A portable slitting device for aluminum foil processing

By introducing blocking frames and grinding strips into the aluminum foil slitting equipment, combined with cooling ducts and splints, the problem of the slitting knife adsorbing aluminum foil powder and debris due to static electricity is solved, the slitting quality and efficiency are improved, and the stability and safety of the equipment are guaranteed.

CN119772979BActive Publication Date: 2025-09-09ZIBO AOLAITE ALUMINUM COMPOSITE PANEL CO LTD
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Patent Information

Application Number
CN202510278842.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2025-09-09
Estimated Expiration
2045-03-11

AI Technical Summary

Technical Problem

During the cutting process of existing portable aluminum foil slitting equipment, the slitting blade generates static electricity due to friction, which absorbs aluminum foil powder and debris, causing the surface smoothness of the slitting blade to decrease, affecting the slitting efficiency and quality.

Method used

The slitting knife is installed on an electric slide, combined with a blocking frame and a grinding strip to remove the aluminum foil waste adhering to the slitting knife through blocking and friction. The cooling air duct is used for cooling, the pressure sensor monitors the status of the slitting knife, and the stability and safety of the slitting knife are guaranteed by a splint and a protective net.

Benefits of technology

It effectively reduces the amount of aluminum foil adhering to the slitting knife, improves the slitting quality and efficiency, reduces the cleaning frequency, ensures the stability and safety of the slitting knife, and avoids damage and safety risks caused by shaking and breaking.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention belongs to the technical field of aluminum foil slitting, and is particularly directed to a portable slitting device for aluminum foil processing. It comprises: an electric slide, the electric slide is equipped with a motor, the output shaft of the motor is fixedly connected to a slitting knife, and the electric slide is fixedly connected to a protective shell; a fixed plate, fixed to the protective shell, the fixed plate is slidably connected to symmetrically distributed extrusion plates and symmetrically distributed blocking frames, the extrusion plates are slidably connected to adjacent blocking frames, and the slitting knife is located between the symmetrically distributed blocking frames; a cooling air duct, having two symmetrically distributed ones, and respectively fixed to both sides of the protective shell. The present invention blocks aluminum foil waste by blocking frames, so that the aluminum foil waste adhered to the slitting knife due to static electricity is scraped off, reducing the amount of aluminum foil adhered to the slitting knife, thereby reducing the impact of the aluminum foil adhering to the slitting knife on the slitting efficiency, and improving the quality of aluminum foil slitting.
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Description

Technical Field

[0001] The invention belongs to the technical field of aluminum foil slitting, and in particular relates to a portable slitting device for aluminum foil processing. Background Art

[0002] Aluminum foil slitting equipment is a key equipment used in the industrial field to cut wide aluminum foil rolls into narrow rolls or sheets of specific widths. The existing convenient aluminum foil slitting equipment has a disc-type slitting knife driven by a motor, which directly cuts the aluminum foil by rotating the slitting knife. However, when the slitting knife rotates and contacts the aluminum foil, the slitting knife will generate static electricity due to friction, and the aluminum foil will produce aluminum foil powder and debris during the cutting process. The static electricity on the slitting knife will absorb the aluminum foil powder and debris, and cause the residual material generated during the aluminum foil slitting process to adhere to the slitting knife, resulting in a decrease in the smoothness of the slitting knife surface, affecting the slitting efficiency and the slitting quality of the aluminum foil. Summary of the Invention

[0003] In order to overcome the shortcomings pointed out in the above background, the present invention provides a portable slitting device for aluminum foil processing.

[0004] The technical implementation scheme of the present invention is: a portable slitting device for aluminum foil processing, comprising:

[0005] An electric slide, wherein the electric slide is equipped with a motor, a slitting knife is fixedly connected to the output shaft of the motor, and a protective shell for shielding the upper part of the slitting knife is fixedly connected to the electric slide;

[0006] A fixed plate is fixedly connected to the protective shell, the fixed plate is slidably connected with symmetrically distributed extrusion plates and symmetrically distributed blocking frames, the protective shell is provided with symmetrically distributed channels, the extrusion plates and adjacent blocking frames both slide in adjacent channels on the protective shell, the extrusion plates are slidably connected to adjacent blocking frames, a first elastic member is fixed between the extrusion plates and adjacent blocking frames, the blocking frames are located between adjacent extrusion plates and the slitting knives, and the slitting knives are located between the symmetrically distributed blocking frames;

[0007] The cooling air ducts are provided with two symmetrically distributed ones and are respectively fixed to two sides of the protective shell.

