A new material glitter powder processing slicer
By introducing a positioning structure, a driving structure, and an adjusting structure into the slicing machine for glitter powder processing, precise positioning and individual fixing of the material roll and quick disassembly and installation of the slitting blade are achieved. This solves the problems of low efficiency and poor safety in material roll fixing and slitting blade replacement in the existing technology, and improves operating efficiency and safety.
Patent Information
- Application Number
- CN202511195956.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-26
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2045-08-26
AI Technical Summary
Existing glitter powder slicing machines suffer from time-consuming, labor-intensive, low-precision, and unsafe processes during material roll fixing and slitting blade replacement, and are also inconvenient to operate.
A new material glitter powder slicing machine is adopted, which includes a positioning structure, a drive structure, an adjustment structure and an installation structure. The electric push rod and synchronous belt system realize the precise positioning and individual fixation of the material roll. The electric push rod and synchronous belt system realize the quick disassembly and installation of the slitting blade. The motor drive structure realizes the winding and slitting of the material.
It improves the efficiency and safety of material roll fixing and slitting blade replacement, reduces the physical exertion of operators, and ensures the consistency of cutting and the comfort of operation.
Smart Images

Figure CN120697101B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of material processing equipment technology, specifically to a slicing machine for processing glitter powder. Background Technology
[0002] In the production of glitter powder, wider materials need to be cut into narrower slices. A vertical slitting machine is generally used for slitting. One end of the vertical slitting machine is equipped with an air shaft for fixing the material roll and feeding it. Two air shafts are installed at the other end of the vertical slitting machine for winding up the slitting material. During the material conveying process, the wider material is cut into narrower slices by the slitting blades for subsequent use. The slitting blades are mounted on the blade holder with two bolts and a pressure block. The blade holder is then mounted equidistantly on the mounting shaft.
[0003] However, after the unsliced roll is installed on the air shaft, its position on the air shaft needs to be adjusted first, and then it is fixed by the air shaft. This is usually done manually by the operator pushing the roll to adjust its position. Because the unsliced roll is quite heavy, manual adjustment is time-consuming and laborious, and there is a risk of deviation, resulting in low accuracy. Furthermore, the slitting blades need to be replaced after a period of use. Replacement requires unscrewing the two spirals with a wrench, which requires the operator to enter the slicing machine. Due to the limited operating space, this is also problematic. The operation is not very comfortable, and the hands may be cut by the slitting blade if you are not careful, which leads to poor operation safety. If the blade holder is completely removed, it will take some time to adjust the position of the blade holder during the subsequent installation process, which makes it inconvenient to quickly change the slitting blade. At the same time, multiple materials will be wound on the same air shaft during winding. When you need to remove the sliced material, you must first remove the air shaft and then remove multiple rolls of material from the air shaft. Since there are multiple rolls of material wound on the air shaft, the weight is relatively heavy, so it is quite laborious to operate, and each time the air shaft is disassembled and reassembled, it also wastes some time. Summary of the Invention
[0004] To address the problems in the prior art, this invention provides a slicing machine for processing glitter powder.
[0005] The technical solution adopted by the present invention to solve its technical problem is: a slicing machine for processing glitter powder, comprising a vertical slicing machine body, a positioning structure on the vertical slicing machine body, an installation shaft rotatably connected to the vertical slicing machine body, a slicing structure on the installation shaft, a limiting structure on the slicing structure, an adjusting structure on the vertical slicing machine body, an installation structure on the vertical slicing machine body, a driving structure on the vertical slicing machine body, and a second air shaft installed on the vertical slicing machine body;
[0006] The installation structure includes a connecting shaft and a rotating plate. Two connecting shafts are fixedly connected to the main body of the vertical slitting machine. Multiple rotating plates are rotatably connected to the connecting shafts. A first air shaft is rotatably connected to the rotating plate. A sliding plate is slidably connected to the rotating plate. A locking block is fixedly connected to the sliding plate. A connecting sleeve is provided on one side of the rotating plate. The connecting sleeve is fixedly connected to the connecting shaft. The connecting sleeve has four locking slots. The locking block engages with one of the locking slots on the adjacent connecting sleeve. A second spring is fixedly connected between the sliding plate and the rotating plate.
