Quantitative cutting tool for filter material
By introducing quantitative structure and extrusion structure into the filter material cutting tooling, the problem of inaccurate cutting caused by inertial sliding during the filter sponge cutting process is solved, and a unified specification of filter sponge cutting is achieved.
Patent Information
- Application Number
- CN202421701610.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-18
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-07-18
AI Technical Summary
During the cutting and filtering sponge, the filtering sponge is prone to slipping due to inertia, resulting in inaccurate cutting length, making it difficult to obtain a filtering sponge with uniform specifications.
The quantitative structure and extrusion structure are adopted to prevent the inertial movement of the filter sponge through the baffle and press it before cutting to ensure stable position, thereby achieving uniform cutting of specifications.
The filter sponge is achieved accurately cut length, ensuring uniform specifications of the cut sponge and improving the stability and accuracy of the cut.
Smart Images

Figure CN223115305U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of cutting tooling, in particular to a quantitative cutting tooling for filter materials. Background Art
[0002] A filter material is a material used to filter impurities, separate impurities or regulate fluids, and usually has a porous structure inside. Among them, there is a filter material mainly made of sponge. When producing filter sponge, it is necessary to cut the filter sponge into appropriate sizes.
[0003] The above-mentioned and existing technologies have the following defects: During the process of cutting the filter sponge, the strip-shaped filter sponge will be conveyed under the cutting knife along the roller conveyor, and then the roller conveyor is used to control the filter sponge to move a certain length, and then the cutting knife is used to cut off the filter sponge. However, during the process of conveying the filter sponge, the filter sponge is prone to slide due to inertia, resulting in inaccurate subsequent cutting lengths, and thus it is not convenient to quantitatively cut the filter sponge to obtain filter sponges with uniform specifications.
[0004] Therefore, a quantitative cutting tooling for filter materials is proposed. Content of the Utility Model
[0005] The purpose of the utility model is to solve the defect that the filter sponge is prone to slide due to inertia, resulting in inaccurate subsequent cutting lengths, and to propose a quantitative cutting tooling for filter materials.
[0006] To achieve the above purpose, the utility model adopts the following technical scheme: A quantitative cutting tooling for filter materials, including a bracket and a filter sponge. A plurality of rotating rollers are rotatably connected to the inner wall of the bracket. The filter sponge is located above the rotating rollers. One end of the rotating roller is fixedly connected with a belt pulley. A driving motor is fixedly connected to the surface of the bracket. The output end of the driving motor is fixedly connected with a driving wheel. A belt is sleeved on the arc surfaces of the belt pulley and the driving wheel. A fixing plate is fixedly connected to the upper surface of the bracket. A first electric push rod is fixedly connected to the surface of the fixing plate. The output end of the first electric push rod is fixedly connected with a cutting knife. A supporting plate is fixedly connected to the inner wall of the bracket. A quantitative structure is arranged on the upper surface of the bracket. The quantitative structure includes two supporting plates. The supporting plates are fixedly connected with the bracket. A sliding plate is slidably connected to the surface of the supporting plate. A rotating shaft is rotatably connected to the inner wall of the sliding plate. A gear is fixedly connected to the arc surface of the rotating shaft. A second electric push rod is fixedly connected to the surface of the sliding plate. The output end of the second electric push rod is fixedly connected with a rack. The gear is engaged with the rack. A baffle is fixedly connected to the arc surface of the rotating shaft.
[0007] The effects achieved by the above components are as follows: By setting the quantitative structure, when cutting the filter sponge, the baffle can prevent the filter sponge from moving due to inertia, thereby restricting the position of the filter sponge and facilitating the cutting of filter sponges with uniform specifications.
[0008] Preferably, a bolt is threadedly connected inside the sliding plate, and the bolt passes through the sliding plate and abuts against the surface of the support plate.
[0009] The effects achieved by the above components are as follows: After the bolt abuts against the surface of the fixed plate, the bolt can restrict the position of the sliding plate, thereby restricting the position of the baffle.
[0010] Preferably, a limiting strip is fixedly connected to the upper surface of the fixed plate, and the limiting strip is slidably connected to the sliding plate.
[0011] The effects achieved by the above components are as follows: The limiting strip can restrict the sliding direction of the sliding plate, so that the sliding plate can only slide in the horizontal direction.
[0012] Preferably, the vertical cross-section of the limiting strip is in a "U" shape.
[0013] The effects achieved by the above components are as follows: The limiting strip with a vertical cross-section in a "U" shape can prevent the sliding plate from detaching from the fixed plate when sliding in the horizontal direction.