[0008] Furthermore, the opposite sides of the symmetrically distributed blocking frames are all smooth surfaces.

[0009] Furthermore, a grinding strip is fixedly connected to one side of the blocking frame close to the slitting knife, and the grinding strip is used to block impurities adhering to the slitting knife.

[0010] Furthermore, there is a gap between the blocking frame and the slitting knife, and there is a gap between the grinding strip and the slitting knife.

[0011] Furthermore, the protective shell is fixed with baffles that are symmetrically distributed and respectively located in adjacent channels. The baffles separate the adjacent channels on the protective shell into a first chamber and a second chamber. The extrusion plate and the adjacent blocking frame are both located in the adjacent first chambers on the protective shell. The distance between the second chamber of the protective shell and the adjacent cooling air duct is smaller than the distance between the first chamber and the adjacent cooling air duct.

[0012] Furthermore, it also includes:

[0013] pressure sensors, the number of which is the same as the number of the extrusion plates, and all of which are fixed to the protective shell, wherein all of the pressure sensors are respectively located in different first cavities on the protective shell;

[0014] The number of the flexible blocks is the same as that of the pressure sensors and the flexible blocks are respectively fixed to adjacent blocking frames. The flexible blocks are used to squeeze the pressure sensors.

[0015] Furthermore, it also includes:

[0016] A miniature electromagnetic slider, wherein the protective shell is provided with an electromagnetic slide rail, the miniature electromagnetic slider is slidably connected within the electromagnetic slide rail of the protective shell, and the miniature electromagnetic slider is fixedly connected to symmetrically distributed first trigger plates, the number of the first trigger plates being the same as the number of the extrusion plates;

[0017] The number of the first sliding frames is the same as the number of the first trigger plates, and the first sliding frames are respectively fixed to the adjacent extrusion plates. A first return spring is fixed between the first sliding frames and the protective shell. The first trigger plates are used to squeeze the adjacent first sliding frames.

[0018] Furthermore, it also includes:

[0019] Connecting rods, the number of which is the same as the number of the first trigger plates, and respectively fixed to adjacent first trigger plates, and the connecting rods are fixed to the second trigger plates;

[0020] The number of the second sliding frames is the same as the number of the second trigger plates, and they are respectively slidably connected to the two sides of the protective shell. A second elastic member is fixed between the second sliding frames and the protective shell. The second trigger plate is used to squeeze the adjacent second sliding frames to move. The second sliding frames are fixed with a clamping plate, and the clamping plate is used to limit the slitting knife.

[0021] Furthermore, the clamping plate and the adjacent extrusion plates are distributed in sequence along the rotation direction of the slitting knife.

[0022] Furthermore, the connecting rod away from the motor is provided with a wedge-shaped portion, the protective shell is slidably connected to a third sliding frame, the wedge-shaped portion is used to squeeze the third sliding frame, a second return spring is fixed between the third sliding frame and the protective shell, the protective shell is slidably connected to a sliding block, the third sliding frame is used to limit the sliding block, and the sliding block is fixed with a protective net for shielding the slitting knife.

[0023] The beneficial effects achieved by the present invention using the above structure are as follows: 1. The present invention blocks aluminum foil waste by using the blocking frame, so that the aluminum foil waste adhering to the slitting knife due to static electricity is scraped off, reducing the amount of aluminum foil adhering to the slitting knife, thereby reducing the impact of the aluminum foil adhering to the slitting knife on the slitting efficiency, thereby improving the quality of aluminum foil slitting. At the same time, during the use of the slitting knife, the blocking frame cleans the waste on the slitting knife in real time, thereby reducing the frequency of cleaning the slitting knife after use, thereby improving the convenience of using the device;

[0024] 2. When too much aluminum foil powder and debris adhere to the slitting knife, resulting in the surface smoothness of the slitting knife being affected, the blocking frame is squeezed to make it fit the surface of the slitting knife. As the slitting knife rotates, the blocking frame and the grinding strip grind the surface of the slitting knife through friction, reducing the amount of aluminum foil powder and aluminum foil debris adhered to the slitting knife, thereby improving the surface smoothness of the slitting knife and ensuring the quality and efficiency of aluminum foil slitting;

[0025] 3. The two blocking frames move and limit the slitting knife. If the slitting knife shakes and an aluminum foil roll is not completely slit, the slitting knife can be used temporarily as an emergency measure to reduce the probability of damage and shaking of the slitting knife, thereby ensuring the quality of the aluminum foil after slitting.

