A notch correction mechanism for an atomizer electrode

The elastic ejector and the rotating table cooperate to automatically align the gap of the electron smoke atomizer electrode, thereby solving the problem of low electrode correction efficiency in the prior art and realizing an efficient alignment process between the electrode and the heating wire.

CN116119347BActive Publication Date: 2025-09-09SHENZHEN WIPROS TECH CO LTD
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Patent Information

Application Number
CN202211600345.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-13
Publication Date
2025-09-09
Estimated Expiration
2042-12-13

AI Technical Summary

Technical Problem

The existing electrode gap correction method for electronic cigarette atomizers requires precise positioning, resulting in low production efficiency and an inability to quickly complete the alignment of the electrode and the heating wire.

Method used

The elastic ejector pin is used to automatically locate the electrode gap, and the synergistic effect of the rotary table and the robotic arm is combined to achieve automatic alignment and assembly of the electrode materials.

Benefits of technology

It improves the production efficiency of electrode gap correction, reduces the dependence on sensors or visual positioning, and improves the smoothness and efficiency of the assembly process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of electronic cigarette atomizers, specifically a notch correction mechanism for an atomizer electrode, comprising: a correction nozzle and a correction bracket, the correction nozzle being located above the correction bracket; the correction nozzle comprising a nozzle sleeve, an elastic ejector pin and an upper nozzle, the upper nozzle being movably connected to the nozzle sleeve; the elastic ejector pin being arranged in the upper nozzle along the axial direction of the upper nozzle, the end of the elastic ejector pin being able to abut against the upper surface of the electrode material sucked by the nozzle sleeve; the correction bracket comprising a lower nozzle, a rotating table and a motor, the motor driving the rotating table to rotate and driving the lower nozzle to rotate, when the lower nozzle drives the electrode to rotate a certain angle, the end of the elastic ejector pin will extend into the notch of the electrode. In the embodiment of the present invention, the elastic ejector pin is arranged to abut against the surface of the electrode material, and the electrode material is driven to rotate by the rotating lower nozzle, so that the elastic ejector pin is automatically aligned with the electrode notch during the rotation of the electrode material, without the need for positioning using sensors or visual methods, and thus having high production efficiency.
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Description

Technical Field

[0001] The present invention relates to the technical field of electronic cigarette atomizers, and in particular to a notch correction mechanism for an atomizer electrode. Background Art

[0002] In existing electronic cigarette atomizers, electrodes are used for contact conduction between the power supply control component and the atomization component. The electrodes are connected to the heating wire. There are several notches on the electrodes, and the heating wire must pass through the notches. Therefore, when assembling the electrodes, the notches of the electrodes need to be aligned with the positions of the heating wires to complete the electrode notch correction.

[0003] Currently, the common electrode gap correction methods in the market include laser sensor correction and visual correction, but both have certain defects. They both require the position of the electrode gap to be located by sensor or vision first, and then the gap of the electrode material is controlled to rotate to a suitable angle so that the heating wire can pass through the gap of the electrode material. Both correction methods have high requirements for product positioning accuracy, which makes the time required for a single correction longer and the production efficiency lower. Summary of the Invention

[0004] The object of the present invention is to provide a notch correction mechanism for an atomizer electrode, which automatically aligns the notch of the electrode material through an elastic pin without the need for precise positioning, thereby improving production efficiency.

[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: a notch correction mechanism for an atomizer electrode, comprising: a correction nozzle and a correction bracket, wherein the correction nozzle is located above the correction bracket;

[0006] The calibration nozzle includes a nozzle sleeve, an elastic ejector pin, and an upper nozzle. The nozzle sleeve is movably connected to the upper nozzle and is used to suck the electrode material. The elastic ejector pin is axially arranged in the upper nozzle, with the end of the elastic ejector pin facing the circumference where the notch of the electrode material is located, and the end of the elastic ejector pin can extend into the notch of the electrode material.

[0007] The correction bracket includes a lower suction nozzle, a rotating platform and a motor, wherein the lower suction nozzle is mounted on the rotating platform, the rotating platform is connected to the motor, and the motor drives the rotating platform to rotate and drives the lower suction nozzle to rotate;

[0008] The lower suction nozzle is used to dock with the suction nozzle sleeve and fix the electrode material. When the suction nozzle sleeve is docked with the lower suction nozzle and continuously pressed downward, the end of the elastic ejector pin can press against the upper surface of the electrode material. When the lower suction nozzle drives the electrode material to rotate a certain angle, the end of the elastic ejector pin will extend into the gap of the electrode material.