[0014] Preferably, a scale groove is provided on the surface of the limiting strip.
[0015] The effects achieved by the above components are as follows: The scale groove can facilitate the control of the moving length of the sliding plate.
[0016] Preferably, an extrusion structure is provided on the surface of the fixed plate. The extrusion structure includes a servo motor, the servo motor is fixedly connected to the fixed plate, the output end of the servo motor is fixedly connected to a threaded tube, the threaded tube is rotatably connected to the fixed plate, a threaded rod is threadedly connected to the inner wall of the threaded tube, and a pressing plate is fixedly connected to the lower end of the threaded rod.
[0017] The effects achieved by the above components are as follows: By setting the extrusion structure, before cutting the filter sponge, when the pressing plate presses the filter sponge tightly, the position of the filter sponge can be restricted, thereby facilitating the subsequent stable cutting of the filter sponge.
[0018] Preferably, a limiting rod is fixedly connected to the upper surface of the pressing plate, and the limiting rod slidably penetrates through the fixed plate.
[0019] The effects achieved by the above components are as follows: The movement of the pressing plate will drive the limiting rod to slide inside the fixed plate, and the fixed plate can restrict the movement path of the limiting rod, thereby preventing the pressing plate from rotating.
[0020] Compared with the prior art, the advantages and positive effects of the present utility model are as follows:
[0021] 1. In the present utility model, by setting a quantitative structure, when cutting the filter sponge, the baffle can prevent the filter sponge from moving due to inertia, thereby restricting the position of the filter sponge and facilitating the cutting of filter sponges with uniform specifications.
[0022] 2. In the present utility model, by setting an extrusion structure, before cutting the filter sponge, when the pressing plate presses the filter sponge tightly, the position of the filter sponge can be restricted, thus facilitating the subsequent stable cutting of the filter sponge. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic diagram of the overall structure of the present utility model.
[0024] Figure 2 It is a schematic diagram of the structure at the bracket of the present utility model;
[0025] Figure 3 It is a schematic diagram of the structure at the support plate of the present utility model;
[0026] Figure 4 It is a partial schematic diagram of the structure at the sliding plate of the present utility model.
[0027] Legend: 1. Bracket; 2. Roller; 3. Belt pulley; 4. Driving motor; 5. Driving wheel; 6. Belt; 7. Filter sponge; 8. Quantitative structure; 801. Support plate; 802. Sliding plate; 803. Rotating shaft; 804. Gear; 805. Second electric push rod; 806. Rack; 807. Baffle; 808. Bolt; 809. Limit strip; 810. Scale groove; 9. Extrusion structure; 91. Servo motor; 92. Threaded tube; 93. Threaded rod; 94. Pressing plate; 95. Limit rod; 10. Fixed plate; 11. First electric push rod; 12. Cutter; 13. Support plate. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0028] In order to more clearly understand the above objects, features and advantages of the present utility model, the present utility model will be further described below with reference to the drawings and embodiments. It should be noted that, without conflict, the embodiments of the present application and the features in the embodiments can be combined with each other.
[0029] In the following description, many specific details are set forth in order to fully understand the present utility model. However, the present utility model can also be implemented in other ways different from those described herein. Therefore, the present utility model is not limited by the specific embodiments disclosed in the following specification.
[0030] Such as Figures 1 - 4As shown in the figure, the utility model provides a quantitative cutting tooling for filter materials, including a bracket 1 and a filter sponge 7. A plurality of rollers 2 are rotatably connected to the inner wall of the bracket 1. The filter sponge 7 is located above the rollers 2. One end of the roller 2 is fixedly connected with a pulley 3. A driving motor 4 is fixedly connected to the surface of the bracket 1. The output end of the driving motor 4 is fixedly connected with a driving wheel 5. A belt 6 is sleeved on the arc surfaces of the pulley 3 and the driving wheel 5. A fixed plate 10 is fixedly connected to the upper surface of the bracket 1. A first electric push rod 11 is fixedly connected to the surface of the fixed plate 10. The output end of the first electric push rod 11 is fixedly connected with a cutter 12. A support plate 13 is fixedly connected to the inner wall of the bracket 1. A quantitative structure 8 is arranged on the upper surface of the bracket 1. An extrusion structure 9 is arranged on the surface of the fixed plate 10.
[0031] Next, specifically describe the specific settings and functions of its quantitative structure 8 and extrusion structure 9.