[0026] 4. By limiting and straightening the two points of the slitting knife, the probability of the slitting knife bending and deforming due to excessive shaking and being limited by a single point is reduced, thereby reducing the probability of the aluminum foil being damaged by the deformed slitting knife, thereby ensuring the quality of the aluminum foil cut by the slitting knife;

[0027] 5. The protective net blocks the slitting knife. When the slitting knife is separated from the output shaft of the motor or even breaks due to excessive shaking and floating, the probability of injury to the operator caused by the splashing of the broken slitting knife is reduced, thereby improving the safety of the use of this device. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;

[0029] Figure 2 Schematic diagram of the three-dimensional structure of the slitting knife of the present invention;

[0030] Figure 3This is a sectional view of the three-dimensional structure of the protective shell of the present invention;

[0031] Figure 4 Schematic diagram of the three-dimensional structure of the first trigger plate of the present invention;

[0032] Figure 5 Schematic diagram of the three-dimensional structure of the flexible block of the present invention;

[0033] Figure 6 Schematic diagram of the three-dimensional structure of the second trigger plate of the present invention;

[0034] Figure 7 It is a schematic diagram of the three-dimensional structure of the third sliding frame of the present invention.

[0035] The numbers in the figure are as follows: 1. Electric slide, 2. Motor, 3. Slitting knife, 4. Protective shell, 5. Fixed plate, 6. Extrusion plate, 7. Blocking frame, 8. Cooling air duct, 9. Grinding strip, 10. Baffle, 11. Pressure sensor, 1101, Flexible block, 12. Micro electromagnetic slider, 13. First trigger plate, 14. First slide, 15. Connecting rod, 16. Second trigger plate, 17. Second slide, 18. Clamp, 19. Wedge-shaped part, 20. Third slide, 21. Sliding block, 22. Protective net. DETAILED DESCRIPTION

[0036] The present invention will be further described below with reference to the accompanying drawings and examples.

[0037] A portable slitting device for aluminum foil processing, such as Figure 1-Figure 5As shown, it includes: an electric slide 1. When using this device, several devices distributed in a straight line are installed on a fixed roller (so that the electric slide 1 can slide on the fixed roller). The electric slide 1 is provided with a control terminal not shown in the figure. The electric slide 1 is installed with a motor 2. The electric slide 1 and the motor 2 are both electrically connected to the control terminal. The output shaft of the motor 2 is fixedly connected with a slitting knife 3. The electric slide 1 is fixedly connected with a protective shell 4 for shielding the upper part of the slitting knife 3; a fixed plate 5 is fixed in the protective shell 4. The fixed plate 5 is slidably connected with two extrusion plates 6 symmetrically distributed on the left and right and two blocking frames 7 symmetrically distributed on the left and right. The material of the blocking frame 7 can be the same as the material of the brake pad (for example, a resin-based material or a semi-metallic material). The protective shell 4 is provided with channels symmetrically distributed on the left and right. The extrusion plate 6 and the adjacent blocking frame 7 slide in the adjacent channels on the protective shell 4. The extrusion plate 6 is slidably connected to the adjacent blocking frame 7. A first elastic member is fixed between the extrusion plate 6 and the adjacent blocking frame 7, wherein the space between the extrusion plate 6 and the adjacent blocking frame 7 is fixedly provided with a first elastic member. The first elastic member is a compression spring. The blocking frame 7 is located between the adjacent extrusion plates 6 and the slitting knife 3. There is a gap between the blocking frame 7 and the slitting knife 3. Under the premise that the blocking frame 7 does not rub the surface of the slitting knife 3, the blocking frame 7 blocks the aluminum foil waste adhering to the slitting knife 3. The slitting knife 3 is located between the symmetrically distributed blocking frames 7. The opposite sides of the symmetrically distributed blocking frames 7 are all smooth surfaces. When the blocking frame 7 contacts the slitting knife 3, the friction between the blocking frame 7 and the slitting knife 3 is reduced. The cooling air duct 8 has a left-right symmetrical distribution. There are two cooling ducts 8, which are respectively fixed on the left and right sides of the protective shell 4. The cooling air duct 8 is connected to the cooling fan not shown in the figure. The two cooling air ducts 8 are respectively located on the left and right sides of the slitting knife 3 and are used to cool the left and right sides of the slitting knife 3. A grinding strip 9 is fixed on the side of the blocking frame 7 close to the slitting knife 3. The grinding strip 9 is used to block impurities adhering to the slitting knife 3. Initially, there is a gap between the grinding strip 9 and the slitting knife 3. When the grinding strip 9 moves to the slitting knife 3, the grinding strip 9 fits with the slitting knife 3.