[0007] Specifically, the four bayonets are arranged in a circular array about the middle of the connecting sleeve, and the cross-section of the card block near the bayonet is trapezoidal.
[0008] Specifically, the drive structure includes a second motor and a long shaft. A long shaft is provided on one side of the connecting shaft. The long shaft is rotatably connected to the body of the vertical slitting machine. A plurality of first synchronous pulleys are fixedly connected to the long shaft. A plurality of rotating sleeves corresponding one-to-one with the first synchronous pulleys are fixedly connected to the connecting shaft. A first synchronous pulley is fixedly connected to the rotating sleeve. A first synchronous belt is wound between two adjacent first synchronous pulleys. A second synchronous pulley is fixedly connected to the rotating sleeve. A second synchronous pulley is fixedly connected to the first air shaft. The same second synchronous belt is wound between two adjacent second synchronous pulleys.
[0009] Specifically, the adjustment structure includes an electric push rod and a moving plate. Two electric push rods are installed on the vertical slitting machine body. The extended end of the electric push rod is fixedly connected to the moving plate. The moving plate is slidably connected to the guide seat. The guide seat is fixedly connected to the vertical slitting machine body. A guide shaft is fixedly connected to the moving plate. Two connecting plates are fixedly connected to the mounting shaft. The connecting plates are provided with guide grooves that are horizontal at both ends and inclined in the middle. The guide shaft extends into the interior of the guide groove and is slidably connected to the connecting plates.
[0010] Specifically, the slitting structure includes a connecting seat and a positioning protrusion. Multiple connecting seats are mounted on the mounting shaft. A stop block is rotatably connected to each connecting seat. A screw is rotatably connected to each connecting seat. A fixed handle is threaded onto the screw. One end of the fixed handle abuts against the stop block. The stop block abuts against the mounting shaft. A positioning protrusion is integrally formed at one end of the connecting seat and engages with the mounting seat. A positioning groove is provided on the mounting seat, and a slitting blade engages inside the positioning groove. Two bolts are threaded onto the mounting seat. One end of each bolt abuts against one side of a pressure block, and the other side of the pressure block abuts against the slitting blade.
[0011] Specifically, the overall cross-section of the positioning protrusion is stepped, and the cross-section of one end of the positioning protrusion is trapezoidal.
[0012] Specifically, the mounting shaft has a cut surface, and one side of the abutment block is in contact with the cut surface.
[0013] Specifically, the mounting base is provided with a limiting structure, which includes a slider and a locking rod. Sliders are slidably connected to both sides of the mounting base, and one end of the two sliders is fixedly connected to the same locking rod. The positioning protrusion is provided with a locking groove, and the locking rod engages with the locking groove. A first spring is fixedly connected between the slider and the mounting base.
[0014] Specifically, the positioning structure includes a first motor and a drive rod. The drive rod is rotatably connected to the vertical slitting machine body. The first motor is installed on the vertical slitting machine body. The output shaft of the first motor is fixedly connected to one end of the drive rod. A guide post is provided on both sides of the drive rod. The two guide posts are fixedly connected to the vertical slitting machine body. Two push plates are threadedly connected to the drive rod. The push plates are slidably connected to the two guide posts.
[0015] Specifically, a limiting sleeve is fixedly connected to the guide post, and two limiting sleeves located on the same guide post are symmetrically distributed about the middle of the guide post. The two push plates are symmetrically distributed about the middle of the drive rod, and the two threads on the drive rod have opposite thread directions.
[0016] The beneficial effects of this invention are:
[0017] The present invention discloses a new material slicing machine for processing glitter powder. The installation structure includes a rotating plate and a first air shaft. The first air shaft can fix the sliced material individually. Therefore, when it is necessary to disassemble the sliced material, only individual disassembly is required, which not only saves physical labor, but also avoids repeated disassembly and reassembly of the first air shaft, thereby effectively shortening the operation time and improving the operation efficiency. The drive structure can drive the first air shaft to rotate, thereby facilitating the winding of the sliced material.
