Electronic cigarette oil impurity removal device

By combining the driving disc and transmission pump with the impurity removal tank, the suspended particles in the raw materials are filtered by centrifugation and the rotation of the filter disc, which solves the problem of filtering suspended particles in the electronic cigarette oil and realizes an efficient filtering and mixing process.

CN117379862BActive Publication Date: 2025-09-30SHENZHEN ABUFAN TECH CO LTD
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Patent Information

Application Number
CN202311554926.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-20
Publication Date
2025-09-30
Estimated Expiration
2043-11-20

AI Technical Summary

Technical Problem

In the existing technology, there are suspended particles and debris in the electronic cigarette oil. The traditional filtering method requires frequent cleaning or replacement of the filter module, which cannot achieve a smooth impurity removal process.

Method used

The drive disc and transmission pump are used in conjunction with the impurity removal tank. The raw materials are continuously filtered of particles through the rotation and centrifugal action of the drive disc. At the same time, the filter disc and filter element are used to isolate the suspended particles, realizing the unified filtration and preparation process.

Benefits of technology

It achieves efficient filtration and mixing of electronic cigarette oil, simplifies the operation process, reduces equipment downtime and improves production efficiency.

✦ Generated by Eureka AI based on patent content.

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    Figure CN117379862B_ABST
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Abstract

The present invention belongs to the field of electronic cigarette oil, specifically an electronic cigarette oil impurity removal device, including an impurity removal tank, a circulation pipe is connected between the middle of the bottom end of the impurity removal tank and the top of the impurity removal tank, the middle of the circulation pipe is connected to a transmission pump, the middle of the impurity removal tank is rotatably clamped with a drive disk, and a drive component for driving the drive disk to rotate is provided on the outer side of the drive disk. Since the drive disk is constantly rotating, the raw materials passing through the impurity removal pipe will be continuously filtered of particles therein, and at the same time, the raw materials coming out from the bottom will be centrifugally thrown out to form multiple liquid columns, which collide with each other and then collide with the inner wall of the impurity removal tank to be mixed with each other. Through this arrangement, not only can multiple raw materials be directly mixed into finished products, but also suspended particles in the raw materials can be filtered, and the filtration and preparation processes are unified. The bottom of the impurity removal tank is also connected to a discharge valve. After the final preparation and filtration are completed, the finished product is discharged from the bottom through the arrangement valve.
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Description

Technical Field

[0001] The present invention belongs to the field of electronic cigarette oil, and in particular relates to an electronic cigarette oil impurity removal device. Background Art

[0002] E-cigarette liquid, also known as e-cigarette fluid, is the atomizing liquid used with e-cigarettes. It's heated in the atomizer to produce cigarette-like vapor. The main ingredients are food-grade or pharmaceutical-grade propylene glycol (also known as glycerin), 1,2-propylene glycol (1,3-propylene glycol is generally not used), and polyethylene glycol, along with tobacco flavorings. Nicotine is also present.

[0003] Most raw materials for e-cigarette oil are prepared by mixing plant extracts, which leads to the presence of some suspended particles in the raw materials. In order to improve the quality of e-cigarette liquid, it is necessary to remove impurities from the raw materials and finished products to reduce suspended particles.

[0004] There are some suspended particles and debris in e-cigarette oil. At the same time, the preparation of e-cigarette oil requires the mixing of multiple raw materials. There will be some suspended particles in each raw material. Whether it is repeated filtration after the preparation is completed or the raw materials are filtered before preparation, the operation process will be increased. At the same time, traditional filtration generally pressurizes the liquid and allows the liquid to pass through the filter module. This method requires cleaning or replacing the filter module every once in a while, and cannot achieve a smooth impurity removal process.

[0005] To this end, the present invention provides an electronic cigarette oil impurity removal device. Summary of the Invention

[0006] In order to make up for the deficiencies of the prior art, at least one technical problem raised in the background technology is solved.