[0032] As Figure 2 and Figure 3 shown, the quantitative structure 8 includes two support plates 801. The support plates 801 are fixedly connected to the bracket 1. A sliding plate 802 is slidably connected to the surface of the support plates 801. A rotating shaft 803 is rotatably connected to the inner wall of the sliding plate 802. A gear 804 is fixedly connected to the arc surface of the rotating shaft 803. A second electric push rod 805 is fixedly connected to the surface of the sliding plate 802. The output end of the second electric push rod 805 is fixedly connected with a rack 806. The gear 804 meshes with the rack 806. A baffle 807 is fixedly connected to the arc surface of the rotating shaft 803. A bolt 808 is threadedly connected to the sliding plate 802. The bolt 808 passes through the sliding plate 802 and abuts against the surface of the support plate 801. When the bolt 808 abuts against the surface of the fixed plate 10, the bolt 808 plays a role in restricting the position of the sliding plate 802, thereby restricting the position of the baffle 807. A limiting strip 809 is fixedly connected to the upper surface of the fixed plate 10. The limiting strip 809 is slidably connected to the sliding plate 802. The limiting strip 809 can restrict the sliding direction of the sliding plate 802, so that the sliding plate 802 can only slide in the horizontal direction. The vertical cross-section of the limiting strip 809 is in a "U" shape. The limiting strip 809 with a vertical cross-section in a "U" shape can prevent the sliding plate 802 from detaching from the contact with the fixed plate 10 when sliding in the horizontal direction. A scale groove 810 is opened on the surface of the limiting strip 809. The scale groove 810 plays a role in facilitating the grasping of the moving length of the sliding plate 802.
[0033] As Figure 4As shown, the extrusion structure 9 includes a servo motor 91, which is fixedly connected to the fixed plate 10. The output end of the servo motor 91 is fixedly connected to a threaded tube 92, and the threaded tube 92 is rotatably connected to the fixed plate 10. A threaded rod 93 is threadedly connected to the inner wall of the threaded tube 92. The lower end of the threaded rod 93 is fixedly connected to a pressing plate 94. A limiting rod 95 is fixedly connected to the upper surface of the pressing plate 94. The limiting rod 95 slidably penetrates through the fixed plate 10. When the pressing plate 94 moves, it will drive the limiting rod 95 to slide inside the fixed plate 10. The fixed plate 10 can limit the movement path of the limiting rod 95, thereby preventing the pressing plate 94 from rotating.
[0034] The overall working principle is as follows: when the output end of the driving motor 4 rotates, the driving wheel 5 can drive the belt 6 to move, the belt 6 will drive the pulley 3 to rotate, the pulley 3 can drive the filter sponge 7 to move, and the movement of the filter sponge 7 will abut against the surface of the baffle 807. At this time, the baffle 807 can prevent the filter sponge 7 from moving due to inertia, thereby restricting the position of the filter sponge 7, facilitating the cutting of the filter sponge 7 with a unified specification. When cutting the filter sponge 7, the driving motor 4 is paused and the output end of the servo motor 91 is controlled to rotate. The threaded tube 92 will follow the rotation of the output end of the servo motor 91 and drive the threaded rod 93 to move by means of the thread. The movement of the threaded rod 93 will drive the pressing plate 94 to move downward. The movement of the pressing plate 94 will squeeze the filter sponge 7 and drive the limiting rod 95 to slide within the fixed plate 10. The fixed plate 10 can limit the movement path of the limiting rod 95, thereby preventing the pressing plate 94 from rotating. When the pressing plate 94 presses the filter sponge 7 tightly, the position of the filter sponge 7 can be restricted, facilitating the subsequent stable cutting of the filter sponge 7. Then, the output end of the first electric push rod 11 is controlled to extend, and the cooperation between the cutting knife 12 and the support plate 13 can conveniently cut the filter sponge 7. Then, the output end of the servo motor 91 is controlled to rotate in the reverse direction, so that the pressing plate 94 moves upward and disengages from the filter sponge 7. Next, the output end of the second electric push rod 805 is controlled to extend, the rack 806 will drive the gear 804 to rotate, the rotation of the gear 804 will drive the rotating shaft 803 to rotate, and the rotation of the rotating shaft 803 will drive the baffle 807 to rotate to the horizontal state. Then, the output end of the driving motor 4 is controlled to rotate again to convey the cut filter sponge 7 for a certain distance. Then, the output end of the second electric push rod 805 is controlled to contract to make the baffle 807 rotate to the vertical state to continue blocking the filter sponge 7. When it is necessary to adjust the cutting length of the filter sponge 7, first rotate the bolt 808. The bolt 808 will move by means of the thread and disengage from the support plate 801. Then, slide the sliding plate 802 along the surface of the support plate 801. The rotating shaft 803 will drive the baffle 807 to move by sliding the sliding plate 802, thereby adjusting the horizontal distance between the baffle 807 and the cutting knife 12, and thus being able to adjust the length of the cut filter sponge 7. During this process, the limiting strip 809 can limit the sliding direction of the sliding plate 802, so that the sliding plate 802 can only slide in the horizontal direction. At the same time, the limiting strip 809 with a "U" - shaped vertical cross - section can also prevent the sliding plate 802 from disengaging from the fixed plate 10 when sliding in the horizontal direction. The scale groove 810 serves the purpose of facilitating the grasping of the moving length of the sliding plate 802. After the adjustment is completed, rotate the bolt 808 in the reverse direction. When the bolt 808 abuts against the surface of the fixed plate 10, the bolt 808 can restrict the position of the sliding plate 802, thereby restricting the position of the baffle 807.