[0018] (2) The new material glitter powder processing slicing machine of the present invention includes a connecting seat, a positioning protrusion, a mounting seat and a slicing blade. The slicing blade can slice the material, so that the wider material is sliced into narrower slices. When the slicing blade needs to be disassembled, the positioning protrusion can be quickly released by the limiting structure. Then the mounting seat can be moved to separate it from the positioning protrusion. At this time, the mounting seat is quickly disassembled and the slicing blade is disassembled along with the mounting seat. Therefore, it can avoid disassembling the slicing blade in a narrow space, which effectively improves the comfort and safety of operation. The mounting shaft can be rotated by the adjusting structure. The rotation of the mounting shaft can prevent multiple slicing blades from contacting the material, thereby facilitating the laying of the material.
[0019] (3) The new material glitter powder processing slicing machine of the present invention can install and fix the new material roll that has not been slit by means of the first air expansion shaft. Before fixing the new material roll, the positioning structure can quickly and accurately position the roll, avoiding deviations caused by manual adjustment of position. At the same time, it can avoid the need to spend a lot of physical strength to push the roll, thus effectively saving physical strength. Attached Figure Description
[0020] The present invention will be further described below with reference to the accompanying drawings and examples.
[0021] Figure 1 This is a schematic diagram of the overall structure of a preferred embodiment of a slicing machine for processing glitter powder, a new material provided by the present invention.
[0022] Figure 2 for Figure 1 The enlarged schematic diagram of part A shown below;
[0023] Figure 3 for Figure 1 The enlarged schematic diagram of section B is shown below;
[0024] Figure 4 This is a schematic diagram of the connection structure between the connecting shaft and the rotating plate of the present invention;
[0025] Figure 5 for Figure 4 The enlarged schematic diagram of section C is shown below;
[0026] Figure 6 This is a schematic diagram of the connection structure between the connecting shaft and the connecting sleeve of the present invention;
[0027] Figure 7 for Figure 6 The enlarged schematic diagram of part D is shown below;
[0028] Figure 8 This is a schematic diagram of the connection structure between the positioning protrusion and the mounting base of the present invention;
[0029] Figure 9 This is a schematic diagram of the connection structure between the slider and the locking rod of the present invention;
[0030] Figure 10 This is a schematic diagram of the connection structure between the skateboard and the card block of the present invention;
[0031] Figure 11 This is a schematic diagram of the connection structure between the guide shaft and the connecting plate of the present invention.
[0032] In the diagram: 1. Vertical slitting machine body; 2. Positioning structure; 201. First motor; 202. Drive rod; 203. Push plate; 204. Guide column; 205. Limiting sleeve; 3. Slitting structure; 301. Connecting seat; 302. Positioning protrusion; 303. Mounting seat; 304. Positioning groove; 305. Slitting blade; 306. Pressure block; 307. Bolt; 308. Abutment block; 309. Screw; 310. Fixed handle; 4. Limiting structure; 401. Slider; 402. Clamping rod; 403. First spring; 404. Clamping groove; 5. Mounting shaft; 6. Cutting surface; 7. Adjustment structure 701. Electric push rod; 702. Moving plate; 703. Guide seat; 704. Guide shaft; 705. Guide groove; 706. Connecting plate; 8. Mounting structure; 801. Connecting shaft; 802. Rotating plate; 803. First air shaft; 804. Slide plate; 805. Locking block; 806. Second spring; 807. Connecting sleeve; 808. Bayonet; 9. Drive structure; 901. Second motor; 902. Long shaft; 903. First synchronous pulley; 904. First synchronous belt; 905. Rotating sleeve; 906. Second synchronous pulley; 907. Second synchronous belt; 10. Second air shaft. Detailed Implementation
[0033] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.
[0034] like Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 8 and Figure 9 As shown, the slicing machine for processing glitter powder according to the present invention includes a vertical slicing machine body 1, a positioning structure 2 on the vertical slicing machine body 1, an installation shaft 5 rotatably connected to the vertical slicing machine body 1, a slicing structure 3 on the installation shaft 5, a limiting structure 4 on the slicing structure 3, an adjusting structure 7 on the vertical slicing machine body 1, an installation structure 8 on the vertical slicing machine body 1, a driving structure 9 on the vertical slicing machine body 1, and a second air shaft 10 installed on the vertical slicing machine body 1.
