A heat-sensitive material processing apparatus and method of use thereof

Through automated motor and hydraulic system control, efficient cutting and bonding of heat-sensitive materials are achieved, solving the safety and efficiency problems caused by frequent hand-held cutting tools, and improving production efficiency and safety.

CN117400335BActive Publication Date: 2025-12-19JIANGSU WANBAO RUIDA HI TECH CO LTD
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Patent Information

Application Number
CN202311449433.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-02
Publication Date
2025-12-19
Estimated Expiration
2043-11-02

AI Technical Summary

Technical Problem

In the processing of heat-sensitive materials, frequent hand-held cutting with cutting tools leads to problems of low safety and low production efficiency.

Method used

The process involves using a first geared motor to drive a short blade and a limit plate to contact and extrude the heat-sensitive material, a second servo motor to drive the drum to rotate, a hydraulic telescopic rod to control the movement of the blade holder and the adhesive guide chamber for cutting, and a third servo motor to rotate the shaft and limit rollers to wind up the material, thus automating the cutting and bonding process of the heat-sensitive material.

Benefits of technology

It improved work efficiency, ensured worker safety, reduced the frequency of manual operations, and increased the output of rolled thermal materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of heat-sensitive material processing, in particular to a heat-sensitive material processing device and a use method thereof, which comprises a device frame, a first L-shaped frame and a second L-shaped frame fixedly connected with the side surface of one side of the device frame, a hydraulic telescopic rod fixedly connected with the vertical inner side wall of the first L-shaped frame, a bearing plate fixedly connected with the movable end of the hydraulic telescopic rod, a knife holder and a glue guiding long bin fixedly connected with the side surface of the side of the bearing plate away from the hydraulic telescopic rod. The heat-sensitive material is contacted and extruded by a plurality of fixed hangers, the heat-sensitive material is wound on the outer surface of the rotating winding drum, the hydraulic telescopic rod is started to drive the knife holder and the glue guiding long bin to displace forward, is stopped at the required position, the long blade is driven to cut the heat-sensitive material when the knife holder advances, the cutting of the heat-sensitive material is completed, the workers are saved from continuously taking the cutting tools to cut, the work efficiency is greatly improved, and the safety of the workers is ensured.
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Description

TECHNICAL FIELD

[0001] The present application relates to a processing device, in particular to a heat-sensitive material processing device and a method for using the same, and belongs to the technical field of heat-sensitive material processing. BACKGROUND

[0002] Heat-sensitive material is a kind of processing material, and its manufacturing principle is to coat a layer of "heat-sensitive coating" or heat-sensitive color-changing layer on high-quality raw materials, or to coat a layer of fine powder on ordinary material base, and the composition is colorless dye phenol or other acidic substances, separated by a thin film. Under the condition of heat, the thin film melts, and the powder mixes to show color reaction. Heat-sensitive paper made of heat-sensitive material is usually used as a communication carrier for text and graphics on a fax machine, that is, as a fax material. In medical and measurement systems, it is used as a recording material, such as electrocardiogram material and thermal instrument recording material.

[0003] In the cutting process of heat-sensitive material, workers usually manually hold a knife to cut the heat-sensitive material that has been wound into a roll with the help of a machine. Then, glue is applied to the end of the cut heat-sensitive material, and then the heat-sensitive material is bonded. Thus, the cutting and winding process of heat-sensitive material is completed. However, in this process, the worker needs to frequently hold the knife when cutting the wound heat-sensitive material. When other processes are completed, the worker needs to put down the knife. This frequent picking up and putting down of the knife is not conducive to safety during work, and is even more detrimental to work efficiency. Ultimately, in the case of time accumulation, the reduction of production efficiency greatly reduces the yield of wound heat-sensitive material.