[0007] The technical solution adopted by the present invention to solve its technical problem is as follows: the electronic cigarette oil impurity removal device of the present invention includes an impurity removal tank, a circulation pipe is connected between the middle part of the bottom end of the impurity removal tank and the top of the impurity removal tank, the middle part of the circulation pipe is connected to a transmission pump, the middle part of the impurity removal tank is rotatably connected to a drive disk, the outer side of the drive disk is provided with a drive assembly for driving the drive disk to rotate, a plurality of impurity removal pipes are provided on the top surface of the drive disk, and a feeding pipe is connected to the top surface of the impurity removal tank;

[0008] Through the setting of the driving disk, the raw materials for preparing electronic cigarette oil are added to the impurity removal tank through the feeding pipe, and the driving component is started to drive the driving disk to rotate. The raw materials above the driving disk will pass through the impurity removal pipe under the action of gravity to the bottom of the impurity removal tank, and then the transmission pump is started to draw the raw materials below to the top of the impurity removal tank. This process is repeated continuously. Since the driving disk is constantly rotating, the raw materials passing through the impurity removal pipe will be continuously filtered of particles, and at the same time, the raw materials coming out from the bottom will be centrifuged to form multiple liquid columns. The liquid columns collide with the inner wall of the impurity removal tank and mix with each other. Through this setting, not only can multiple raw materials be directly mixed into finished products, but also the suspended particles in the raw materials can be filtered, and the filtration and preparation processes are unified. The bottom of the impurity removal tank is also connected to a discharge valve. After the final preparation and filtration are completed, the finished product is discharged from the bottom through the arrangement valve.

[0009] Preferably, a plurality of docking holes extending through to the bottom surface are provided on the top surface of the driving disk, the debris removal tube is clamped in the docking hole, side supports are fixedly connected to both sides of the debris removal tube, a flow port is provided in the middle of the debris removal tube, the flow port is aligned with the docking hole, a plurality of filter discs are slidably connected to the middle of the debris removal tube, a replacement component is provided in the debris removal tube, the replacement component is used to replace a new filter disc, and by inserting a plurality of debris removal tubes into the docking holes and clamping the position of the flow port in the docking hole, the raw material above will pass through the flow port and the docking hole, and thus flow to the bottom of the debris removal tank, so that all the raw materials that flow through will pass through the filter disc, and the suspended particles of the raw material can be isolated in the filter disc. Through this arrangement, the effect of filtering the raw material is achieved.

[0010] Preferably, the filter disc includes a metal shell, a filter element is fixedly connected to the interior of the shell, and baffles are fixedly connected to the bottom of the shell on both sides. The baffles are slidably engaged in the side pillars. The cooperation between the side pillars and the baffles prevents the filter disc from rotating during the sliding process in the impurity removal pipe, ensuring the stable up and down sliding process of the filter disc. After the raw material passes through the filter element, the suspended particles therein can be trapped in the interior and top of the filter element, so that the raw material passing from top to bottom can be continuously filtered and impurity removed.

[0011] Preferably, the central part of the driving disk is sunken, and the overall driving disk is arranged in an inverted cone shape. A plurality of impurity removal pipes are equidistantly distributed on the surface of the driving disk. The structural arrangement of the driving disk allows the raw materials above to pass through the impurity removal pipes and docking holes under the action of centrifugation during the rotation of the driving disk. This arrangement not only allows the raw materials from top to bottom to have greater pressure to pass through the impurity removal pipes, ensuring that the raw materials can be smoothly filtered, but the transmission pump needs to always keep the liquid at the bottom of the impurity removal tank lower than the bottom surface of the driving disk, so that the raw materials can be quickly thrown out from under the driving disk.

