Cutting device for processing anti-adhesion heat-conducting patch
By designing the functions of anti-adhesion and automatic delivery, the problems of thermally conductive patch adhesion and automatic delivery in the cutting device for thermally conductive patch processing are solved, and the quality and safety of finished products are improved.
Patent Information
- Application Number
- CN202421637714.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-10
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2034-07-10
AI Technical Summary
The existing cutting devices for thermally conductive patch processing lack the functions of anti-adhesion and automatic delivery, which leads to the thermally conductive patch being easily adhered to the cutting knife after cutting, and it needs to be taken out manually after cutting, affecting the quality and safety of the finished product.
A cutting device including a placement assembly, a blowing assembly and an anti-adhesive assembly is designed. The placement assembly consists of a cutting box and a cutting positioning groove. The blowing assembly blows the air to the thermal conducting patch through the jet nozzle to achieve automatic discharge; the anti-adhesion assembly avoids the thermal conducting patch and the cutting knife through the cooperation of the electric telescopic rod, spring and rubber plate.
It is realized that the thermally conductive patch does not adhere to the cutting knife after cutting, and can be automatically discharged after cutting, which improves the quality and safety of finished products and reduces the need for manual operation.
Smart Images

Figure CN222844241U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of cutting devices for processing thermal conductive patches, in particular to a cutting device for processing thermal conductive patches with an anti-adhesion function. Background Art
[0002] During the use of compact electrical appliances, heat will be generated, causing damage to the machine. In order to speed up the heat dissipation performance, during use, thermal conductive patches are attached to their surfaces to speed up the volatilization of heat. The thermal conductive patches need to be cut and shaped before use.
[0003] Common cutting devices for thermal patch processing only include cutting functions and can perform cutting operations on thermal patches, but lack anti-sticking and automatic unloading functions. They cannot guarantee that the thermal patch will not stick to the cutting knife after cutting and cannot guarantee automatic unloading after cutting is completed. It is easy for the adhesive layer of the thermal patch to stick to the cutting knife after cutting, and it is easy for personnel to manually remove the thermal patch after cutting is completed, affecting the quality and safety of the finished product.
[0004] Therefore, the above-mentioned cutting device for processing thermal conductive patches lacks the functions of anti-sticking and automatic unloading, and cannot ensure that the thermal conductive patch will not stick to the cutting knife after cutting and that it can be automatically unloaded after cutting is completed. These problems need to be solved urgently to improve the use scenarios of the cutting device for processing thermal conductive patches. Utility Model Content
[0005] In order to overcome the common cutting devices used for processing thermal conductive patches, there is a lack of anti-sticking and automatic unloading functions. It is impossible to ensure that the thermal conductive patch will not stick to the cutting knife after cutting and that it can be automatically unloaded after cutting is completed. It is easy for the adhesive layer of the thermal conductive patch to stick to the cutting knife after cutting, and it is easy for personnel to manually remove the thermal conductive patch after cutting is completed, affecting the quality and safety of the finished product.
[0006] The technical solution of the utility model is: a cutting device for processing anti-adhesion thermal conductive patches, including a placing component, the placing component consists of a cutting box and a cutting positioning groove, a plurality of cutting positioning grooves are evenly spaced at the inner bottom end of the cutting box, a blowing component is arranged on the side of the placing component, the blowing component consists of a connecting rod, a fixing strip, an air nozzle and an inner screw connecting pipe, two connecting rods are symmetrically welded on both sides of the lower side of the cutting box, a storage component is arranged on the other side of the placing component at a position corresponding to the blowing component, the storage component consists of a storage box, a protective frame, a protective door and a protective net, a storage box is welded on the lower side of the other side of the cutting box, an anti-adhesion component is arranged inside the cutting box, and the anti-adhesion component consists of an electric telescopic rod, a connecting plate, a fixing plate, a cutting knife, a supporting plate, a spring, a pressing plate and a rubber plate.
[0007] Preferably, by setting the functions of anti-sticking and automatic unloading, it can be ensured that the thermal conductive patch will not stick to the cutting knife after cutting and can be automatically unloaded after cutting is completed, so as to solve the problem that the common cutting device for thermal conductive patch processing only includes a cutting function and can cut the thermal conductive patch, but lacks the functions of anti-sticking and automatic unloading, and cannot ensure that the thermal conductive patch will not stick to the cutting knife after cutting and can be automatically unloaded after cutting is completed. It is easy for the adhesive layer of the thermal conductive patch to stick to the cutting knife after cutting, and it is easy for personnel to manually take out the thermal conductive patch after cutting is completed, affecting the quality and safety of the finished product.