[0004] Therefore, it is urgent to improve the heat-sensitive material processing device to solve the above problems. SUMMARY

[0005] The purpose of the present application is to provide a device and its use method, which can start a deceleration motor, move a short blade on a fixed suspension and a limiting clamping plate to contact and extrude the heat-sensitive material, drive the second shaft to rotate by the second servo motor, and then drive the several rollers on the outer surface of the second shaft to rotate, the rollers in rotation wind the heat-sensitive material on the outer surface of the roller, when the thickness of the heat-sensitive material is needed, start the hydraulic telescopic rod to drive the knife holder and the long glue guide to move forward, stop at the required position, at this time the heat-sensitive material is located between the knife holder and the long glue guide, the long blade cuts the heat-sensitive material when the knife holder moves forward, the glue in the long glue guide is applied to the inner surface of the heat-sensitive material by the several rollers, and vertical cutting is performed, the rotating plate is rotated by starting the first servo motor, the third shaft is rotated to the position of the second shaft, the second shaft is rotated to the position of the third shaft, the heat-sensitive material not wound on the roller is wound on the roller by rotating the third shaft under the action of the limiting roller, then the material shifting rod is moved to take off the wound heat-sensitive material and put on a new roller, and then the above process is repeated to complete the cutting of the heat-sensitive material, which saves the workers from constantly taking the cutting tool to cut, greatly improves the work efficiency, and ensures the safety of the workers.

[0006] In order to achieve the above purpose, the main technical scheme adopted by the present application includes: a heat-sensitive material processing device, comprising a device frame and a first L-shaped frame and a second L-shaped frame fixedly connected with one side of the device, the first L-shaped frame is fixedly connected with a hydraulic telescopic rod on the vertical inner side wall, the movable end of the hydraulic telescopic rod is fixedly connected with a bearing plate, the side surface of the bearing plate away from the hydraulic telescopic rod is fixedly connected with a knife holder and a long glue guide, the knife holder is located directly above the long glue guide, the side surface of the bearing plate is fixedly connected with a glue storage tank, and the glue storage tank is located directly above the knife holder, the inside of the glue storage tank is in communication with the inside of the long glue guide through a glue guide pipe, the two sides of the long glue guide are respectively fixedly connected with a plurality of groups of grooved supports, each group of grooved supports is two, the side walls of each group of two grooved supports are respectively slidingly connected with fixed shafts, the inside surfaces of the two fixed shafts are rotatably connected with rollers, the outer surfaces of the rollers are provided with glue retaining grooves, part of the outer surfaces of the rollers are located in the inside of the long glue guide, and the rollers and the upper side wall of the long glue guide are slidingly connected, the two fixed shafts and the bottom side walls of the long glue guide are respectively fixedly connected with springs, the side surface of the knife holder close to the long glue guide is welded with a long blade, the end surface of the long blade away from the bearing plate is chamfered, and the extension lengths of the knife holder and the long glue guide are equal.

[0007] Preferably, one side of the device frame is fixedly connected with a first servo motor away from the side of the first L-shaped frame, the output end of the first servo motor is connected with a driving shaft, the device frame is rotatably connected with a driven shaft, the driven shaft penetrates through the device frame, one end of the driven shaft is connected with the other end of the driving shaft away from the first servo motor, and the other end of the driven shaft is fixedly connected with a rotating long plate.

[0008] Preferably, the rotating long plate is fixedly provided with a second servo motor at one end close to one side of the device frame, is fixedly provided with a third servo motor at the other end close to one side of the device frame, and is fixedly connected with a second rotating shaft and a third rotating shaft at the other side, one end of the second rotating shaft and one end of the third rotating shaft penetrate through the rotating long plate and are connected with the output end of the second servo motor and the output end of the third servo motor respectively.

[0009] Preferably, a plurality of winding drums are movably connected to the second rotating shaft and the third rotating shaft respectively, a plurality of sliding bars are fixedly connected to the outer surfaces of the second rotating shaft and the third rotating shaft respectively, the plurality of sliding bars are equidistantly arranged around the central axis of the second rotating shaft and equidistantly arranged around the central axis of the third rotating shaft respectively, and the inner surfaces of the plurality of winding drums are slidably connected with the plurality of sliding bars.