[0035] like Figure 1 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 and Figure 10As shown, the mounting structure 8 includes a connecting shaft 801 and a rotating plate 802. Two connecting shafts 801 are fixedly connected to the vertical slitting machine body 1. Multiple rotating plates 802 are rotatably connected to the connecting shafts 801. A first air shaft 803 is rotatably connected to each rotating plate 802. A sliding plate 804 is slidably connected to each rotating plate 802. A locking block 805 is fixedly connected to each sliding plate 804. A connecting sleeve 807 is provided on one side of each rotating plate 802. The connecting sleeve 807 is fixedly connected to the connecting shaft 801. The connecting sleeve 807 has four locking slots 808. The locking block 805 engages with one of the locking slots 808 on an adjacent connecting sleeve 807. A first air shaft 803 is fixedly connected between the sliding plate 804 and the rotating plate 802. Two springs 806; four bayonets 808 are arranged in a circular array about the center of the connecting sleeve 807; the cross-section of the locking block 805 near the bayonet 808 is trapezoidal; the driving structure 9 includes a second motor 901 and a long shaft 902; a long shaft 902 is provided on one side of the connecting shaft 801; the long shaft 902 is rotatably connected to the vertical slitting machine body 1; multiple first synchronous pulleys 903 are fixedly connected to the long shaft 902; multiple rotating sleeves 905 corresponding one-to-one with the first synchronous pulleys 903 are fixedly connected to the connecting shaft 801; first synchronous pulleys 903 are fixedly connected to the rotating sleeves 905; a first synchronous belt 904 is wound between two adjacent first synchronous pulleys 903; and a first synchronous belt 904 is fixedly connected to the rotating sleeve 905. A second synchronous pulley 906 is connected to the first air shaft 803. The same second synchronous belt 907 is wound around two adjacent second synchronous pulleys 906. That is, the slit material can be wound onto the first air shaft 803. By setting multiple first air shafts 803, multiple slit sheet materials can be wound individually. During the winding process, the second motor 901 can be started. The output shaft of the second motor 901 rotates, driving the long shaft 902 to rotate. The rotation of the long shaft 902 drives multiple first synchronous pulleys 903 to rotate. The rotation of the first synchronous pulleys 903 on the long shaft 902 drives the first synchronous pulleys 903 on the rotating sleeve 905 to rotate via the first synchronous belt 904. The rotation of the first synchronous pulley 903 drives the rotating sleeve 905 to rotate, which in turn drives the second synchronous pulley 906 on it to rotate. The rotation of the second synchronous pulley 906 on the rotating sleeve 905, through the second synchronous belt 907, drives the second synchronous pulley 906 on the first air shaft 803 to rotate, thereby causing the first air shaft 803 to rotate. The rotation of the first air shaft 803 will achieve the winding of the material. When the winding is completed and the material needs to be removed, the slide plate 804 can be pulled. The movement of the slide plate 804 causes the locking block 805 to move away from the connecting sleeve 807, and the second spring 806 retracts. When the locking block 805 is not engaged with one of the locking slots 808, the rotating plate 802 can be rotated. The movement of the rotating plate 802 drives the first air shaft 803 to move.When the rotating plate 802 rotates 90 degrees, the second spring 806 extends, engaging the locking block 805 with another locking slot 808. Releasing the rotating plate 802 at this point prevents it from rotating. Because one end of the locking block 805 has a trapezoidal cross-section, it guides the movement when engaged with the locking slot 808. The wound material roll can then be removed from the first air shaft 803. Since one roll is removed at a time, it saves physical effort and avoids repeated disassembly and reassembly of the first air shaft 803, effectively shortening operation time and improving efficiency.