[0008] Preferably, a fixing strip is welded to one end of the connecting rod, a plurality of air nozzles are arranged at equal intervals on the side of the fixing strip, a plurality of inner thread connecting tubes are arranged at equal intervals on the other side of the fixing strip corresponding to the positions of the air nozzles, one end of the inner thread connecting tube passes through the fixing strip and is connected to the air nozzle, the connecting tube of the air pump is screwed into the interior of the inner thread connecting tube, the air pump blows air into the interior of the inner thread connecting tube through the connecting tube, and then sprays air out through the air nozzle.
[0009] Preferably, a protective frame is welded on the top of the storage box, and two protective doors are symmetrically arranged on both sides of the protective frame. A protective net is arranged on the other side and the top of the protective frame. The air ejected from the air nozzle blows the thermal conductive patch after cutting toward the storage box until the thermal conductive patch falls into the interior of the storage box for storage, realizing the function of automatic unloading and preventing the problem of personnel manually taking out the thermal conductive patch after cutting is completed, which affects safety.
[0010] Preferably, a number of electric telescopic rods are symmetrically arranged at equal intervals on both sides of the top of the cutting box, and a connecting plate is welded at the bottom end of the electric telescopic rod. The thermal conductive patch is placed at the bottom end of the cutting box, and then the electric telescopic rod is started to drive the connecting plate to move downward.
[0011] Preferably, a fixing plate is provided at the bottom of the connecting plate, a cutting knife is welded at the position of the bottom of the fixing plate corresponding to the cutting positioning groove, the fixing plate is fixed to the connecting plate by bolts, and the connecting plate drives the cutting knife to move downward until the thermal conductive patch is cut.
[0012] Preferably, two support plates are symmetrically welded on both sides of the fixed plate, and a number of springs are welded on the bottom of the support plates at equal intervals. When the connecting plate drives the cutting knife to move downward, the pressure plate is also driven downward through the support plate. When the cutting knife cuts the thermal conductive patch, the pressure plate is driven to press the thermal conductive patch through the characteristics of the spring.
[0013] Preferably, a pressure plate is welded to the bottom end of the spring, and a rubber plate is provided at the bottom of the pressure plate. After the cutting of the thermal conductive patch is completed, the electric telescopic rod drives the cutting knife to reset. In the process of the cutting knife moving upward, the pressure plate pushes the thermal conductive patch adhered to the cutting knife downward through the characteristics of the spring, thereby separating the thermal conductive patch from the cutting knife, realizing the anti-adhesion function, and preventing the adhesive layer of the thermal conductive patch from adhering to the cutting knife after cutting, thereby affecting the quality of the finished product.
[0014] Beneficial effects of the utility model:
[0015] 1. By setting the functions of anti-adhesion and automatic unloading, it can be ensured that the thermal conductive patch will not stick to the cutting knife after cutting and can be automatically unloaded after cutting is completed, so as to solve the problem that the common cutting device for thermal conductive patch processing only includes the cutting function and can cut the thermal conductive patch, but lacks the functions of anti-adhesion and automatic unloading, and cannot ensure that the thermal conductive patch will not stick to the cutting knife after cutting and can be automatically unloaded after cutting is completed. It is easy for the adhesive layer of the thermal conductive patch to stick to the cutting knife after cutting, and it is easy for personnel to manually remove the thermal conductive patch after cutting is completed, affecting the quality and safety of the finished product;
[0016] 2. Screw the connecting pipe of the air pump into the inner thread connecting pipe. The air pump blows air into the inner thread connecting pipe through the connecting pipe, and then sprays it out through the air nozzle. The air sprayed by the air nozzle blows the cut thermal conductive patch out of the storage box until the thermal conductive patch falls into the storage box for storage, realizing the function of automatic unloading.