[0010] Preferably, a plurality of rubber layers are arranged on the outer surfaces of the plurality of winding drums, the plurality of rubber layers are equidistantly arranged around the central axis of the winding drum, the outer surfaces of one end of the second rotating shaft and one end of the third rotating shaft are fixedly connected with limit rings, a plurality of conveying rollers and a conveying box are fixedly connected between the inner side of the vertical wall of the second L-shaped frame and the device frame, the plurality of conveying rollers are located at the output end of the conveying box, a heat-sensitive material is slidably connected on the plurality of conveying rollers, one end of the heat-sensitive material is connected with the outer surfaces of the plurality of winding drums movably connected to the second rotating shaft, and the movable end of the hydraulic telescopic rod is close to the other end of the second rotating shaft away from the rotating long plate and does not contact the second rotating shaft.

[0011] Preferably, a sliding rod is slidably connected to the device frame, a sliding block is slidably connected to the sliding rod, the outer surface of one end of the sliding block is fixedly connected with a handle, the other end of the sliding block is rotatably connected with a material pushing rod, and the material pushing rod is slidably connected with the sliding rod, and the sliding rod is close to the third rotating shaft and does not contact the third rotating shaft.

[0012] Preferably, one side of the device frame is fixedly connected with a first speed reducer and a second speed reducer, and the first speed reducer and the second speed reducer are symmetrically arranged on the two sides of the first servo motor.

[0013] Preferably, the first screw rod and the second screw rod are respectively threadedly connected with a first sliding block and a second sliding block, and the first sliding block and the second sliding block are respectively fixedly connected with a first supporting plate and a second supporting plate on the end face of the first L-shaped frame.

[0014] Preferably, a fixing groove is formed in the first supporting plate, a plurality of fixing hangers are slidably connected in the fixing groove, a short blade and a limiting clamping plate are respectively fixedly connected on the plurality of fixing hangers through bolts, the plurality of fixing hangers are fixedly connected with the first supporting plate through bolts, a plurality of positioning holes are formed in the upper end face of the first supporting plate, and a limiting roller is rotatably connected on the second supporting plate.

[0015] A use method of a heat-sensitive material processing device, comprising the following steps:

[0016] S1: first, start the first speed reducer to move the short blade and the limiting clamping plate on the plurality of fixing hangers to contact and extrude the heat-sensitive material, the second servo motor drives the second rotating shaft to rotate, thereby driving the plurality of rollers on the outer surface of the second rotating shaft to rotate, and the rollers in rotation wind the heat-sensitive material on the outer surface of the rollers;

[0017] S2: then, when the winding thickness is required, start the hydraulic telescopic rod to drive the knife holder and the long glue guide to move forward, and stop at the required position, at this time, the heat-sensitive material is located between the knife holder and the long glue guide, the long blade cuts the heat-sensitive material when the knife holder moves forward, and the plurality of rollers smear the glue in the long glue guide on the inner surface of the heat-sensitive material;

[0018] S3: finally, start the first servo motor to rotate the rotating plate, move the third rotating shaft to the position of the second rotating shaft, and rotate the second rotating shaft to the position of the third rotating shaft, start the third servo motor to rotate the third rotating shaft, and under the action of the limiting roller, wind the heat-sensitive material not wound on the rollers on the rollers, then move the material shifting rod to take off the wound heat-sensitive material and put on a new roller, and then repeat the above process.

[0019] The present application has at least the following advantages:

[0020] 1. By, start a deceleration motor, a number of fixed suspension short blade and limit card plate to contact with the hot material extrusion, the second servo motor driven second shaft rotation, and then drive a number of drum located on the outer surface of the second shaft rotation, rotating drum will be hot material on the outer surface of the drum, when the thickness of the required, start the hydraulic telescopic rod driven knife holder and guide long warehouse forward displacement, at the required position, at this time the hot material is located between the knife holder and the guide long warehouse, when the knife holder advances to cut the hot material, and a number of rollers will be in the guide long warehouse glue on the inner surface of the hot material, vertical cutting, start the first servo motor rotating plate, the third shaft and rotating to the second shaft position, and the second shaft is rotated to the third shaft position, start the third servo motor rotating third shaft, under the action of moving the limit roller, the hot material not on the drum on the drum, then move the material rod will be wrapped hot material to take off the new drum, and then repeat the process just to complete the cutting of the hot material, saving workers to take the cutting tool for cutting, greatly improving the work efficiency, but also to ensure the safety of workers. BRIEF DESCRIPTION OF DRAWINGS