[0036] Specifically, such as Figure 1 , Figure 2 , Figure 8 , Figure 9 and Figure 11As shown, the adjustment structure 7 includes an electric push rod 701 and a moving plate 702. Two electric push rods 701 are mounted on the vertical slitting machine body 1. The extended end of each electric push rod 701 is fixedly connected to a moving plate 702. The moving plate 702 is slidably connected to a guide seat 703, which is fixedly connected to the vertical slitting machine body 1. A guide shaft 704 is fixedly connected to the moving plate 702. Two connecting plates 706 are fixedly connected to the mounting shaft 5. The connecting plate 706 has a guide groove 705 that is horizontal at both ends and inclined in the middle. The guide shaft 704 extends into the guide groove 705 and is slidably connected to the connecting plate 706. The slitting structure 3 includes a connecting seat 301 and a positioning protrusion. 302. Multiple connecting seats 301 are mounted on the mounting shaft 5. A stop block 308 is rotatably connected to the connecting seat 301. A screw 309 is rotatably connected to the connecting seat 301. A fixing handle 310 is threaded onto the screw 309. One end of the fixing handle 310 abuts against the stop block 308. The stop block 308 abuts against the mounting shaft 5. A positioning protrusion 302 is integrally formed on one end of the connecting seat 301. The positioning protrusion 302 engages with the mounting seat 303. The mounting seat 303 is provided with a positioning groove 304. A cutting blade 305 is engaged inside the positioning groove 304. Two bolts 307 are threaded onto the mounting seat 303. One end of the two bolts 307 is connected to the pressure block. One side of the pressure block 306 abuts against the other side of the cutting blade 305. The overall cross-section of the positioning protrusion 302 is stepped, and the cross-section of one end of the positioning protrusion 302 is trapezoidal. The mounting shaft 5 is provided with a cut surface 6. One side of the abutment block 308 fits against the cut surface 6. The mounting base 303 is provided with a limiting structure 4, which includes a slider 401 and a locking rod 402. Slider 401s are slidably connected to both sides of the mounting base 303. One end of each slider 401 is fixedly connected to the same locking rod 402. The positioning protrusion 302 is provided with a slot 404, and the locking rod 402 engages with the slot 404. The slider 401 and the mounting base 303... A first spring 403 is fixedly connected between the materials. During material conveying, the materials can be cut by multiple equidistantly arranged cutting blades 305. After cutting, two electric push rods 701 are simultaneously activated. The electric push rods 701 extend, causing the moving plate 702 to slide on the guide seat 703. The movement of the moving plate 702 causes the guide shaft 704 to move inside the guide groove 705. When the guide shaft 704 moves at an inclined position in the middle of the guide groove 705, the connecting plate 706 rotates. The simultaneous rotation of the two connecting plates 706 causes the mounting shaft 5 to rotate. The rotation of the mounting shaft 5 causes the multiple cutting blades 305 to move away from the material until the cutting blades 305 no longer contact the material, thus facilitating the next material laying.When the slitting blade 305 needs to be replaced, the locking lever 402 can be pulled. The locking lever 402 will cause the two sliders 401 to slide on the mounting base 303. The two first springs 403 will extend simultaneously. When the locking lever 402 is not engaged with the locking groove 404, the mounting base 303 can be moved to separate it from the positioning protrusion 302. Then the mounting base 303 can be removed, and the slitting blade 305 will be removed along with the mounting base 303. Next, the two bolts 307 can be unscrewed with an Allen wrench. Then, the pressure block 306 can be moved to create a certain distance between itself and the slitting blade 305. Finally, the slitting blade 305 can be removed from the inside of the positioning groove 304. At this point, the disassembly of the slitting blade 305 is completed. Because the disassembly avoids the need for the operator to reach into the narrow space inside the vertical slitting machine body 1 for a long time to twist the bolts 307, the operation is improved. This design improves comfort and reduces the risk of operators' hands being cut by the slitting blade 305, thus enhancing operational safety. Since the position of the connecting seat 301 remains unchanged, installing the slitting blade 305 only requires engaging the mounting seat 303 with the positioning protrusion 302, enabling quick installation. Rotating the fixing handle 310 prevents it from contacting the abutment block 308, allowing adjustment of the connecting seat 301's position on the mounting shaft 5. After adjustment, rotating the fixing handle 310 in the opposite direction causes one end to abut against the abutment block 308, aligning one side of the abutment block 308 with the cutting surface 6. This prevents the orientation of the connecting seat 301 from changing after adjustment. Furthermore, the contact between the abutment block 308 and the cutting surface 6 ensures that all slitting blades 305 are at the same angle, guaranteeing consistent cutting.