[0009] Preferably, a spring is provided between the upper suction nozzle and the suction nozzle sleeve, a long connecting hole is provided at the lower end of the upper suction nozzle, a screw is provided on the suction nozzle sleeve, and the screw is movably connected to the long connecting hole.

[0010] Preferably, a material bin for storing electrode materials is further provided on one side of the correction bracket, and the material bin includes a storage bin and a loading port, and the storage bin is communicated with the loading port.

[0011] Preferably, a displacement control device is further provided above the material bin, and the displacement control device is connected to the correction suction nozzle and drives the correction suction nozzle to move back and forth between the loading port and the correction bracket.

[0012] Preferably, the displacement control device includes a horizontal slide rail, a horizontal slider, a first vertical slide rail and a first vertical slider, the horizontal slide rail is movably connected to the horizontal slider, the horizontal slider is connected to the first vertical slide rail, the first vertical slide rail is movably connected to the first vertical slider, and the first vertical slider is connected to the correction nozzle.

[0013] Preferably, the displacement control device is also connected to a press-fitting assembly for installing the electrode into the atomizer, and the press-fitting assembly includes a pneumatic clamp, a pressure rod and a press-fitting bracket. The pneumatic clamp and the pressure rod are movably connected to the displacement control device, and the pressure rod is movably connected to one side of the pneumatic clamp. The press-fitting bracket is provided below the pneumatic clamp and the pressure rod.

[0014] Preferably, a second vertical slide rail is further provided on the horizontal slide rail, the second vertical slide rail is installed side by side on the right side of the first vertical slide rail, a second vertical slider is movably connected to the second vertical slide rail, and the second vertical slider is connected to the pressure rod.

[0015] Preferably, a third vertical slider is provided on the second vertical slider, and the pneumatic clamp is mounted on the third vertical slider.

[0016] Preferably, the pneumatic clamp has two clamping fingers, which enclose a limiting groove, and the pressure rod is located above the limiting groove and can extend into the limiting groove.

[0017] Preferably, a pin pushing assembly for bending the heating wire is also installed on one side of the press-fitting bracket, and the pin pushing assembly includes a slide cylinder and a pushing fixture. The slide cylinder is connected to the pushing fixture and controls the pushing fixture to move toward the press-fitting bracket. The lower surface of the pushing fixture is slightly higher than the upper surface of the electrode material.

[0018] Compared with the prior art, the present invention has the following beneficial effects:

[0019] 1. By setting an elastic ejector pin against the surface of the electrode material, the electrode material is driven to rotate by the rotating lower suction nozzle, so that the elastic ejector pin is automatically aligned with the electrode notch during the rotation of the electrode material. There is no need to use sensors or visual positioning, which improves production efficiency.

[0020] 2. The set robotic arm takes and presses materials back and forth between the material bin, correction bracket and press-fitting bracket, and simultaneously presses the corrected electrode materials and pushes the heating wire pins, making the entire correction and assembly process very smooth and greatly improving production efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings:

[0022] Figure 1 This is a schematic diagram of the overall structure of the notch correction mechanism of the atomizer electrode proposed by the present invention;

[0023] Figure 2 A schematic diagram of the combination of a correction nozzle and a correction bracket of the notch correction mechanism of the atomizer electrode proposed by the present invention;

[0024] Figure 3 This is a schematic diagram of the exploded structure of the correction nozzle of the atomizer electrode notch correction mechanism proposed by the present invention;

[0025] Figure 4 This is a schematic structural diagram of the material bin of the notch correction mechanism for the atomizer electrode proposed by the present invention;

[0026] Figure 5 This is a schematic structural diagram of the press-fit assembly of the notch correction mechanism of the atomizer electrode proposed by the present invention;

[0027] Figure 6 Schematic diagram of the installation structure of the pneumatic clamp and the pressure rod of the notch correction mechanism of the atomizer electrode proposed by the present invention (partial);

[0028] Figure 7 This is a structural schematic diagram of the pin push-correction assembly of the notch correction mechanism of the atomizer electrode proposed by the present invention;

[0029] Figure 8 Schematic diagram of the structure of electrode materials.