[0021] The drawings described herein are used to provide further understanding of the present application, and form a part of the present application, the illustrative embodiments of the present application and its explanation are used to explain the present application, and do not constitute an improper limitation on the present application. In the drawings:

[0022] Figure 1 The perspective view provided by the present application;

[0023] Figure 2 The top view provided by the present application;

[0024] Figure 3 The right view provided by the present application;

[0025] Figure 4 The rear view provided by the present application;

[0026] Figure 5 The sliding rod provided by the present application;

[0027] Figure 6 The sliding bar and the limit ring structure provided by the present application;

[0028] Figure 7 The present application provides Figure 1 The enlarged structure diagram of A in the middle.

[0029] In the figure, 1, device frame; 2, No. 1 L-shaped frame; 3, No. 2 L-shaped frame; 4, hydraulic telescopic rod; 5, bearing plate; 6, knife holder; 7, long glue guide; 8, glue storage tank; 9, glue guide pipe; 10, grooved support; 11, fixed shaft; 12, roller; 13, glue retaining groove; 14, spring; 15, long blade; 16, No. 1 servo motor; 17, driving shaft; 18, driven shaft; 19, rotating long plate; 20, No. 2 servo motor; 21, No. 3 servo motor; 22, No. 2 rotating shaft; 23, No. 3 rotating shaft; 24, winding drum; 25, sliding bar; 26, glue layer; 27, limiting ring; 28, transport roller; 29, conveying box; 30, sliding rod; 31, sliding block; 32, material pushing rod; 33, No. 1 speed reducer motor; 34, No. 2 speed reducer motor; 35, No. 1 lead screw; 36, No. 2 lead screw; 37, No. 1 sliding block; 38, No. 2 sliding block; 39, No. 1 support plate; 40, No. 2 support plate; 41, fixed slot; 42, fixed suspension; 43, short blade; 44, limiting clamping plate; 45, positioning hole; 46, limiting roller; 47, heat-sensitive material; 48, handle. DETAILED DESCRIPTION

[0030] The embodiments of the present application will be described in detail with the accompanying drawings and examples, so that the realization process of how to apply technical means to solve technical problems and achieve technical effects of the present application can be fully understood and implemented.

[0031] As Figures 1-7As shown, the heat-sensitive material processing device provided by the embodiment comprises a device frame 1, a first L-shaped frame 2 and a second L-shaped frame 3 fixedly connected to the side of the device, a hydraulic telescopic rod 4 fixedly connected to the inner side wall of the first L-shaped frame 2, a load-bearing plate 5 fixedly connected to the movable end of the hydraulic telescopic rod 4, a knife holder 6 and a long glue guide bin 7 fixedly connected to the side of the load-bearing plate 5 away from the hydraulic telescopic rod 4, the knife holder 6 being located directly above the long glue guide bin 7, a glue storage tank 8 fixedly connected to the side of the load-bearing plate 5, the glue storage tank 8 being located directly above the knife holder 6, a glue guide pipe 9 in communication between the glue storage tank 8 and the long glue guide bin 7, a plurality of groups of slotted supports 10 fixedly connected to the two sides of the long glue guide bin 7, each group of slotted supports 10 comprising two slotted supports 10, a fixed shaft 11 slidingly connected to the side wall of each group of two slotted supports 10, a roller 12 rotatably connected between the inner sides of the two fixed shafts 11, a glue retaining groove 13 formed in the outer surface of the roller 12, the outer surface of the roller 12 being located inside the long glue guide bin 7 and slidingly connected to the upper side wall of the long glue guide bin 7, a spring 14 fixedly connected between the two fixed shafts 11 and the bottom of the side wall of the long glue guide bin 7, a long blade 15 welded to the side of the knife holder 6 close to the long glue guide bin 7, the end face of the long blade 15 away from the load-bearing plate 5 being chamfered, the length of the knife holder 6 being equal to the length of the long glue guide bin 7, a first servo motor 16 fixedly connected to the side of the device frame 1 away from the first L-shaped frame 2, a driving shaft 17 connected to the output end of the first servo motor 16, a driven shaft 18 rotatably connected to the device frame 1, the driven shaft 18 penetrating the device frame 1, one end of the driven shaft 18 being connected to the end of the driving shaft 17 away from the first servo motor 16, and a rotating long plate 19 fixedly connected to the other end of the driven shaft 18.