[0017] 3. Place the thermal conductive patch at the bottom of the cutting box, and then start the electric telescopic rod. The electric telescopic rod drives the connecting plate to move downward, and the connecting plate drives the cutting knife to move downward. When the connecting plate drives the cutting knife to move downward, it also drives the pressure plate to move downward through the support plate. When the cutting knife cuts the thermal conductive patch, the pressure plate is driven to press the thermal conductive patch through the characteristics of the spring. After the thermal conductive patch is cut, the electric telescopic rod drives the cutting knife to reset. In the process of the cutting knife moving upward, the pressure plate pushes the thermal conductive patch adhered to the cutting knife downward through the characteristics of the spring, thereby separating the thermal conductive patch from the cutting knife, thereby realizing the anti-adhesion function. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 Shown is a three-dimensional structural schematic diagram of a cutting device for processing an anti-adhesion thermal conductive patch of the utility model;
[0019] Figure 2 What is shown is a three-dimensional structural schematic diagram of a cutting device placement component for processing a heat conductive patch for preventing adhesion according to the utility model;
[0020] Figure 3 The three-dimensional structure diagram of the blowing assembly of a cutting device for processing a heat conductive patch with anti-adhesion is shown in the utility model;
[0021] Figure 4 Shown is a three-dimensional structural schematic diagram of an anti-adhesion component of a cutting device for processing an anti-adhesion thermal conductive patch of the utility model.
[0022] In the figure: 1. Placement component; 11. Cutting box; 12. Cutting positioning groove; 2. Blowing component; 21. Connecting rod; 22. Fixing strip; 23. Air nozzle; 24. Internal screw connecting pipe; 3. Storage component; 31. Storage box; 32. Protection frame; 33. Protection door; 34. Protection net; 4. Anti-adhesion component; 41. Electric telescopic rod; 42. Connecting plate; 43. Fixing plate; 44. Cutting knife; 45. Support plate; 46. Spring; 47. Pressure plate; 48. Rubber plate. DETAILED DESCRIPTION
[0023] The utility model is further described below in conjunction with the accompanying drawings and embodiments.
[0024] See also Figure 1-4 The utility model provides an embodiment: a cutting device for processing a heat conductive patch with anti-adhesion, comprising a placing component 1, the placing component 1 is composed of a cutting box 11 and a cutting positioning groove 12, a plurality of cutting positioning grooves 12 are provided at equal intervals on the inner bottom end of the cutting box 11, a blowing component 2 is arranged on the side of the placing component 1, the blowing component 2 is composed of a connecting rod 21, a fixing strip 22, an air nozzle 23 and an inner screw connecting pipe 24, two connecting rods 21 are symmetrically welded on both sides of the lower side of the cutting box 11, a storage component 3 is arranged on the other side of the placing component 1 corresponding to the position of the blowing component 2, the storage component 3 is composed of a storage box 31, a protective frame 32, a protective door 33 and a protective net 34, a storage box 31 is welded on the lower side of the other side of the cutting box 11, an anti-adhesion component 4 is arranged inside the cutting box 11, and the anti-adhesion component 4 is composed of an electric telescopic rod 41, a connecting plate 42, a fixing plate 43, a cutting knife 44, a supporting plate 45, a spring 46, a pressing plate 47 and a rubber plate 48.
[0025] See also Figure 1-4In this embodiment, a fixing strip 22 is welded to one end of the connecting rod 21, and a plurality of air nozzles 23 are arranged at equal intervals on the side of the fixing strip 22. A plurality of inner screw connecting tubes 24 are arranged at equal intervals corresponding to the positions of the air nozzles 23 on the other side of the fixing strip 22. One end of the inner screw connecting tube 24 penetrates the fixing strip 22 and is connected to the air nozzles 23. The thermal conductive patch is placed at the bottom end of the cutting box 11, and then the electric telescopic rod 41 is started. The electric telescopic rod 41 drives the connecting plate 42 to move downward, and the connecting plate 42 drives the cutting knife 44 to move downward. When the connecting plate 42 drives the cutting knife 44 to move downward, the pressure plate 47 is also driven downward through the support plate 45. When the cutting knife 44 cuts the thermal conductive patch, the spring 46 is used to release the pressure. The characteristics drive the pressure plate 47 to press the thermal conductive patch. After the cutting of the thermal conductive patch is completed, the electric telescopic rod 41 drives the cutting knife 44 to reset. In the process of the cutting knife 44 moving upward, the characteristics of the spring 46 enable the pressure plate 47 to push the thermal conductive patch adhered to the cutting knife 44 downward, thereby separating the thermal conductive patch from the cutting knife 44. After the cutting knife 44 is reset, the connecting pipe of the air pump is screwed into the interior of the inner screw connecting pipe 24, and the air pump blows air into the interior of the inner screw connecting pipe 24 through the connecting pipe, and then sprays it out through the air nozzle 23. The air sprayed by the air nozzle 23 blows the thermal conductive patch after cutting toward the storage box 31 until the thermal conductive patch falls into the interior of the storage box 31 for storage, completing the automatic unloading and anti-adhesion work.