[0030] Reference numerals:

[0031] 10. Calibration nozzle; 11. Nozzle cover; 111. Screw; 12. Spring; 13. Elastic ejector pin; 14. Upper nozzle; 141. Long connecting hole;

[0032] 20. Calibration bracket; 21. Lower nozzle; 22. Rotating table; 23. Motor;

[0033] 30. Material warehouse; 31. Storage bin; 32. Loading port;

[0034] 40. Displacement control device; 41. Horizontal slide rail; 42. Horizontal slider; 43. First vertical slide rail; 44. First vertical slider; 45. Second vertical slide rail; 46. Second vertical slider; 47. Third vertical slider;

[0035] 50. Press-fit assembly; 51. Pneumatic gripper; 511. Limiting groove; 52. Press rod; 53. Press-fit bracket;

[0036] 60. Pin push assembly; 61. Slide cylinder; 62. Pushing tool. DETAILED DESCRIPTION

[0037] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. In addition, the terms "first", "second", "third", "upper, lower, left, right", etc. are used for descriptive purposes only to facilitate the description of the present invention and simplify the description, and do not indicate or imply that the devices or components referred to must have a specific orientation, be constructed and operate in a specific orientation. Therefore, the terms describing the positional relationships in the drawings are only for illustrative purposes and should not be understood as limiting this patent, indicating or implying relative importance. For those skilled in the art, the specific meanings of the above terms can be understood according to specific circumstances. At the same time, in the description of the present invention, unless otherwise expressly specified or limited, the terms "connected" and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without making any creative efforts shall fall within the scope of protection of the present invention.

[0038] The implementation of the present invention is described in detail below with reference to specific embodiments.

[0039] like Figure 1-8 The embodiment provided by the present invention is shown in FIG.

[0040] The embodiment of the present invention provides a notch correction mechanism for an atomizer electrode, comprising: a correction nozzle 10 and a correction bracket 20, wherein the correction nozzle 10 is located above the correction bracket 20; the correction nozzle 10 comprises a nozzle sleeve 11, an elastic ejector pin 13 and an upper nozzle 14, wherein the nozzle sleeve 11 is movably connected to the upper nozzle 14 and is used to suck electrode material; an elastic ejector pin 13 is axially arranged in the upper nozzle 14, wherein the end of the elastic ejector pin 13 faces the circumference where the notch of the electrode material is located, and the end of the elastic ejector pin 13 can extend into the notch on the electrode material; the correction bracket 20 is provided with a plurality of holes, wherein the holes are provided on the upper nozzle 14, and the holes are provided on the upper nozzle 14; The frame 20 includes a lower suction nozzle 21, a rotating platform 22, and a motor 23. The lower suction nozzle 21 is mounted on the rotating platform 22, which is connected to the motor 23. The motor 23 drives the rotating platform 22 to rotate and drives the lower suction nozzle 21 to rotate. The lower suction nozzle 21 is used to dock with the suction nozzle sleeve 11 and fix the electrode material. When the suction nozzle sleeve 11 docks with the lower suction nozzle 21 and continues to press down, the end of the elastic ejector pin 13 can resist the upper surface of the electrode material. When the lower suction nozzle 21 drives the electrode material to rotate a certain angle, the end of the elastic ejector pin 13 will extend into the gap in the electrode material. A spring 12 is provided between the upper suction nozzle 14 and the suction nozzle sleeve 11. The lower end of the upper suction nozzle 14 is provided with a long connecting hole 141. The suction nozzle sleeve 11 is provided with a screw 111, which is movably connected to the long connecting hole 141.