[0012] Preferably, the replacement component includes two groups of blocking blocks, each group includes two symmetrically arranged blocking blocks, one end of the blocking block is rotatably connected to the inner wall of the side support, and a torsion spring is connected between the blocking block and the side support, one group of blocking blocks is located in the middle of the flow port, and the other group of blocking blocks is located above the flow port. The two groups of blocking blocks divide the multiple filter discs into two groups, the group located above is all stacked above the flow port, and the number of the other group is one, and it is horizontally placed in the middle of the flow port, allowing the raw materials to continuously pass through the filter disc. After filtering for a period of time, when the filter disc needs to be replaced, it is only necessary to control the drive component to increase the output and increase the speed of the drive disc. As the speed increases, the downward pressure of the filter discs stacked above will increase. The overall mass of multiple filter discs is greater than the mass of a single filter disc, so the upper filter disc will press the blocking block open under the action of centrifugation, allowing the bottom one of the filter discs in the upper group to pass through the blocking block. After passing through the blocking block, the blocking block will rebound quickly under the action of the torsion spring to block the remaining filter discs, and the downward moving filter disc will hit the filter disc originally located in the flow port. As the collision occurs, the original filter disc will move to the bottom of the impurity removal pipe, and the new filter disc will remain in place to continue filtering. Through this setting, the effect of replacing the filter disc is achieved, and the whole process is fast and simple, without stopping the entire equipment, and after all the filter discs have been used, the product processing process is completed.

[0013] Preferably, the inner side of the debris removal pipe is slidably connected to a counterweight plate near the top, and an elastic spiral rope is connected between the top of the counterweight plate and the debris removal pipe. A plurality of extrusion pads are fixed to the top of the outer shell. The setting of the counterweight plate ensures that when there is only one filter disc stacked above, the mass of the counterweight plate plus the filter disc is still greater than the filter disc located in the middle of the flow port. In this way, during the acceleration process of the driving disc, the upper filter disc still exerts a relatively large extrusion force on the blocking block, so that the replacement process is still feasible when only the last filter disc is left. The extrusion pad is provided to reduce the damage caused by the impact process.

[0014] Preferably, a filter screen is fixedly connected to the top of the shell, the filter element is located below the filter screen, and two symmetrical avoidance grooves are provided on the outside of the shell, and the avoidance grooves are located above the blocking plate. In the process of filtering suspended particles, some particles are easily blocked at the outermost side of the filter element. At this time, during the replacement process, the particles on the outside are easily mixed into the raw materials again, and these particles are trapped between the filter screen and the filter element through the filter screen. The avoidance groove is set so that after the filter disc is compressed and passes through the blocking block, the blocking block will pass through the avoidance groove position during the rebound process and quickly return to the center. When the next filter disc has not yet moved into place, the blocking block will return to its position smoothly, allowing the filter discs to pass through the blocking block one by one.

[0015] Preferably, a plurality of flow grooves are provided on the outer side of the side pillar, and the plurality of flow grooves are arranged at equal intervals. The thickness of the outer wall of the side pillar increases successively from top to bottom. The setting of the flow grooves allows the raw materials to pass through the side pillar, reducing the problem of suspended particles entering the gaps of the side pillars. When the impurity removal pipe is placed in the docking hole, it is inserted from top to bottom. When inserted to the bottom, the outer wall of the side pillar becomes wider and wider, so that the impurity removal pipe can be firmly fixed in the docking hole and cannot continue to sink.

[0016] Preferably, the drive assembly includes two drive boxes fixed to the outer surface of the de-cluttering tank, a drive motor is fixed to the interior of the drive box, a gear is fixed to the top of the drive motor, a snap ring is fixed to the outer edge of the drive disk, the snap ring is engaged with the two gears, and the gears are driven to rotate by the drive motor, which in turn drives the snap ring to rotate, thereby driving the drive disk to rotate.

[0017] Preferably, it also includes an electric telescopic rod, the end of the electric telescopic rod is fixedly connected to an electromagnet, the top of the debris removal pipe is a magnetizable metal material, the end of the electric telescopic rod away from the electromagnet is connected to a leather collar, the top of the debris removal tank is rotatably connected to an expansion cover, the feeding pipe is connected to the expansion cover, when the debris removal pipe needs to be removed and replaced, the expansion cover is rotated outward to open, and the electric telescopic rod is extended to allow the electromagnet to adsorb to the top of the debris removal pipe, shortening the electric telescopic rod and pulling the debris removal pipe outward. Because the debris removal pipe is inserted into the docking hole in an inclined state, it is pulled out at the same angle at this time. At the same time, this part can also be used when placing the debris removal pipe. The setting of the collar is used to fix the electric telescopic rod.