[0026] See also Figure 1-4A fixing bar 22 is welded to one end of the connecting rod 21, and a plurality of air nozzles 23 are arranged at equal intervals on the side of the fixing bar 22. A plurality of inner screw connecting pipes 24 are arranged at equal intervals on the other side of the fixing bar 22 corresponding to the position of the air nozzles 23. One end of the inner screw connecting pipe 24 passes through the fixing bar 22 and is connected to the air nozzles 23. A protective frame 32 is welded to the top of the storage box 31. Two protective doors 33 are symmetrically arranged on the two sides of the protective frame 32. A protective net 34 is arranged on the other side and the top of the protective frame 32. A plurality of electric telescopic rods 41 are symmetrically arranged at equal intervals on both sides of the top of the cutting box 11. A connecting plate 42 is welded to the bottom end of the electric telescopic rod 41, a fixing plate 43 is arranged at the bottom of the connecting plate 42, a cutting knife 44 is welded to the bottom of the fixing plate 43 corresponding to the position of the cutting positioning groove 12, the fixing plate 43 is fixed to the connecting plate 42 by bolts, two supporting plates 45 are symmetrically welded to the two sides of the fixing plate 43, a plurality of springs 46 are welded to the bottom of the supporting plate 45 at equal intervals, a pressing plate 47 is welded to the bottom end of the spring 46, a rubber plate 48 is arranged at the bottom of the pressing plate 47, a heat conductive patch is placed at the bottom end of the inside of the cutting box 11, and then the electric telescopic rod 41 is started, and the electric telescopic rod 41 The connecting plate 42 is driven to move downward, and the connecting plate 42 drives the cutting knife 44 to move downward. When the connecting plate 42 drives the cutting knife 44 to move downward, the pressing plate 47 is also driven to move downward through the supporting plate 45. When the cutting knife 44 cuts the thermal conductive patch, the pressing plate 47 is driven to press the thermal conductive patch through the characteristics of the spring 46. After the thermal conductive patch is cut, the electric telescopic rod 41 drives the cutting knife 44 to reset. When the cutting knife 44 moves upward, the pressing plate 47 pushes the thermal conductive patch adhered to the cutting knife 44 downward through the characteristics of the spring 46, so that the thermal conductive patch and the cutting knife 4 4 is separated, and after the cutting knife 44 is reset, the connecting pipe of the air pump is screwed into the interior of the inner screw connecting pipe 24, and the air pump blows air into the interior of the inner screw connecting pipe 24 through the connecting pipe, and then sprays it out through the air nozzle 23. The air sprayed by the air nozzle 23 blows the thermal conductive patch after cutting to the storage box 31 until the thermal conductive patch falls into the storage box 31 for storage, realizing the functions of automatic unloading and anti-adhesion, preventing the need for personnel to manually take out the thermal conductive patch after cutting, and preventing the adhesive layer of the thermal conductive patch from adhering to the cutting knife 44 after cutting, which affects the quality and safety of the finished product.
[0027] When working, the thermal conductive patch is placed at the bottom end of the cutting box 11, and then the electric telescopic rod 41 is started. The electric telescopic rod 41 drives the connecting plate 42 to move downward, and the connecting plate 42 drives the cutting knife 44 to move downward. When the connecting plate 42 drives the cutting knife 44 to move downward, the pressure plate 47 is also driven downward by the supporting plate 45. When the cutting knife 44 cuts the thermal conductive patch, the pressure plate 47 is driven by the characteristics of the spring 46 to press the thermal conductive patch. After the cutting of the thermal conductive patch is completed, the electric telescopic rod 41 drives the cutting knife 44 to reset. When the cutting knife 44 moves to During the upward movement, the pressure plate 47 pushes the thermally conductive patch adhered to the cutting knife 44 downward due to the characteristics of the spring 46, thereby separating the thermally conductive patch from the cutting knife 44. After the cutting knife 44 is reset, the connecting pipe of the air pump is screwed into the interior of the inner screw connecting pipe 24, and the air pump blows air into the interior of the inner screw connecting pipe 24 through the connecting pipe, and then sprays it out through the air nozzle 23. The air sprayed from the air nozzle 23 blows the thermally conductive patch after cutting toward the storage box 31 until the thermally conductive patch falls into the interior of the storage box 31 for storage, thereby realizing the functions of automatic unloading and anti-adhesion.