[0032] Further, as Figures 1-7As shown, the rotating long plate 19 is fixed with a second servo motor 20 on one side of the device frame 1, and a third servo motor 21 on the other end of the device frame 1. The rotating long plate 19 is fixedly connected with a second rotating shaft 22 and a third rotating shaft 23 on the other side. The second rotating shaft 22 and the third rotating shaft 23 are connected with the output ends of the second servo motor 20 and the third servo motor 21 respectively. The second rotating shaft 22 and the third rotating shaft 23 are movably connected with a plurality of winding drums 24. The outer surfaces of the second rotating shaft 22 and the third rotating shaft 23 are fixedly connected with a plurality of sliding bars 25. The sliding bars 25 are equidistantly arranged around the center axis of the second rotating shaft 22 and the third rotating shaft 23. The inner surfaces of the winding drums 24 are slidably connected with the sliding bars 25. The outer surfaces of the winding drums 24 are provided with a plurality of glue layers 26, which are equidistantly arranged around the center axis of the winding drums 24. The outer surfaces of the second rotating shaft 22 and the third rotating shaft 23 are fixedly connected with a limiting ring 27. A plurality of transport rollers 28 and a conveying box 29 are fixedly connected between the device frame 1 and the vertical wall of the second L-shaped frame 3. The transport rollers 28 are located on the output end of the conveying box 29. A heat-sensitive material 47 is slidably connected on the transport rollers 28. One end of the heat-sensitive material 47 is connected with the outer surfaces of the winding drums 24 movably connected on the second rotating shaft 22. The movable end of the hydraulic telescopic rod 4 is located on the end of the second rotating shaft 22 away from the rotating long plate 19, and does not contact the second rotating shaft 22.

[0033] Further, as shown in FIG. 1, the device frame 1 is fixedly connected with a first servo motor 2 on one side, and a second L-shaped frame 3 is fixedly connected on the other side. The second L-shaped frame 3 is movably connected with the second servo motor 20 and the third servo motor 21. The second L-shaped frame 3 is movably connected with a second rotating shaft 22 and a third rotating shaft 23. The second rotating shaft 22 and the third rotating shaft 23 are movably connected with a plurality of winding drums 24. The outer surfaces of the second rotating shaft 22 and the third rotating shaft 23 are fixedly connected with a plurality of sliding bars 25. The sliding bars 25 are equidistantly arranged around the center axis of the second rotating shaft 22 and the third rotating shaft 23. The inner surfaces of the winding drums 24 are slidably connected with the sliding bars 25. The outer surfaces of the winding drums 24 are provided with a plurality of glue layers 26, which are equidistantly arranged around the center axis of the winding drums 24. The outer surfaces of the second rotating shaft 22 and the third rotating shaft 23 are fixedly connected with a limiting ring 27. A plurality of transport rollers 28 and a conveying box 29 are fixedly connected between the device frame 1 and the vertical wall of the second L-shaped frame 3. The transport rollers 28 are located on the output end of the conveying box 29. A heat-sensitive material 47 is slidably connected on the transport rollers 28. One end of the heat-sensitive material 47 is connected with the outer surfaces of the winding drums 24 movably connected on the second rotating shaft 22. The movable end of the hydraulic telescopic rod 4 is located on the end of the second rotating shaft 22 away from the rotating long plate 19, and does not contact the second rotating shaft 22. Figures 1-7As shown, the device frame 1 is slidably connected with a sliding rod 30, the sliding rod 30 is slidably connected with a sliding block 31, one end of the sliding block 31 is fixedly connected with a handle 48, the other end of the sliding block 31 is rotatably connected with a material pushing rod 32, and the material pushing rod 32 is slidably connected with the sliding rod 30, the sliding rod 30 is close to the third rotating shaft 23 and does not contact the third rotating shaft 23, one side surface of the device frame 1 close to the first servo motor 16 is fixedly connected with a first speed reducer 33 and a second speed reducer 34, and the first speed reducer 33 and the second speed reducer 34 are respectively located on the two sides of the first servo motor 16 and are symmetrically arranged, the device frame 1 is rotatably connected with a first lead screw 35 and a second lead screw 36, one end of the first lead screw 35 and the second lead screw 36 is respectively connected with the output end of the first speed reducer 33 and the output end of the second speed reducer 34, the first lead screw 35 and the second lead screw 36 are respectively threadedly connected with a first sliding block 37 and a second sliding block 38, the first sliding block 37 and the second sliding block 38 are respectively fixedly connected with a first supporting plate 39 and a second supporting plate 40 on one end surface of the first L-shaped frame 2, a plurality of fixed suspensions 42 are slidably connected in the fixing groove hole 41 in the first supporting plate 39, a plurality of short blades 43 and limiting clamping plates 44 are respectively fixedly connected on the plurality of fixed suspensions 42 through bolts, the plurality of fixed suspensions 42 are fixedly connected with the first supporting plate 39 through bolts, a plurality of positioning holes 45 are formed in the upper end surface of the first supporting plate 39, and limiting rollers 46 are rotatably connected on the second supporting plate 40.