[0035] The above are only the preferred embodiments of the present utility model, and are not intended to limit the present utility model in other forms. Any person skilled in the relevant art may use the technical content disclosed above to make changes or modifications into equivalent embodiments with equivalent changes and apply them to other fields. However, as long as it does not depart from the technical solution content of the present utility model, any simple modification, equivalent change and modification made to the above embodiments based on the technical essence of the present utility model still fall within the protection scope of the technical solution of the present utility model.
Claims
1. A quantitative cutting tooling for filter materials, comprising a bracket (1) and a filter sponge (7), characterized in that: A plurality of rollers (2) are rotatably connected to the inner wall of the bracket (1). The filter sponge (7) is located above the rollers (2). One end of the roller (2) is fixedly connected to a pulley (3). A drive motor (4) is fixedly connected to the surface of the bracket (1). The output end of the drive motor (4) is fixedly connected to a drive wheel (5). A belt (6) is sleeved on the arc surfaces of the pulley (3) and the drive wheel (5). A fixed plate (10) is fixedly connected to the upper surface of the bracket (1). A first electric push rod (11) is fixedly connected to the surface of the fixed plate (10). The output end of the first electric push rod (11) is fixedly connected to a cutter (12). A support plate (13) is fixedly connected to the inner wall of the bracket (1). A quantitative structure (8) is arranged on the upper surface of the bracket (1). The quantitative structure (8) includes two support plates (801). The support plates (801) are fixedly connected to the bracket (1). A sliding plate (802) is slidably connected to the surface of the support plates (801). A rotating shaft (803) is rotatably connected to the inner wall of the sliding plate (802). A gear (804) is fixedly connected to the arc surface of the rotating shaft (803). A second electric push rod (805) is fixedly connected to the surface of the sliding plate (802). The output end of the second electric push rod (805) is fixedly connected to a rack (806). The gear (804) is meshed with the rack (806). A baffle (807) is fixedly connected to the arc surface of the rotating shaft (803).
2. The quantitative cutting tooling for a filter material according to claim 1, characterized in that: A bolt (808) is threadedly connected to the sliding plate (802). The bolt (808) passes through the sliding plate (802) and abuts against the surface of the support plate (801).
3. A quantitative cutting tooling for a filtering material according to claim 1, characterized in that: A limiting strip (809) is fixedly connected to the upper surface of the fixed plate (10). The limiting strip (809) is slidably connected to the sliding plate (802).
4. A quantitative cutting tool for a filter material according to claim 3, characterized in that: The vertical cross-section of the limiting strip (809) is in a "U" shape.
5. The quantitative cutting tooling for a filter material according to claim 3, wherein: A scale groove (810) is formed on the surface of the limiting strip (809).
6. The quantitative cutting tooling for a filtering material according to claim 1, wherein: An extrusion structure (9) is arranged on the surface of the fixed plate (10). The extrusion structure (9) includes a servo motor (91). The servo motor (91) is fixedly connected to the fixed plate (10). The output end of the servo motor (91) is fixedly connected to a threaded tube (92). The threaded tube (92) is rotatably connected to the fixed plate (10). A threaded rod (93) is threadedly connected to the inner wall of the threaded tube (92). The lower end of the threaded rod (93) is fixedly connected to a pressing plate (94).
7. A quantitative cutting tool for a filter material according to claim 6, characterized in that: A limiting rod (95) is fixedly connected to the upper surface of the pressing plate (94). The limiting rod (95) slidably penetrates through the fixed plate (10).