[0018] The beneficial effects of the present invention are as follows:

[0019] 1. The electronic cigarette oil impurity removal device described in the present invention adds the raw materials for preparing electronic cigarette oil into the impurity removal tank through the feeding pipe through the setting of the driving disk, starts the driving component to drive the driving disk to rotate, and the raw materials above the driving disk will pass through the impurity removal pipe under the action of gravity to the bottom of the impurity removal tank, and then starts the transmission pump to draw the raw materials below to the top of the impurity removal tank, and repeats this process. Since the driving disk is constantly rotating, the raw materials passing through the impurity removal pipe will be continuously filtered of particles, and at the same time, the raw materials coming out from the bottom will be centrifuged to form multiple liquid columns, which collide with each other and then collide with the inner wall of the impurity removal tank to mix with each other. Through this setting, not only can multiple raw materials be directly mixed into finished products, but also suspended particles in the raw materials can be filtered, and the filtration and preparation processes can be unified. The bottom of the impurity removal tank is also connected to a discharge valve. After the final preparation and filtration are completed, the finished product is discharged from the bottom through the arrangement valve.

[0020] 2. The electronic cigarette oil impurity removal device described in the present invention inserts multiple impurity removal tubes into the docking holes and clamps the position of the flow port in the docking hole. In this way, the raw materials above will pass through the flow port and the docking hole, and then flow to the bottom of the impurity removal tank. In this way, all the raw materials that have flowed through will pass through the filter disk, and the suspended particles of the raw materials can be isolated in the filter disk. Through this arrangement, the effect of filtering the raw materials is achieved. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] The present invention will be further described below with reference to the accompanying drawings.

[0022] Figure 1 is a perspective view of the present invention;

[0023] Figure 2 It is a cross-sectional view of the impurity removal tank of the present invention;

[0024] Figure 3 It is a cross-sectional view of the drive disc and the impurity removal tank of the present invention;

[0025] Figure 4 It is a three-dimensional diagram of the impurity removal pipe of the present invention;

[0026] Figure 5 It is a cross-sectional view of the impurity removal pipe of the present invention;

[0027] Figure 6 is a perspective view of the filter disc and counterweight plate of the present invention;

[0028] In the figure: 1. De-duster tank; 2. Deployment cover; 3. Feeding pipe; 5. Drive box; 6. Circulation pipe; 7. Transmission pump; 8. Drive plate; 9. Gear; 10. Drive motor; 11. Gear ring; 12. Docking hole; 13. De-duster pipe; 14. Flow port; 15. Filter plate; 16. Side support; 17. Counterweight; 18. Spiral rope; 19. Housing; 20. Filter screen; 21. Squeeze pad; 22. Block block; 23. Block plate; 24. Avoidance groove; 25. Filter element; 26. Electric telescopic rod; 27. Electromagnet; 28. Ring. DETAILED DESCRIPTION

[0029] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.

[0030] like Figures 1 to 3As shown, an electronic cigarette oil impurity removal device according to an embodiment of the present invention includes a impurity removal tank 1, a circulation pipe 6 is connected between the middle of the bottom end of the impurity removal tank 1 and the top of the impurity removal tank 1, a transmission pump 7 is connected to the middle of the circulation pipe 6, a drive disk 8 is rotatably connected to the middle of the impurity removal tank 1, a drive assembly for driving the drive disk 8 to rotate is provided on the outer side of the drive disk 8, a plurality of impurity removal pipes 13 are provided on the top surface of the impurity removal tank 1, and a feeding pipe 3 is connected to the top surface of the impurity removal tank 1;

[0031] During operation, there are some suspended particles and debris in the e-cigarette liquid. At the same time, the preparation of e-cigarette liquid requires the mixing of multiple raw materials. There will be some suspended particles in each raw material. Whether it is repeated filtration after the preparation is completed or the raw materials are filtered before preparation, it will increase the operation process. At the same time, traditional filtration generally pressurizes the liquid and allows the liquid to pass through the filter module. This method requires cleaning or replacing the filter module at regular intervals, and it is impossible to achieve a smooth impurity removal process.