[0038] like Figure 3 and Figure 6 As shown, the protective shell 4 is fixed with baffles 10 that are symmetrically distributed and respectively located in adjacent channels thereof. The baffles 10 separate the adjacent channels on the protective shell 4 into a first chamber and a second chamber. The extrusion plate 6 and the adjacent blocking frame 7 are both located in the adjacent first chambers on the protective shell 4. The distance between the second chamber of the protective shell 4 and the adjacent cooling air duct 8 is smaller than the distance between the first chamber and the adjacent cooling air duct 8. The pipe mouth of the cooling air duct 8 close to the slitting knife 3 faces between the two second chambers of the protective shell 4. The second chamber of the protective shell 4 is connected to a waste collection device not shown in the figure.

[0039] The specific working principle is as follows:

[0040] When the operator needs to use this device to cut aluminum foil, the operator first installs several of the devices on the same fixed roller, and then turns on the electric slide 1 through the control terminal, so that the several electric slides 1 drive all the parts on them and slide left and right on the fixed roller (the direction is Figure 1 The main view is used as a reference) to change the distance between different electric slides 1, thereby adjusting the slitting width of the aluminum foil. When the position of the electric slide 1 is adjusted, the operator turns off the electric slide 1 and turns on the motor 2 through the control terminal. The output shaft of the motor 2 drives the slitting knife 3 to rotate, and the slitting knife 3 rotates to slit the aluminum foil. In the process of the slitting knife 3 slitting the aluminum foil, the operator turns on the cooling fan through the control terminal. The cooling fan delivers cold air to the left and right sides of the upper part of the slitting knife 3 through two cooling air ducts 8. In the process of the slitting knife 3 rotating, the surface of the slitting knife 3 is cooled (in order to prevent the aluminum foil from shaking due to the blowing of cold air, the cold air cannot be directly delivered to the contact between the slitting knife 3 and the aluminum foil) to reduce the surface temperature of the slitting knife 3, thereby reducing the probability of the slitting knife 3 continuing to heat up during the slitting process.

[0041] During the process of slitting the aluminum foil by the leftmost slitting knife 3 and the rightmost slitting knife 3 on the fixed roller, the residual material on both sides of the aluminum foil roll will be cut off, and the slitting knife 3 rotates and continuously rubs against the aluminum foil, which will cause static electricity to be generated on the surface of the slitting knife 3 and the aluminum foil, and the aluminum foil powder and debris will be affected by static electricity and adhere to the slitting knife 3. When the slitting knife 3 drives the aluminum foil waste adhered to it to rotate between the two blocking frames 7 and the two grinding strips 9, the blocking frames 7 and the grinding strips 9 block the aluminum foil waste, so that the aluminum foil waste is separated from the slitting knife 3, reducing the amount of aluminum foil adhered to the slitting knife 3, and thereby reducing the impact of the aluminum foil adhering to the slitting knife 3 on the slitting efficiency, thereby improving the quality of aluminum foil slitting.

[0042] When the aluminum foil waste is separated from the slitting knife 3, the aluminum foil waste is separated to the vicinity of the channel of the protective shell 4, and the cooling air duct 8 transports cold air to the left and right sides of the upper part of the slitting knife 3. The cold air carries the separated aluminum foil waste and blows the aluminum foil waste into the second chamber of the protective shell 4. Then the waste is blown out of the second chamber of the protective shell 4 by the cold air, and the waste collection equipment collects the aluminum foil waste.

[0043] When the aluminum foil is cut and the device needs to be stopped, the operator collects the slit aluminum foil rolls (in the process of aluminum foil slitting, the slit aluminum foil is reeled up) and turns off the electric slide 1, motor 2 and cooling fan through the control terminal. If the device needs to be disassembled, the electric slide 1 is removed from the fixed roller and the device is cleaned for the next use.