[0034] As shown, Figures 1-7 The use method of the thermal material processing device provided by the embodiment comprises the following steps:

[0035] S1: first, start the first speed reducer 33, move the short blades 43 and the limiting clamping plates 44 on the plurality of fixed suspensions 42 to contact and extrude the thermal material 47, drive the second rotating shaft 22 to rotate through the second servo motor 20, thereby driving the plurality of rollers 24 on the outer surface of the second rotating shaft 22 to rotate, and the rollers 24 in rotation wind the thermal material 47 on the outer surface of the rollers 24;

[0036] S2: then, when winding to the required thickness, drive the knife holder 6 and the glue guiding long bin 7 to move forward through the hydraulic telescopic rod 4, stop at the required position, at this time, the thermal material 47 is located between the knife holder 6 and the glue guiding long bin 7, cut the thermal material 47 through the long blade 15 when the knife holder 6 moves forward, and the plurality of rollers 12 apply glue in the glue guiding long bin 7 to the inner surface of the thermal material 47;

[0037] S3: Finally, the first servo motor 16 is started to rotate the long plate 19, the third rotating shaft 23 is rotated to the position of the second rotating shaft 22, the second rotating shaft 22 is rotated to the position of the third rotating shaft 23, the third servo motor 21 is started to rotate the third rotating shaft 23, the hot sensitive material 47 not wound on the winding drum 24 is wound on the winding drum 24 under the action of the limiting roller 46, then the material moving rod 32 is moved to take off the wound hot sensitive material 47 and put on a new winding drum 24, and the above process is repeated.

[0038] As used in the specification and claims, certain terminology is used to describe parts that will be apparent to those skilled in the art. It is not intended that the specification and claims be limited to the described embodiments, but rather that the scope of the invention be defined by the appended claims. As used in the specification and claims, the singular forms "a," "an" and "the" include plural referents unless the context clearly dictates otherwise. "Approximately" refers to a range of acceptable error for the technical field based on the functionality of the technical solution, the basic technical effect achieved by the technical solution.

[0039] It is to be understood that the terms "including", "comprising", or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements recited, but can also include other elements not expressly listed or inherent to such process, method, article, or apparatus. Without further limitation, an element preceded by "comprises a" does not, without more constraints, foreclose the existence of additional identical elements in the process, method, article, or apparatus that comprises the element.

[0040] The above description illustrates and describes several preferred embodiments of the present invention, but as previously noted, it is not intended to limit the present invention to the forms disclosed, but on the contrary, it is intended to cover all alternatives, modifications and equivalents falling within the scope of the invention as defined by the appended claims. Changes and modifications can be made to the above described embodiments without departing from the spirit and scope of the present invention. Such changes and modifications are therefore intended to be covered by the appended claims.