[0032] Through the setting of the driving disk 8, the raw materials for preparing the electronic cigarette oil are added to the impurity removal tank 1 through the feeding pipe 3, and the driving component is started to drive the driving disk 8 to rotate. The raw materials above the driving disk 8 will pass through the impurity removal pipe 13 under the action of gravity and come to the bottom of the impurity removal tank 1. Then the transmission pump 7 is started to pump the raw materials below to the top of the impurity removal tank 1. This process is repeated continuously. Since the driving disk 8 is constantly rotating, the raw materials passing through the impurity removal pipe 13 will be continuously filtered of particles. At the same time, the raw materials coming out from the bottom will be centrifuged to form multiple liquid columns. The liquid columns collide with the inner wall of the impurity removal tank 1 and mix with each other. Through this setting, not only can a variety of raw materials be directly mixed into finished products, but also the suspended particles in the raw materials can be filtered, and the filtration and preparation processes can be unified. The bottom of the impurity removal tank 1 is also connected to a discharge valve. After the final preparation and filtration are completed, the finished product is discharged from the bottom through the discharge valve.

[0033] like Figures 1 to 2 As shown, a plurality of docking holes 12 extending from the top surface of the driving disk 8 to the bottom surface are provided, and the debris removal pipe 13 is clamped in the docking hole 12. Side pillars 16 are fixedly connected to both sides of the debris removal pipe 13. A flow port 14 is provided in the middle of the debris removal pipe 13, and the flow port 14 is aligned with the docking hole 12. A plurality of filter discs 15 are slidably connected to the middle of the debris removal pipe 13. A replacement assembly is provided in the debris removal pipe 13, and the replacement assembly is used to replace a new filter disc 15.

[0034] During operation, multiple impurity removal tubes 13 are inserted into the docking holes 12, and the flow port 14 is positioned in the docking hole 12. In this way, the raw materials above will pass through the flow port 14 and the docking hole 12, and flow to the bottom of the impurity removal tank 1. In this way, all the raw materials that have passed through will pass through the filter disk 15, and the suspended particles of the raw materials can be isolated in the filter disk 15. Through this arrangement, the effect of filtering the raw materials is achieved.

[0035] like Figure 6 As shown, the filter disc 15 includes a metal shell 19, a filter element 25 is fixedly connected to the interior of the shell 19, and blocking plates 23 are fixedly connected to both sides of the bottom of the shell 19. The blocking plates 23 are slidably engaged in the side pillars 16;

[0036] During operation, the side support 16 and the blocking plate 23 cooperate to prevent the filter disc 15 from rotating while sliding in the impurity removal pipe 13, ensuring the stable up and down sliding process of the filter disc 15. After the raw materials pass through the filter element 25, the suspended particles therein can be trapped inside and on the top of the filter element 25, allowing the raw materials that continuously pass from top to bottom to continuously undergo the filtering and impurity removal process.

[0037] like Figures 1 to 3 As shown, the center of the driving disk 8 is sunken, and the entire driving disk 8 is arranged in an inverted cone shape, and a plurality of debris removal pipes 13 are evenly distributed on the surface of the driving disk 8;

[0038] During operation, the structural setting of the driving disk 8 allows the raw materials above to pass through the impurity removal pipe 13 and the docking hole 12 under the action of centrifugation during the rotation of the driving disk 8. This setting not only allows the raw materials from top to bottom to have greater pressure to pass through the impurity removal pipe 13, ensuring that the raw materials can be smoothly filtered, but the transmission pump 7 needs to always keep the liquid at the bottom of the impurity removal tank 1 lower than the bottom surface of the driving disk 8, so that the raw materials can be quickly thrown out from the bottom of the driving disk 8.