[0028] Through the above steps, by setting the anti-sticking and automatic unloading functions, it can be ensured that the thermal conductive patch will not stick to the cutting knife 44 after cutting and can be automatically unloaded after cutting is completed, so as to solve the common cutting device for thermal conductive patch processing, which only includes a cutting function and can cut the thermal conductive patch, but lacks the anti-sticking and automatic unloading functions, and cannot ensure that the thermal conductive patch will not stick to the cutting knife 44 after cutting and can be automatically unloaded after cutting is completed. It is easy for the adhesive layer of the thermal conductive patch to stick to the cutting knife 44 after cutting, and it is easy for personnel to manually remove the thermal conductive patch after cutting is completed, affecting the quality and safety of the finished product.
[0029] The embodiments of the present invention are described in detail above in conjunction with the accompanying drawings, but the present invention is not limited to the above embodiments, and various changes can be made within the knowledge scope of those skilled in the art without departing from the purpose of the present invention.
Claims
1. A cutting device for processing a heat-conducting patch with an anti-adhesion function, comprising a placement component, characterized in that: The placement component consists of a cutting box and a cutting positioning groove. A number of cutting positioning grooves are provided at equal intervals on the inner bottom of the cutting box. A blowing component is arranged on the side of the placement component. The blowing component consists of a connecting rod, a fixing strip, an air nozzle and an inner screw connecting pipe. Two connecting rods are symmetrically welded on both sides of the lower side of the cutting box. A storage component is arranged on the other side of the placement component at the position corresponding to the blowing component. The storage component consists of a storage box, a protective frame, a protective door and a protective net. A storage box is welded on the lower side of the other side of the cutting box. An anti-adhesion component is arranged inside the cutting box. The anti-adhesion component consists of an electric telescopic rod, a connecting plate, a fixing plate, a cutting knife, a support plate, a spring, a pressure plate and a rubber plate.
2. The cutting device for processing an anti-adhesion thermal conductive patch according to claim 1, characterized in that: A fixing strip is welded at one end of the connecting rod, and a plurality of air nozzles are arranged at equal intervals on the side of the fixing strip. A plurality of inner thread connecting pipes are arranged at equal intervals on the other side of the fixing strip corresponding to the positions of the air nozzles, and one end of the inner thread connecting pipe passes through the fixing strip and is connected to the air nozzle.
3. The cutting device for processing an anti-adhesion thermal conductive patch according to claim 1, characterized in that: A protection frame is welded on the top of the storage box, two protection doors are symmetrically arranged on the two sides of the protection frame, and a protection net is arranged on the other side and the top of the protection frame.
4. The cutting device for processing an anti-adhesion thermal conductive patch according to claim 1, characterized in that: A plurality of electric telescopic rods are symmetrically arranged at equal intervals on both sides of the top of the cutting box body, and a connecting plate is welded at the bottom end of the electric telescopic rod.
5. The cutting device for processing an anti-adhesion thermal conductive patch according to claim 4, characterized in that: A fixing plate is arranged at the bottom of the connecting plate, a cutting knife is welded at the bottom of the fixing plate at a position corresponding to the cutting positioning groove, and the fixing plate is fixed to the connecting plate by bolts.
6. The cutting device for processing an anti-adhesion thermal conductive patch according to claim 5, characterized in that: Two supporting plates are symmetrically welded on both sides of the fixing plate, and a plurality of springs are welded on the bottom of the supporting plate at equal intervals.
7. The cutting device for processing an anti-adhesion thermal conductive patch according to claim 6, characterized in that: A pressure plate is welded to the bottom end of the spring, and a rubber plate is arranged at the bottom of the pressure plate.