[0044] like Figure 4 and Figure 5As shown, it also includes: pressure sensors 11, the number of which is the same as the number of extrusion plates 6, and are all fixed to the protective shell 4, the pressure sensors 11 are electrically connected to the control terminal, and all pressure sensors 11 are respectively located in different first chambers on the protective shell 4; flexible blocks 1101, the number of which is the same as the number of pressure sensors 11, and are respectively fixed to adjacent blocking frames 7, the flexible blocks 1101 are used to squeeze the pressure sensors 11, and the protective shell 4 is provided with an alarm which is not shown in the figure and is electrically connected to the control terminal. When the slitting knife 3 is deformed or loosened due to fatigue, the slitting knife 3 shakes and squeezes the blocking frame 7, and the blocking frame 7 squeezes the pressure sensor 11 through the adjacent flexible block 1101. The pressure sensor 11 is pressurized and transmits an electrical signal to the control terminal, and the control terminal controls the alarm to turn on to remind the operator that the slitting knife 3 is damaged.

[0045] like Figure 3-Figure 5 As shown, it also includes: a micro electromagnetic slider 12, the protective shell 4 is provided with an electromagnetic slide rail, the micro electromagnetic slider 12 is slidably connected to the electromagnetic slide rail of the protective shell 4, the electromagnetic slide rail of the protective shell 4 is electrically connected to the control terminal, the micro electromagnetic slider 12 is fixed with a first trigger plate 13 symmetrically distributed on the left and right, the first trigger plate 13 is provided with a first inclined surface, and the number of the first trigger plates 13 is the same as the number of the extrusion plates 6; the first sliding frame 14, the number is the same as the number of the first trigger plates 13, the first sliding frame 14 is provided with a second inclined surface, and is respectively fixed to the adjacent extrusion plates 6, a first return spring is fixed between the first sliding frame 14 and the protective shell 4, when the first trigger plate 13 moves downward, the first inclined surface of the first trigger plate 13 squeezes the second inclined surface of the adjacent first sliding frame 14, so that the first sliding frame 14 moves horizontally.

[0046] The specific working principle is as follows:

[0047] During the process of the slitting knife 3 slitting the aluminum foil, if too much aluminum foil powder and debris adhere to the slitting knife 3, resulting in the surface smoothness of the slitting knife 3 being affected, the operator turns on the electromagnetic slide rail of the protective shell 4 through the control terminal to move the micro electromagnetic slider 12, and the micro electromagnetic slider 12 drives all the first trigger plates 13 to move downward (at this time, the micro electromagnetic slider 12 does not need to move downward to the limit position), and the first trigger plate 13 squeezes the second inclined surface of the first sliding frame 14 through the first inclined surface, so that the first sliding frame 14 drives the squeezing plate 6 to move, and the first reset spring of the first sliding frame 14 The spring is compressed, and the extrusion plate 6 drives the blocking frame 7 to move through its first elastic member. The blocking frame 7 moves to fit the surface of the slitting knife 3. The first elastic member of the extrusion plate 6 is compressed and contracts (the first elastic member is not compressed to the limit state at this time), and the blocking frame 7 drives the grinding strip 9 to move, so that the grinding strip 9 fits the surface of the slitting knife 3. As the slitting knife 3 rotates, the blocking frame 7 and the grinding strip 9 grind the surface of the slitting knife 3 through friction, reducing the amount of aluminum foil powder and aluminum foil debris adhering to the slitting knife 3, thereby improving the surface smoothness of the slitting knife 3, and then ensuring the quality and efficiency of aluminum foil slitting.

[0048] When the operator determines that the aluminum foil powder and aluminum foil debris adhering to the slitting knife 3 have been polished off, the operator controls the micro electromagnetic slider 12 to move and reset through the control terminal. The micro electromagnetic slider 12 drives all the first trigger plates 13 to move and reset. The first reset spring of the first sliding frame 14 rebounds and resets, so that the first sliding frame 14 is reset, the first elastic part of the extrusion plate 6 is gradually reset, and the blocking frame 7 and the grinding strip 9 move and reset.