[0041] When the electrode material is pressed onto the lower suction nozzle 21, the negative pressure device of the correction suction nozzle 10 is closed, and the negative pressure device connected to the lower suction nozzle 21 is started to suck and fix the electrode material. During the downward pressing process, the spring 12 between the upper suction nozzle 14 and the suction nozzle sleeve 11 is compressed and contracted. Then the upper surface of the electrode material in the suction nozzle sleeve 11 presses against the end of the elastic ejector pin 13 and causes the elastic ejector pin 13 to contract. The role of adding the spring 12 is to form a buffer between the two to prevent the correction suction nozzle 10 from being over-pressed due to error of the equipment and causing damage to parts. During this process, the suction nozzle sleeve 11 moves upward in the long connecting hole 141 as the upper suction nozzle 14 is pressed downward. When the correction suction nozzle 10 rises, it can also limit the suction nozzle sleeve 11 so that it will not fall off, and the lower suction nozzle 21 It is installed on the rotating table 22, and the motor 23 drives the rotating table 22 to rotate so that the lower suction nozzle 21 rotates synchronously, and at the same time drives the electrode material adsorbed on the lower suction nozzle 21 to rotate, and the end of the elastic ejector 13 is against the upper surface of the electrode material and slides with the rotation of the electrode material. Since the end of the elastic ejector 13 and the notch of the electrode material are on the same circumference, the elastic ejector 13 will pass through the notch of the electrode material during the sliding process. When the elastic ejector 13 slides to the notch position of the electrode, the elastic ejector 13 rebounds, and its end falls through the electrode notch to clamp the electrode material. When the elastic ejector 13 clamps the electrode material, the electrode material sucked by the lower suction nozzle 21 is loosened by the force and will not continue to rotate with the lower suction nozzle 21. Then the motor 23 is turned off, and the rotating table 22 also stops rotating. The electrode material clamped by the elastic ejector 13 falls back onto the lower suction nozzle 21 under the action of suction. At this time, the direction of the electrode notch is corrected to a specific angle. Generally, the electrode material is circular, such as Figure 8 As shown, there are three notches and they are all located at the edge. In this embodiment, there are two elastic ejector pins 13, which makes the alignment and correction process faster and more secure, and it is not easy to bend the elastic ejector pins 13.

[0042] In one embodiment, a material bin 30 for storing electrode material is further provided on one side of the calibration bracket 20. The material bin 30 includes a storage bin 31 and a loading port 32, with the storage bin 31 communicating with the loading port 32. A displacement control device 40 is also provided above the material bin 30. The displacement control device 40 is connected to the calibration nozzle 10 and drives the calibration nozzle 10 to move back and forth between the loading port 32 and the calibration bracket 20.

[0043] In this embodiment, the storage bin 31 is filled with a large amount of electrode materials to be installed. The materials are lifted by the automatically rotating blades inside the bin and then fall onto the straight vibration track. The straight vibration track transports the materials to the loading port 32 for automatic loading. The material bin 30 used in this embodiment is an existing conventional material bin 30 in this industry, and its specific working principle will not be further elaborated here; the material bin 30 feeds the electrode material to the discharge port. At this time, the displacement control device 40 is in the initial position, and the correction suction nozzle 10 is located directly above the loading port 32. The displacement control device 40 controls the correction suction nozzle 10 to move downward to take the material. After sucking the electrode material, the displacement control device 40 controls the correction suction nozzle 10 to rise and then move to the position directly above the correction bracket 20, and then controls the correction suction nozzle 10 to move downward to dock the electrode material with the lower suction nozzle 21 on the correction bracket 20. It can be understood that the material bin 30 will automatically load after the electrode material at the loading port 32 is taken away, and the displacement control device 40 will also drive the correction suction nozzle 10 back to the initial position, so that the entire process is cyclical.

[0044] In one embodiment, the displacement control device 40 includes a horizontal slide rail 41, a horizontal slider 42, a first vertical slide rail 43 and a first vertical slider 44. The horizontal slide rail 41 is movably connected to the horizontal slider 42, the horizontal slider 42 is connected to the first vertical slide rail 43, the first vertical slide rail 43 is movably connected to the first vertical slider 44, and the first vertical slider 44 is connected to the correction nozzle 10.

[0045] In this embodiment, the horizontal slider 42 can move left and right in the horizontal direction within the horizontal slide rail 41, and drive the first vertical slide rail 43 thereon to move left and right. The first vertical slider 44 can move up and down in the vertical direction within the first vertical slide rail 43, and drive the correction suction nozzle 10 thereon to move up and down. Under the joint action of the horizontal slider 42 and the first vertical slider 44, the correction suction nozzle 10 can move freely up and down and left and right, and can flexibly transport the electrode material from the material bin 30 to the correction bracket 20, which is very convenient to use.

[0046] In one embodiment, the displacement control device 40 is also connected to a press-fit assembly 50 for installing the electrode into the atomizer. The press-fit assembly 50 includes a pneumatic clamp 51, a pressure rod 52, and a press-fit bracket 53. The pneumatic clamp 51 and the pressure rod 52 are movably connected to the displacement control device 40, respectively. The pressure rod 52 is movably connected to one side of the pneumatic clamp 51. A press-fit bracket 53 is provided below the pneumatic clamp 51 and the pressure rod 52. A second vertical rail 45 is also provided on the horizontal slide 41. The second vertical rail 45 is installed side by side on the right side of the first vertical rail 43. A second vertical slider 46 is movably connected to the second vertical rail 45. The second vertical slider 46 is connected to the pressure rod 52. A third vertical slider 47 is provided on the second vertical slider 46, and the pneumatic clamp 51 is installed on the third vertical slider 47.