[0037] Specifically, such as Figure 1 and Figure 3As shown, the positioning structure 2 includes a first motor 201 and a drive rod 202. The drive rod 202 is rotatably connected to the vertical slitting machine body 1. The first motor 201 is mounted on the vertical slitting machine body 1. The output shaft of the first motor 201 is fixedly connected to one end of the drive rod 202. A guide post 204 is provided on both sides of the drive rod 202. The two guide posts 204 are fixedly connected to the vertical slitting machine body 1. Two push plates 203 are threadedly connected to the drive rod 202. The push plate 203 is slidably connected to two guide posts 204. Limiting sleeves 205 are fixedly connected to the guide posts 204. The two limiting sleeves 205 located on the same guide post 204 are symmetrically distributed about the middle of the guide post 204. The two push plates 203 are symmetrically distributed about the middle of the drive rod 202. The two threads on the drive rod 202 have opposite thread directions. That is, when the uncut roll material is installed on the second air shaft 10, it can be activated by starting the first motor 201. The rotation of motor 201 drives the drive rod 202 to rotate, which in turn drives the two push plates 203 to move relative to each other via a thread. Two guide posts 204 guide the movement of the push plates 203. During the relative movement of the two push plates 203, they will abut against the material roll on the second air shaft 10. When the two push plates 203 abut against the limiting sleeve 205 at the same time, the output shaft of the first motor 201 stops rotating. At this time, the material roll is accurately positioned, avoiding deviations caused by manual adjustment and avoiding the need to spend a lot of physical effort to push the material roll, thus effectively saving physical strength. The limiting sleeve 205 limits the position of the push plates 203. Since the distance between the two limiting sleeves 205 on the same guide post 204 is exactly equal to the width of the material roll, it can prevent the two push plates 203 from being too close and damaging the material roll, thus effectively improving the safety of use. After the material roll is positioned, the two push plates 203 can be reset, and then the material roll can be fixed by the second air shaft 10.
[0038] In use, when the uncut roll of material is mounted on the second air shaft 10, the first motor 201 is activated. The rotation of the first motor 201 drives the drive rod 202 to rotate, which in turn drives the two push plates 203 to move relative to each other. Two guide posts 204 guide the movement of the push plates 203. During this relative movement, the two push plates 203 abut against the roll of material on the second air shaft 10. When both push plates 203 simultaneously abut against the limiting sleeve 205, the output shaft of the first motor 201 stops rotating. This achieves precise positioning of the roll of material, avoiding deviations caused by manual adjustment and minimizing the need for excessive physical effort to push the roll, thus effectively saving energy. The positioning sleeve 205 can limit the position of the push plate 203. Since the distance between the two positioning sleeves 205 on the same guide post 204 is exactly equal to the width of the material roll, it can prevent the two push plates 203 from being too close and damaging the material roll, thus effectively improving the safety of use. After the material roll is positioned, the two push plates 203 can be reset, and then the material roll can be fixed by the second air shaft 10. Then, the material can be laid. After the material is laid, the material can be conveyed. During the material conveying process, the material can be cut by multiple equally spaced slitting blades 305. By setting multiple first air shafts 803, multiple sheet materials after slitting can be wound individually. During the winding process, the second air shaft 803 can be activated. Motor 901, the output shaft of the second motor 901 rotates, driving the long shaft 902 to rotate. The rotation of the long shaft 902 drives multiple first synchronous pulleys 903 to rotate. The rotation of the first synchronous pulleys 903 on the long shaft 902 drives the first synchronous pulley 903 on the rotating sleeve 905 to rotate via the first synchronous belt 904. The rotation of the first synchronous pulleys 903 on the rotating sleeve 905 drives the rotating sleeve 905 to rotate. The rotation of the rotating sleeve 905 drives the second synchronous pulley 906 on it to rotate via the second synchronous belt 907. This causes the first air expansion shaft 803 to rotate, thus achieving the winding of the material. When the winding is complete and the material needs to be removed... By pulling the slide plate 804, the movement of the slide plate 804 causes the locking block 805 to move away from the connecting sleeve 807, and the second spring 806 contracts. When the locking block 805 is not engaged with one of the latches 808, the rotating plate 802 can be rotated. The movement of the rotating plate 802 will drive the first air shaft 803 to move. When the rotating plate 802 rotates 90 degrees, the second spring 806 will extend, causing the locking block 805 to engage with the other latch 808. At this time, releasing the rotating plate 802 will prevent it from rotating. Because the cross-section of one end of the locking block 805 is trapezoidal, it can guide the movement when it is engaged with the latch 808. Then, the wound material roll can be removed from the first air shaft 803. Since one material roll is removed at a time, it saves more physical effort.This also avoids repeated disassembly and reassembly of the first air shaft 803, thus effectively shortening operation time and improving operation efficiency.