[0039] like Figures 2 to 6 As shown, the replacement assembly includes two groups of blocking blocks 22, each group includes two symmetrically arranged blocking blocks 22, one end of each blocking block 22 is rotatably connected to the inner wall of the side support 16, and a torsion spring is connected between the blocking block 22 and the side support 16, one group of blocking blocks 22 is located in the middle of the flow opening 14, and the other group of blocking blocks 22 is located above the flow opening 14;

[0040] During operation, the two groups of blocking blocks 22 divide the multiple filter discs 15 into two groups. The upper group is all stacked above the flow port 14, and the number of the other group is one, and it is horizontal in the middle of the flow port 14, so that the raw materials continue to pass through the filter discs 15. After filtering for a period of time, when the filter discs 15 need to be replaced, it is only necessary to control the drive component to increase the output and increase the speed of the drive disc 8. As the speed increases, the downward pressure of the filter discs 15 stacked above will increase. Since the overall mass of the stacked multiple filter discs 15 is greater than the mass of a single filter disc 15, the upper filter disc 15 will press the blocking block 22 open under the action of centrifugation, making way for the upper filter disc 15. The bottom one of the set of filter discs 15 passes through the blocking block 22. After passing through the blocking block 22, the blocking block 22 will rebound quickly under the action of the torsion spring to block the remaining filter discs 15, and the downwardly moving filter disc 15 will hit the filter disc 15 originally located in the flow port 14. As the collision occurs, the original filter disc 15 will move to the bottom of the impurity removal pipe 13, and the new filter disc 15 will remain in place to continue filtering. Through this arrangement, the effect of replacing the filter disc 15 is achieved, and the whole process is fast and simple, without stopping the entire equipment, and after all the filter discs 15 have been used up, the product processing process is completed.

[0041] like Figures 5 and 6 As shown, a weight plate 17 is slidably connected to the inner side of the debris removal tube 13 near the top, an elastic spiral rope 18 is connected between the top of the weight plate 17 and the debris removal tube 13, and a plurality of squeeze pads 21 are fixed to the top of the shell 19;

[0042] During operation, the setting of the counterweight plate 17 ensures that when there is only one filter disc 15 stacked on top, the mass of the counterweight plate 17 plus the filter disc 15 is still greater than the filter disc 15 located in the middle of the flow port 14. In this way, during the acceleration process of the driving disc 8, the upper filter disc 15 still exerts a relatively large extrusion force on the blocking block 22, so that the replacement process is still feasible when there is only the last filter disc 15 left. The setting of the extrusion pad 21 is to reduce the damage caused by the impact process.

[0043] like Figure 6 As shown, a filter screen 20 is fixed to the top of the housing 19, and the filter element 25 is located below the filter screen 20. Two symmetrical avoidance grooves 24 are opened on the outer side of the housing 19, and the avoidance grooves 24 are located above the blocking plate 23;

[0044] During operation, in the process of filtering suspended particles, some particles are easily blocked at the outermost side of the filter element 25. At this time, during the replacement process, the particles on the outer side are easily mixed into the raw materials again, and these particles are trapped between the filter mesh 20 and the filter element 25 through the filter mesh 20. The setting of the avoidance groove 24 is to allow the filter disc 15 to be compressed and pass through the blocking block 22. The blocking block 22 will pass through the avoidance groove 24 position during the rebound process and quickly return to the right position. When the next filter disc 15 has not moved into place, the blocking block 22 will return to its position smoothly, allowing the filter discs 15 to pass through the blocking block 22 one by one.

[0045] like Figures 3 and 4 As shown, a plurality of flow slots are opened on the outer side of the side pillar 16, and the plurality of flow slots are arranged at equal intervals. The thickness of the outer wall of the side pillar 16 increases from top to bottom.

[0046] During operation, the setting of the circulation groove allows the raw materials to pass through the side pillars 16, reducing the problem of suspended particles entering the gaps in the side pillars 16. When the impurity removal pipe 13 is placed in the docking hole 12, it is inserted from top to bottom. When inserted to the bottom, the outer wall of the side pillars 16 becomes wider and wider, allowing the impurity removal pipe 13 to be firmly fixed in the docking hole 12 and unable to continue sinking.

[0047] like Figures 1 to 3 As shown, the drive assembly includes two drive boxes 5 fixed to the outer surface of the de-cluttering tank 1, a drive motor 10 is fixed to the interior of the drive box 5, a gear 9 is fixed to the top of the drive motor 10, and a snap ring 11 is fixed to the outer edge of the drive disk 8. The snap ring 11 is engaged with the two gears 9. When working, the gear 9 is driven to rotate by the drive motor 10, and then the snap ring 11 is driven to rotate, thereby driving the drive disk 8 to rotate.