[0049] When the slitting knife 3 shakes during use (due to insufficient manufacturing precision or wear and tear, the gravity distribution of the slitting knife 3 is uneven, which will cause the slitting knife 3 to shake during use), the slitting knife 3 shakes and squeezes one of the blocking frames 7, the blocking frame 7 squeezes the flexible block 1101, and the flexible block 1101 squeezes the pressure sensor 11, so that a pressure difference is generated between the two pressure sensors 11, and the two pressure sensors 11 sense the pressure difference and transmit an electrical signal to the control terminal, and the control terminal controls the alarm and the micro electromagnetic slider 12 to turn on, and the alarm prompts the operator that the slitting knife 3 is damaged. At the same time, the micro electromagnetic slider 12 repeats the above steps to drive all the first trigger plates 13 to move downward (at this time the micro electromagnetic slider 12 moves downward to the limit position), and the first trigger plate 13 moves the blocking frame 7 through the first sliding frame 14 and the squeezing plate 6 (at this time The degree of squeezing of the first elastic member between the extrusion plate 6 and the blocking frame 7 increases, and the first elastic member is compressed to the limit state). The two blocking frames 7 move together and limit the slitting knife 3, so that the slitting knife 3 is straightened by the two blocking frames 7. Under the premise that an aluminum foil roll has not been completely slit, the slitting knife 3 can be temporarily used for emergency use to reduce the probability of damage and shaking of the slitting knife 3, thereby ensuring the quality of aluminum foil slitting. When an aluminum foil roll is slit, the operator controls the micro electromagnetic slider 12 to move and reset through the control terminal, so that the first trigger plate 13 moves and resets, and the first reset spring of the first sliding frame 14 rebounds and resets, so that the first sliding frame 14 resets, and the first elastic member of the extrusion plate 6 gradually resets, and the blocking frame 7 and the grinding strip 9 move and reset. Finally, the operator closes the micro electromagnetic slider 12 through the control terminal and replaces the damaged slitting knife 3.

[0050] like Figure 3 、 Figure 4 、 Figure 6 and Figure 7As shown, it also includes: connecting rods 15, the number of which is the same as the number of first trigger plates 13, and are respectively fixed to adjacent first trigger plates 13, the connecting rods 15 are fixed to second trigger plates 16, and the second trigger plates 16 are provided with a third inclined surface; second sliding frames 17, the number of which is the same as the number of second trigger plates 16, and are respectively slidably connected to the left and right sides of the protective shell 4, the upper part of the second sliding frame 17 is provided with a fourth inclined surface, a second elastic member is fixed between the second sliding frame 17 and the protective shell 4, wherein the second elastic member between the second sliding frame 17 and the protective shell 4 is a compression spring, and the third inclined surface of the second trigger plate 16 is used to squeeze the fourth inclined surface of the adjacent second sliding frame 17 to make the second sliding frame 17 move horizontally, and the second sliding frame 1 7 is fixedly connected with a clamping plate 18. Initially, there is a distance between the clamping plate 18 and the slitting knife 3. When the micro electromagnetic slider 12 moves downward to the limit position, the first trigger plate 13 drives the second trigger plate 16 to move downward to the limit position through the connecting rod 15. At this time, the second sliding frame 17 is squeezed to the limit state, and the clamping plate 18 is in contact with the slitting knife 3. The clamping plate 18 is used to limit the slitting knife 3. The clamping plate 18 and the adjacent extrusion plate 6 are distributed in sequence along the rotation direction of the slitting knife 3, that is, the distance between the clamping plate 18 and the cut aluminum foil is smaller than the distance between the adjacent extrusion plate 6 and the cut aluminum foil, so that a certain point on the slitting knife 3 will pass through the cooling air duct 8 only after passing through the clamping plate 18, and the slitting knife 3 is cooled by the cooling air duct 8.

[0051] The specific working principle is as follows:

[0052] When the slitting knife 3 shakes during use and the first trigger plate 13 moves downward to the limit position (at this time, since the micro electromagnetic slider 12 moves downward to the limit position, the first trigger plate 13 also moves to the limit position, and the first elastic member between the squeezing plate 6 and the blocking frame 7 is compressed to the limit state), the first trigger plate 13 drives the second trigger plate 16 to move downward to the limit position through the connecting rod 15, and the third inclined surface of the second trigger plate 16 squeezes the fourth inclined surface of the second sliding frame 17, so that the second sliding frame 17 moves, so that the second elastic member of the second sliding frame 17 is compressed, and the second sliding frame 17 drives the clamping The plate 18 moves, and the two clamping plates 18 gradually move toward each other. When the two clamping plates 18 move toward each other to the limit position, the two clamping plates 18 clamp the slitting knife 3 in the middle, straighten and limit the slitting knife 3, and straighten one point of the slitting knife 3 through the two blocking frames 7, and then straighten the other point of the slitting knife 3 through the two clamping plates 18, so that the two points of the slitting knife 3 are limited and straightened, so as to reduce the probability of the slitting knife 3 being bent and deformed due to excessive shaking and being limited by a single point, thereby reducing the probability of the aluminum foil being damaged by the deformed slitting knife 3, thereby ensuring the quality of the aluminum foil cut by the slitting knife 3.