[0047] In this embodiment, the function of the press-fitting assembly 50 is to transfer the calibrated electrode material and load it onto the atomizer. The pneumatic clamp 51 is used to clamp the electrode material, and then the pressure rod 52 presses the clamped electrode material onto the atomizer pre-fixed on the press-fitting bracket 53. The pneumatic clamp 51 and the pressure rod 52 are both connected and controlled by the displacement control device 40, and the press-fitting bracket 53 is fixed. Specifically, the pneumatic clamp 51 and the pressure rod 52 are both installed on the second vertical slider 46, and the second vertical slider 46 can move up and down in the second vertical track, and the second vertical track is It can move left and right within the horizontal track, thereby driving the pneumatic clamp 51 to clamp the electrode material from the correction bracket 20 and then transport the material to the press-fitting bracket 53. It should be noted that in order to make the cooperation between the pneumatic clamp 51 and the pressure bar 52 more flexible, a third vertical slider 47 is set on the second vertical slider 46. After the pneumatic clamp 51 is installed on the third vertical slider 47, the mutual movement between the two is more flexible. The pneumatic clamp 51 can be clamped by controlling the decline of the pneumatic clamp 51 or controlling the pressure bar 52 to press down relative to the pneumatic clamp 51. The electrode material is separated from the pneumatic clamp 51 and pressed down onto the press-fitting bracket 53. The second vertical track is set on the right side of the first vertical track to reduce the distance the second vertical track moves left and right, so that it is closer to the press-fitting bracket 53. In addition, when the displacement control device 40 drives the correction suction nozzle 10 to move down to the top of the loading port 32 to take the material, the position of the pneumatic clamp 51 is just above the correction bracket 20. When the correction suction nozzle 10 takes the material and rises, the pneumatic clamp 51 clamps the electrode material that has been calibrated in the previous round and rises synchronously. When the correction suction nozzle 10 is on When it rises and moves to just above the calibration support 20, the pneumatic gripper 51 is also just above the press-fit support 53. The calibration nozzle 10 presses down to transfer the electrode material to the lower nozzle 21 for calibration. The pressing rod 52 then simultaneously presses down the calibrated electrode material gripped by the pneumatic gripper 51 and installs it into the atomizer on the press-fit support 53. The two operations are also performed synchronously. Then the displacement control device 40 controls the horizontal slider 42 to move to the initial position, driving the calibration nozzle 10 to move just above the loading port 32. At this time, the pneumatic gripper 51 is also just above the calibration support 20. When the electrode calibration action is completed, the displacement control device 40 moves to the initial position, and the second cylinder drives the pneumatic gripper 51 to move downward. The pneumatic gripper 51 grips the calibrated electrode material on the lower nozzle 21, and this procedure is repeated to continuously calibrate the gaps in the electrode material and install it on the atomizer.

[0048] In one embodiment, the pneumatic clamping jaw 51 has two clamping fingers, which enclose a limiting groove 511 . The pressing rod 52 is located above the limiting groove 511 and can extend into the limiting groove 511 .

[0049] In this embodiment, if Figure 6As shown, the limiting groove 511 is formed when the two clamping fingers are merged. The shape of the limiting groove 511 is close to the shape of the electrode material. Under the action of the limiting groove 511, the pneumatic clamp 51 is more stable when clamping the electrode material. The contact area between the limiting groove 511 and the side wall of the electrode material is larger, and it is not easy to cause the calibrated electrode material to rotate during the clamping process. Moreover, the pressing rod 52 just passes through the middle of the limiting groove 511 when pressed down. In this way, when the electrode material is pressed down, the electrode material can be vertically installed on the atomizer, and the direction of the gap of the calibrated electrode material will not be changed.

[0050] In one embodiment, a pin pushing assembly 60 for bending the heating wire is also installed on one side of the press-fitting bracket 53. The pin pushing assembly 60 includes a slide cylinder 61 and a pushing fixture 62. The slide cylinder 61 is connected to the pushing fixture 62 and controls the pushing fixture 62 to move toward the press-fitting bracket 53. The lower surface of the pushing fixture 62 is slightly higher than the upper surface of the electrode material.