[0048] like Figures 1 to 4 As shown, it also includes an electric telescopic rod 26, the end of which is fixedly connected to an electromagnet 27. The top of the impurity removal pipe 13 is made of a magnetizable metal material. The end of the electric telescopic rod 26 away from the electromagnet 27 is connected to a leather collar 28. The top of the impurity removal tank 1 is rotatably connected to a deployment cover 2, and the feeding pipe 3 is connected to the deployment cover 2.

[0049] During operation, when it is necessary to remove and replace the debris removal tube 13, the deployment cover 2 is rotated outward to open it, and the electromagnet 27 is adsorbed on the top of the debris removal tube 13 by extending the electric telescopic rod 26, shortening the electric telescopic rod 26, and withdrawing the debris removal tube 13 outward. Because the debris removal tube 13 is inserted into the docking hole 12 in an inclined state, it is pulled out at the same angle at this time. At the same time, this part can also be used when placing the debris removal tube 13. The setting of the collar 28 is used to fix the electric telescopic rod 26.

[0050] During operation, the raw materials for preparing the electronic cigarette oil are added to the impurity removal tank 1 through the feeding pipe 3 through the setting of the driving disk 8, and the driving assembly is started to drive the driving disk 8 to rotate. The raw materials above the driving disk 8 will pass through the impurity removal pipe 13 under the action of gravity and come to the bottom of the impurity removal tank 1. Then the transmission pump 7 is started to pump the raw materials below to the top of the impurity removal tank 1, and this process is repeated continuously. Since the driving disk 8 is constantly rotating, the raw materials passing through the impurity removal pipe 13 will be continuously filtered of particles, and at the same time, the raw materials coming out from the bottom will be centrifugally thrown out to form multiple liquid columns. After the liquid columns collide with each other, they collide with the inner wall of the impurity removal tank 1 and mix with each other. Through this setting, not only can a variety of raw materials be directly mixed into finished products, but also the suspended particles in the raw materials can be filtered, and the filtration and preparation processes can be unified. The bottom of the impurity removal tank 1 is also connected to a discharge valve. After the final preparation and filtration are completed, the finished product is discharged from the bottom through the arrangement valve;

[0051] By inserting multiple impurity removal pipes 13 into the docking holes 12 and clamping the flow port 14 in the docking hole 12, the raw materials above will pass through the flow port 14 and the docking hole 12, and then flow to the bottom of the impurity removal tank 1. In this way, all the raw materials that have flowed through will pass through the filter disk 15, and the suspended particles of the raw materials can be isolated in the filter disk 15. Through this arrangement, the effect of filtering the raw materials is achieved;

[0052] The cooperation between the side support 16 and the blocking plate 23 prevents the filter disc 15 from rotating while sliding in the impurity removal pipe 13, ensuring the stable up and down sliding process of the filter disc 15. After the raw materials pass through the filter element 25, the suspended particles in the raw materials can be trapped inside and on the top of the filter element 25, allowing the raw materials that pass through from top to bottom to continuously undergo the filtering and impurity removal process;

[0053] The structural setting of the driving disk 8 allows the raw materials above to pass through the impurity removal pipe 13 and the docking hole 12 under the action of centrifugation during the rotation of the driving disk 8. This setting not only allows the raw materials from top to bottom to have greater pressure to pass through the impurity removal pipe 13, ensuring that the raw materials can be smoothly filtered, but the transmission pump 7 needs to always keep the liquid at the bottom of the impurity removal tank 1 lower than the bottom surface of the driving disk 8, so that the raw materials can be quickly thrown out from under the driving disk 8;