[0053] When the operator controls the micro electromagnetic slider 12 to move and reset through the control terminal, so that the first trigger plate 13 moves and resets, the first trigger plate 13 drives the second trigger plate 16 to reset through the connecting rod 15, and the second elastic member of the second sliding frame 17 is reset, and the second sliding frame 17 drives the clamping plate 18 to reset.

[0054] like Figure 6 and Figure 7 As shown, the connecting rod 15 on the right is provided with a wedge-shaped portion 19, and the wedge-shaped portion 19 is provided with a fifth inclined surface. The protective shell 4 is slidably connected to the third sliding frame 20, and the third sliding frame 20 is provided with a sixth inclined surface. When the connecting rod 15 drives the wedge-shaped portion 19 to move downward, the fifth inclined surface of the wedge-shaped portion 19 squeezes the sixth inclined surface of the third sliding frame 20, so that the third sliding frame 20 moves horizontally. A second return spring is fixed between the third sliding frame 20 and the protective shell 4, and the protective shell 4 is slidably connected to a sliding block 21. The third sliding frame 20 is used to limit the sliding block 21. When the wedge-shaped portion 19 moves downward to the limit position, the third sliding frame 20 is squeezed and moved to the limit position and loses contact with the sliding block 21. The sliding block 21 is fixed with a protective net 22 for shielding the lower part of the slitting knife 3. The protective net 22 is made of a hard material (such as stainless steel).

[0055] The specific working principle is as follows:

[0056] When the slitting knife 3 is separated from the output shaft of the motor 2 or even broken due to excessive shaking, the protective net 22 blocks the slitting knife 3 to reduce the probability of injury to the operator caused by the splashing of the broken slitting knife 3, thereby improving the safety of the use of the device.

[0057] When the aluminum foil is cut and the device needs to be stopped, the operator collects the cut aluminum foil and repeats the above steps to make the micro electromagnetic slider 12 drive the first trigger plate 13 to reset. If the slitting knife 3 does not shake, the first trigger plate 13 drives the wedge-shaped portion 19 to reset through the connecting rod 15, and the second reset spring of the third sliding frame 20 resets the third sliding frame 20. If the slitting knife 3 is damaged and shakes, the operator replaces the slitting knife 3. At this time, after the first trigger plate 13 drives the wedge-shaped portion 19 to reset through the connecting rod 15, the operator needs to manually move forward. The third sliding frame 20 is moved to compress the second return spring of the third sliding frame 20, and the protective net 22 is manually reset upward to reset the sliding block 21 and the protective net 22. Then the operator releases the third sliding frame 20, and the second return spring of the third sliding frame 20 is reset, so that the third sliding frame 20 is reset and the sliding block 21 is limited again. Finally, the electric slide 1, motor 2, cooling fan and micro electromagnetic slider 12 are turned off through the control terminal. If the device needs to be disassembled, the electric slide 1 is removed from the fixed roller. Finally, the device is cleaned for the next use.