Claims

1. A heat-sensitive material processing device, comprising a device frame (1) and a first L-shaped frame (2) and a second L-shaped frame (3) fixedly connected with the side surface of the device, characterized in that: The vertical inner side wall of the first L-shaped frame (2) is fixedly connected with a hydraulic telescopic rod (4), the movable end of the hydraulic telescopic rod (4) is fixedly connected with a bearing plate (5), the side surface of the bearing plate (5) away from the hydraulic telescopic rod (4) is fixedly connected with a knife holder (6) and a glue guiding long bin (7), the knife holder (6) is located directly above the glue guiding long bin (7), the side surface of the bearing plate (5) is fixedly connected with a glue storage tank (8), and the glue storage tank (8) is located directly above the knife holder (6), the inside of the glue storage tank (8) is in communication with the inside of the glue guiding long bin (7) through a glue guiding pipe (9), the two sides of the glue guiding long bin (7) are respectively fixedly connected with a plurality of groups of groove supporting frames (10), each group of groove supporting frames (10) is two, the side walls of each group of two groove supporting frames (10) are respectively slidably connected with fixed shafts (11), the inside surfaces of the two fixed shafts (11) are rotatably connected with rollers (12), the outer surfaces of the rollers (12) are provided with glue retaining grooves (13), part of the outer surfaces of the rollers (12) are located in the inside of the glue guiding long bin (7), and the rollers (12) are slidably connected with the upper side walls of the glue guiding long bin (7), the two fixed shafts (11) and the two side wall bottoms of the glue guiding long bin (7) are respectively fixedly connected with springs (14), the side surface of the knife holder (6) close to the glue guiding long bin (7) is welded with a long blade (15), the end surface of the long blade (15) away from the bearing plate (5) is chamfered, and the extension lengths of the knife holder (6) and the glue guiding long bin (7) are equal.

2. The thermal material processing apparatus of claim 1, wherein: The side surface of the device frame (1) away from the first L-shaped frame (2) is fixedly connected with a first servo motor (16), the output end of the first servo motor (16) is connected with a driving shaft (17), the device frame (1) is rotatably connected with a driven shaft (18), the driven shaft (18) penetrates through the device frame (1), one end of the driven shaft (18) is connected with the other end of the driving shaft (17) away from the first servo motor (16), and the other end of the driven shaft (18) is fixedly connected with a rotating long plate (19).

3. A thermal material processing apparatus as claimed in claim 2, wherein: The side surface of one end of the rotating long plate (19) close to the device frame (1) is fixedly provided with a second servo motor (20), the side surface of the other end of the rotating long plate (19) close to the device frame (1) is fixedly provided with a third servo motor (21), the other side surface of the rotating long plate (19) is fixedly connected with a second rotating shaft (22) and a third rotating shaft (23), and one end of the second rotating shaft (22) and one end of the third rotating shaft (23) penetrate through the rotating long plate (19) and are connected with the output ends of the second servo motor (20) and the third servo motor (21) respectively.

4. The thermal material processing apparatus of claim 3, wherein: The second rotating shaft (22) and the third rotating shaft (23) are movably connected with a plurality of winding drums (24), and the outer surfaces of the second rotating shaft (22) and the third rotating shaft (23) are fixedly connected with a plurality of sliding bars (25), and the plurality of sliding bars (25) are equidistantly arranged around the central axis of the second rotating shaft (22) and the central axis of the third rotating shaft (23), and the inner surfaces of the plurality of winding drums (24) are slidably connected with the plurality of sliding bars (25).

5. A thermal material processing apparatus as claimed in claim 4, wherein: The outer surfaces of the plurality of winding drums (24) are provided with a plurality of rubber layers (26), and the plurality of rubber layers (26) are equidistantly arranged around the central axis of the winding drum (24), and the outer surfaces of the second rotating shaft (22) and the third rotating shaft (23) near one end of the device frame (1) are fixedly connected with a limiting ring (27), and the device frame (1) is fixedly connected with a plurality of conveying rollers (28) and a conveying box (29) between the inner side surface of the vertical wall of the second L-shaped frame (3) and the outer surface of the device frame (1), and the plurality of conveying rollers (28) are located at the output end of the conveying box (29), and a heat-sensitive material (47) is slidably connected on the plurality of conveying rollers (28), one end of the heat-sensitive material (47) is connected with the outer surfaces of the plurality of winding drums (24) movably connected with the second rotating shaft (22), and the movable end of the hydraulic telescopic rod (4) is close to the end of the second rotating shaft (22) away from the rotating long plate (19) and does not contact the second rotating shaft (22).

