011A (en) * 2024-04-01 2024-05-03 江苏恒业半导体技术有限公司 Notebook transfer chain and ageing test system thereof

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN117970011A (en) * 2024-04-01 2024-05-03 江苏恒业半导体技术有限公司 Notebook transfer chain and ageing test system thereof
CN117970011B (en) * 2024-04-01 2024-06-07 江苏恒业半导体技术有限公司 Notebook transfer chain and ageing test system thereof

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