[0039] After slitting is complete, two electric push rods 701 can be activated simultaneously. The electric push rods 701 extend, causing the moving plate 702 to slide on the guide seat 703. The movement of the moving plate 702 drives the guide shaft 704 to move inside the guide groove 705. When the guide shaft 704 moves to an inclined position in the middle of the guide groove 705, the connecting plate 706 rotates. The simultaneous rotation of the two connecting plates 706 drives the mounting shaft 5 to rotate. The rotation of the mounting shaft 5 causes multiple slitting blades 305 to move away from the material until the slitting blades 305 no longer contact the material. This facilitates the next material laying. When it is necessary to adjust the slitting blades... When replacing the slitting blade 305, pulling the lever 402 causes the two sliders 401 to slide on the mounting base 303. Simultaneously, the two first springs 403 extend. When the lever 402 and the slot 404 are no longer engaged, the mounting base 303 can be moved to separate from the positioning protrusion 302. The mounting base 303 can then be removed, and the slitting blade 305 will be removed along with it. Next, the two bolts 307 can be unscrewed using an Allen wrench. Then, the pressure block 306 is moved to create a certain distance between itself and the slitting blade 305. Finally, the slitting blade 305 can be removed from... The internal parts of the positioning groove 304 are removed, thus completing the disassembly of the slitting blade 305. This method avoids requiring the operator to extend their body into the confined space inside the vertical slitting machine body 1 for extended periods to tighten the bolt 307, improving operational comfort and reducing the risk of the operator's hands being cut by the slitting blade 305, thereby enhancing operational safety. Furthermore, since the position of the connecting seat 301 remains unchanged, installing the slitting blade 305 only requires engaging the mounting seat 303 with the positioning protrusion 302, enabling quick installation. This can be achieved by rotating... The fixed handle 310 is designed to prevent it from contacting the abutment block 308. Then, the position of the connecting seat 301 on the mounting shaft 5 can be adjusted. After the position of the connecting seat 301 is adjusted, the fixed handle 310 can be rotated in the opposite direction. When one end of the fixed handle is pressed against the abutment block 308, one side of the abutment block 308 will be in contact with the cutting surface 6. This prevents the orientation of the connecting seat 301 from changing after the position is adjusted. At the same time, the contact between the abutment block 308 and the cutting surface 6 ensures that multiple cutting blades 305 are at the same angle, thus ensuring the consistency of cutting. The cut material can be wound on the first air shaft 803.
[0040] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.
[0041] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.
Claims
1. A slicing machine for processing glitter powder, characterized in that, The machine includes a vertical slitting machine body (1), a mounting shaft (5) is rotatably connected to the vertical slitting machine body (1), a slitting structure (3) is provided on the mounting shaft (5), a mounting structure (8) is provided on the vertical slitting machine body (1), a drive structure (9) is provided on the vertical slitting machine body (1), and a second air shaft (10) is installed on the vertical slitting machine body (1). The mounting structure (8) includes a connecting shaft (801) and a rotating plate (802). Two connecting shafts (801) are fixedly connected to the vertical slitting machine body (1). Multiple rotating plates (802) are rotatably connected to the connecting shafts (801). A first air shaft (803) is rotatably connected to the rotating plate (802). A sliding plate (804) is slidably connected to the rotating plate (802). A locking block (805) is fixedly connected to the sliding plate (804). A connecting sleeve (807) is provided on one side of the rotating plate (802). The connecting sleeve (807) is fixedly connected to the connecting shaft (801). The connecting sleeve (807) is provided with four locking slots (808). The locking block (805) engages with one of the locking slots (808) on the adjacent connecting sleeve (807). A second spring (806) is fixedly connected between the sliding plate (804) and the rotating plate (802). The slitting structure (3) is provided with a limiting structure (4), and the vertical slitting machine body (1) is provided with an adjusting structure (7). The adjusting structure (7) includes an electric push rod (701) and a moving plate (702). Two electric push rods (701) are installed on the vertical slitting machine body (1). The extended end of the electric push rod (701) is fixedly connected to the moving plate (702). The moving plate (702) is slidably connected to the guide seat (703). The guide seat (703) is fixedly connected to the vertical slitting machine body (1). A guide shaft (704) is fixedly connected to the moving plate (702). Two connecting plates (706) are fixedly connected to the mounting shaft (5). The connecting plate (706) is provided with a guide groove (705) that is horizontal at both ends and inclined in the middle. The guide shaft (704) extends into the interior of the guide groove (705) and is slidably connected to the connecting plate (706). The slitting structure (3) includes a connecting seat (301) and a positioning protrusion (302). Multiple connecting seats (301) are mounted on the mounting shaft (5). A stop block (308) is rotatably connected to each connecting seat (301). A screw (309) is rotatably connected to each connecting seat (301). A fixed handle (310) is threaded onto the screw (309). One end of the fixed handle (310) abuts against the stop block (308), and the stop block (308) abuts against the mounting shaft (5). One end of (301) is integrally formed with a positioning protrusion (302), which engages with the mounting base (303). The mounting base (303) is provided with a positioning groove (304), and a slitting blade (305) is engaged inside the positioning groove (304). Two bolts (307) are threadedly connected to the mounting base (303). One end of the two bolts (307) abuts against one side of the pressure block (306), and the other side of the pressure block (306) abuts against the slitting blade (305).