6. A thermal material processing apparatus as claimed in claim 5, wherein: The device frame (1) is slidably connected with a sliding rod (30), the sliding rod (30) is slidably connected with a sliding block (31), one end of the sliding block (31) is fixedly connected with a handle (48), the other end of the sliding block (31) is rotatably connected with a material pushing rod (32), and the material pushing rod (32) is slidably connected with the sliding rod (30), and the sliding rod (30) is close to the third rotating shaft (23) and does not contact the third rotating shaft (23).

7. A heat-sensitive material processing apparatus according to claim 6, wherein: The device frame (1) is fixedly connected with a first speed reducer (33) and a second speed reducer (34) on the side close to the first servo motor (16), and the first speed reducer (33) and the second speed reducer (34) are respectively located on the two sides of the first servo motor (16) and are symmetrically arranged, and the device frame (1) is rotatably connected with a first lead screw (35) and a second lead screw (36), and one end of the first lead screw (35) and the second lead screw (36) is respectively connected with the output end of the first speed reducer (33) and the output end of the second speed reducer (34).

8. The apparatus of claim 7, wherein: The first lead screw (35) and the second lead screw (36) are respectively threadedly connected with a first sliding block (37) and a second sliding block (38), and the first sliding block (37) and the second sliding block (38) are respectively fixedly connected with a first supporting plate (39) and a second supporting plate (40) on the end face of the first L-shaped frame (2).

9. A thermal material processing apparatus as claimed in claim 8, wherein: The first support plate (39) is provided with a fixing slot hole (41), a plurality of fixing suspensions (42) are slidably connected in the fixing slot hole (41), a plurality of short blades (43) and limiting clamping plates (44) are fixedly connected on the plurality of fixing suspensions (42) respectively, the plurality of fixing suspensions (42) and the first support plate (39) are fixedly connected through bolts, a plurality of positioning holes (45) are formed in the upper end face of the first support plate (39), and a limiting roller (46) is rotatably connected to the second support plate (40).

10. A method of using a thermal material processing apparatus as claimed in claim 9, characterized in that: Comprise the following steps: S1: first, start the first speed reducer motor (33), move the short blade (43) and the limiting clamping plate (44) on the plurality of fixing suspensions (42) to contact and extrude the heat-sensitive material (47), the second servo motor (20) drives the second rotating shaft (22) to rotate, and then drives the plurality of winding drums (24) located on the outer surface of the second rotating shaft (22) to rotate, the winding drum (24) in rotation winds the heat-sensitive material (47) on the outer surface of the winding drum (24); S2: then, when winding to the required thickness, start the hydraulic telescopic rod (4) to drive the knife holder (6) and the glue guiding long bin (7) to displace forward, stop at the required position, at this time, the heat-sensitive material (47) is located between the knife holder (6) and the glue guiding long bin (7), the long blade (15) is driven to cut the heat-sensitive material (47) when the knife holder (6) advances, and the plurality of rollers (12) smear the glue in the glue guiding long bin (7) on the inner surface of the heat-sensitive material (47); S3: finally, start the first servo motor (16) to rotate the rotating long plate (19), rotate the third rotating shaft (23) to the position of the second rotating shaft (22), and the second rotating shaft (22) is rotated to the position of the third rotating shaft (23), start the third servo motor (21) to rotate the third rotating shaft (23), under the action of moving the limiting roller (46), wind the heat-sensitive material (47) not wound on the winding drum (24) on the winding drum (24), then move the material shifting rod (32) to take off the wound heat-sensitive material (47) and put on a new winding drum (24), and then repeat the above process.

Citation Information

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