[0051] In this embodiment, when the pneumatic gripper 51 grips the electrode material and the pressing rod 52 presses it into the atomizer, the heating wire in the atomizer just passes vertically through the gap in the electrode material, and the electrode material is flush with the upper end of the atomizer. The slide cylinder 61 pushes the pushing fixture 62 toward the press-fitting bracket 53. The lower surface of the pushing fixture 62 is slightly higher than the upper surface of the electrode material. After moving to the position of the heating wire, the pushing fixture 62 can push the heating wire flat.

[0052] 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.

Claims

1. A notch correction mechanism for an atomizer electrode, characterized in that: include: A correction nozzle and a correction bracket, wherein the correction nozzle is located above the correction bracket; The calibration nozzle includes a nozzle sleeve, an elastic ejector pin, and an upper nozzle. The nozzle sleeve is movably connected to the upper nozzle and is used to suck the electrode material. The elastic ejector pin is axially arranged in the upper nozzle, with the end of the elastic ejector pin facing the circumference where the notch of the electrode material is located, and the end of the elastic ejector pin can extend into the notch of the electrode material. The correction bracket includes a lower suction nozzle, a rotating platform and a motor, wherein the lower suction nozzle is mounted on the rotating platform, the rotating platform is connected to the motor, and the motor drives the rotating platform to rotate and drives the lower suction nozzle to rotate; The lower suction nozzle is used to dock with the suction nozzle sleeve and fix the electrode material. When the suction nozzle sleeve docks with the lower suction nozzle and is continuously pressed downward, the end of the elastic ejector pin can abut against the upper surface of the electrode material; A spring is provided between the upper suction nozzle and the suction nozzle cover, a long connecting hole is provided at the lower end of the upper suction nozzle, a screw is provided on the suction nozzle cover, and the screw is movably connected to the long connecting hole; A material bin for storing electrode materials is also provided on one side of the correction bracket, and the material bin includes a storage bin and a loading port, and the storage bin is connected to the loading port; A displacement control device is also provided above the material bin, and the displacement control device is connected to the correction nozzle and drives the correction nozzle to move back and forth between the loading port and the correction bracket; The displacement control device includes a horizontal slide rail, a horizontal slider, a first vertical slide rail and a first vertical slider. The horizontal slide rail is movably connected to the horizontal slider, the horizontal slider is connected to the first vertical slide rail, the first vertical slide rail is movably connected to the first vertical slider, and the first vertical slider is connected to the correction nozzle.

2. The notch correction mechanism for an atomizer electrode according to claim 1, characterized in that: The displacement control device is also connected to a press-fitting assembly for installing the electrode into the atomizer. The press-fitting assembly includes a pneumatic clamp, a pressure rod and a press-fitting bracket. The pneumatic clamp and the pressure rod are movably connected to the displacement control device, respectively. The pressure rod is movably connected to one side of the pneumatic clamp, and the press-fitting bracket is provided below the pneumatic clamp and the pressure rod.

3. The notch correction mechanism for an atomizer electrode according to claim 2, characterized in that: A second vertical slide rail is also provided on the horizontal slide rail. The second vertical slide rail is installed side by side on the right side of the first vertical slide rail. A second vertical slider is movably connected to the second vertical slide rail. The second vertical slider is connected to the pressure rod.

4. The notch correction mechanism for an atomizer electrode according to claim 3, characterized in that: A third vertical slider is provided on the second vertical slider, and the pneumatic clamp is installed on the third vertical slider.

5. The notch correction mechanism for an atomizer electrode according to claim 3, characterized in that: The pneumatic clamp has two clamping fingers, which enclose a limiting groove. The pressure rod is located above the limiting groove and can extend into the limiting groove.

6. The notch correction mechanism for an atomizer electrode according to claim 2, characterized in that: A pin pushing assembly for bending the heating wire is also installed on one side of the press-fitting bracket. The pin pushing assembly includes a slide cylinder and a pushing fixture. The slide cylinder is connected to the pushing fixture and controls the pushing fixture to move toward the press-fitting bracket. The lower surface of the pushing fixture is slightly higher than the upper surface of the electrode material.

Citation Information

Patent Citations

  • Notch correction mechanism for atomizer electrode

    CN218988087U