2. The slicing machine for processing glitter powder according to claim 1, characterized in that: The four bayonets (808) are arranged in a circular array about the middle of the connecting sleeve (807), and the cross-section of the block (805) near the bayonet (808) is trapezoidal.
3. The slicing machine for processing glitter powder according to claim 1, characterized in that: The drive structure (9) includes a second motor (901) and a long shaft (902). The long shaft (902) is provided on one side of the connecting shaft (801). The long shaft (902) is rotatably connected to the vertical slitting machine body (1). A plurality of first synchronous pulleys (903) are fixedly connected to the long shaft (902). A plurality of rotating sleeves (905) corresponding one-to-one with the first synchronous pulleys (903) are fixedly connected to the connecting shaft (801). A first synchronous pulley (903) is fixedly connected to the rotating sleeve (905). A first synchronous belt (904) is wound between two adjacent first synchronous pulleys (903). A second synchronous pulley (906) is fixedly connected to the rotating sleeve (905). A second synchronous pulley (906) is fixedly connected to the first air shaft (803). The same second synchronous belt (907) is wound between two adjacent second synchronous pulleys (906).
4. The slicing machine for processing glitter powder according to claim 1, characterized in that: The mounting shaft (5) has a cut surface (6), and one side of the abutment (308) is in contact with the cut surface (6).
5. The slicing machine for processing glitter powder according to claim 1, characterized in that: The mounting base (303) is provided with a limiting structure (4), which includes a slider (401) and a locking rod (402). The two sides of the mounting base (303) are slidably connected to the sliders (401), and one end of the two sliders (401) is fixedly connected to the same locking rod (402). The positioning protrusion (302) is provided with a slot (404), and the locking rod (402) engages with the slot (404). A first spring (403) is fixedly connected between the slider (401) and the mounting base (303).
6. The slicing machine for processing glitter powder according to claim 1, characterized in that: The vertical slitting machine body (1) is provided with a positioning structure (2), the positioning structure (2) includes a first motor (201) and a drive rod (202). The drive rod (202) is rotatably connected to the vertical slitting machine body (1). The first motor (201) is installed on the vertical slitting machine body (1). The output shaft of the first motor (201) is fixedly connected to one end of the drive rod (202). A guide post (204) is provided on both sides of the drive rod (202). The two guide posts (204) are fixedly connected to the vertical slitting machine body (1). Two push plates (203) are threadedly connected to the drive rod (202). The push plates (203) are slidably connected to the two guide posts (204).
7. A slicing machine for processing glitter powder according to claim 6, characterized in that: Limiting sleeves (205) are fixedly connected to the guide post (204). The two limiting sleeves (205) located on the same guide post (204) are symmetrically distributed about the middle of the guide post (204). The two push plates (203) are symmetrically distributed about the middle of the drive rod (202). The two threads on the drive rod (202) have opposite thread directions.
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device FOR SYNCHRONIZING THE PASSING OF A STRIP WITH THE PERIODIC ACTION OF ORGANS ACTING ON IT AND APPLICATION TO THE TREATMENT OF MECANOGRAPHIC PAPER STRIP
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