[0058] In summary, the above are only preferred embodiments of the present invention and are not intended to limit the scope of protection of the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A portable slitting device for aluminum foil processing, characterized by comprising: An electric slide (1), the electric slide (1) being equipped with a motor (2), the output shaft of the motor (2) being fixedly connected to a slitting knife (3), and the electric slide (1) being fixedly connected to a protective shell (4) for shielding the upper portion of the slitting knife (3); A fixed plate (5) is fixedly connected to the protective shell (4); the fixed plate (5) is slidably connected to a symmetrically distributed extrusion plate (6) and a symmetrically distributed blocking frame (7); the protective shell (4) is provided with symmetrically distributed channels; the extrusion plate (6) and the adjacent blocking frame (7) both slide in adjacent channels on the protective shell (4); the extrusion plate (6) is slidably connected to the adjacent blocking frame (7); a first elastic member is fixedly connected between the extrusion plate (6) and the adjacent blocking frame (7); the blocking frame (7) is located between the adjacent extrusion plate (6) and the slitting knife (3); and the slitting knife (3) is located between the symmetrically distributed blocking frames (7); Two cooling air ducts (8) are symmetrically distributed and respectively fixed to two sides of the protective shell (4); Also included are: A micro electromagnetic slider (12), wherein the protective shell (4) is provided with an electromagnetic slide rail, the micro electromagnetic slider (12) is slidably connected to the electromagnetic slide rail of the protective shell (4), and the micro electromagnetic slider (12) is fixed with symmetrically distributed first trigger plates (13), and the number of the first trigger plates (13) is the same as the number of the extrusion plates (6); The number of first sliding frames (14) is the same as the number of the first trigger plates (13), and they are respectively fixed to the adjacent extrusion plates (6); a first return spring is fixed between the first sliding frame (14) and the protective shell (4); the first trigger plate (13) is used to squeeze the adjacent first sliding frame (14); Also included are: Connecting rods (15), the number of which is the same as the number of the first trigger plates (13), and which are respectively fixed to adjacent first trigger plates (13), and the connecting rods (15) are fixed to second trigger plates (16); The number of the second sliding frames (17) is the same as the number of the second trigger plates (16), and they are slidably connected to both sides of the protective shell (4), a second elastic member is fixed between the second sliding frame (17) and the protective shell (4), the second trigger plate (16) is used to squeeze the adjacent second sliding frame (17) to move, and the second sliding frame (17) is fixed with a clamping plate (18), and the clamping plate (18) is used to limit the slitting knife (3); The connecting rod (15) away from the motor (2) is provided with a wedge-shaped portion (19), the protective shell (4) is slidably connected to a third sliding frame (20), the wedge-shaped portion (19) is used to squeeze the third sliding frame (20), a second return spring is fixed between the third sliding frame (20) and the protective shell (4), the protective shell (4) is slidably connected to a sliding block (21), the third sliding frame (20) is used to limit the sliding block (21), and the sliding block (21) is fixed with a protective net (22) for shielding the slitting knife (3).

2. A portable slitting device for aluminum foil processing according to claim 1, characterized in that: The opposite sides of the symmetrically distributed blocking frames (7) are all smooth surfaces.

3. A portable slitting device for aluminum foil processing according to claim 2, characterized in that: A grinding strip (9) is fixedly connected to one side of the blocking frame (7) close to the slitting knife (3), and the grinding strip (9) is used to block impurities adhering to the slitting knife (3).

4. A portable slitting device for aluminum foil processing according to claim 3, characterized in that: There is a gap between the blocking frame (7) and the slitting knife (3), and there is a gap between the grinding strip (9) and the slitting knife (3).

5. The portable slitting device for aluminum foil processing according to claim 1, characterized in that: The protective shell (4) is fixed with baffles (10) that are symmetrically distributed and respectively located in adjacent channels thereof. The baffles (10) separate the adjacent channels on the protective shell (4) into a first chamber and a second chamber. The extrusion plate (6) and the adjacent blocking frame (7) are both located in the adjacent first chambers on the protective shell (4). The distance between the second chamber of the protective shell (4) and the adjacent cooling air duct (8) is smaller than the distance between the first chamber and the adjacent cooling air duct (8).

6. A portable slitting device for aluminum foil processing according to claim 5, characterized in that: Also included are: Pressure sensors (11), the number of which is the same as the number of the extrusion plates (6), and all of which are fixed to the protective shell (4), and all of the pressure sensors (11) are respectively located in different first chambers on the protective shell (4); The number of flexible blocks (1101) is the same as the number of the pressure sensors (11), and they are respectively fixed to adjacent blocking frames (7). The flexible blocks (1101) are used to squeeze the pressure sensors (11).

7. The portable slitting device for aluminum foil processing according to claim 1, characterized in that: The clamping plate (18) and the adjacent extrusion plate (6) are distributed in sequence along the rotation direction of the slitting knife (3).

Citation Information

Patent Citations

  • Aluminum foil splitting machine capable of recycling cutting waste

    CN214924936U

  • Aluminum foil fine splitting machine

    CN222115292U