[0054] The two groups of blocking blocks 22 divide the multiple filter discs 15 into two groups. The upper group is all stacked above the circulation port 14, and the number of the other group is one, which is horizontally placed in the middle of the circulation port 14, allowing the raw materials to continuously pass through the filter discs 15. After filtering for a period of time, when the filter discs 15 need to be replaced, it is only necessary to control the drive component to increase the output and increase the speed of the drive disc 8. As the speed increases, the downward pressure of the filter discs 15 stacked above will increase. Since the overall mass of the stacked multiple filter discs 15 is greater than the mass of a single filter disc 15, the upper filter disc 15 will press the blocking block 22 open under the action of centrifugation, allowing the upper filter disc 15 to pass through the blocking block 22. The bottom one of the filter discs 15 in a group passes through the blocking block 22. After passing through the blocking block 22, the blocking block 22 will rebound quickly under the action of the torsion spring, blocking the remaining filter discs 15. The filter disc 15 moving downward will hit the filter disc 15 originally located in the flow port 14. As the collision occurs, the original filter disc 15 will move below the impurity removal pipe 13, while the new filter disc 15 will remain in place and continue to filter. Through this arrangement, the effect of replacing the filter disc 15 is achieved, and the whole process is fast and simple without stopping the entire equipment. After all the filter discs 15 have been used, the product processing process is completed.

[0055] The arrangement of the counterweight 17 ensures that when only one filter disc 15 remains stacked on top, the mass of the counterweight 17 plus the filter disc 15 is still greater than that of the filter disc 15 located in the middle of the flow opening 14. In this way, during the acceleration of the drive disc 8, the upper filter disc 15 still exerts a greater pressure on the blocking block 22, making the replacement process feasible even when only the last filter disc 15 remains. The arrangement of the squeezing pad 21 is to reduce damage caused by the impact process.

[0056] During the process of filtering suspended particles, some particles are easily blocked at the outermost side of the filter element 25. At this time, during the replacement process, the particles on the outer side are easily mixed into the raw materials again, and these particles are trapped between the filter mesh 20 and the filter element 25 by the filter mesh 20. The setting of the avoidance groove 24 is to allow the filter disc 15 to pass through the blocking block 22 after being pressed and passed by the blocking block 22. The blocking block 22 will pass through the avoidance groove 24 position during the rebound process and quickly return to the right position. Before the next filter disc 15 has moved into place, the blocking block 22 will return to its position smoothly, allowing the filter discs 15 to pass through the blocking block 22 one by one.

[0057] The setting of the flow groove allows the raw materials to pass through the side pillars 16, reducing the problem of suspended particles entering the gaps of the side pillars 16. When the impurity removal pipe 13 is placed in the docking hole 12, it is inserted from top to bottom. When inserted to the bottom, the outer wall of the side pillars 16 becomes wider and wider, allowing the impurity removal pipe 13 to be firmly fixed in the docking hole 12 and prevent it from sinking further.

[0058] The drive motor 10 drives the gear 9 to rotate, which in turn drives the toothed ring 11 to rotate, thereby driving the drive disc 8 to rotate;

[0059] When it is necessary to remove and replace the debris removal pipe 13, the deployment cover 2 is rotated outward to open it. By extending the electric telescopic rod 26, the electromagnet 27 is adsorbed on the top of the debris removal pipe 13, shortening the electric telescopic rod 26, and withdrawing the debris removal pipe 13 outward. Because the debris removal pipe 13 is inserted into the docking hole 12 in an inclined state, it is now withdrawn at the same angle. At the same time, this part can also be used when inserting the debris removal pipe 13. The setting of the ring 28 is used to fix the electric telescopic rod 26.

[0060] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the foregoing embodiments. The foregoing embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.

Claims

1. An electronic cigarette oil impurity removal device, characterized by: The invention comprises a de-impurity tank (1), wherein a circulation pipe (6) is connected between the middle of the bottom end of the de-impurity tank (1) and the top of the de-impurity tank (1), the middle of the circulation pipe (6) is connected to a transmission pump (7), the middle of the de-impurity tank (1) is rotatably connected to a driving disk (8), the outer side of the driving disk (8) is provided with a driving assembly for driving the driving disk (8) to rotate, a plurality of de-impurity pipes (13) are provided on the top surface of the driving disk (8), and a feeding pipe (3) is connected to the top surface of the de-impurity tank (1); A plurality of docking holes (12) extending from the top surface of the driving disk (8) to the bottom surface are provided, the impurity removal pipe (13) is clamped in the docking hole (12), and side pillars (16) are fixedly connected to both sides of the impurity removal pipe (13). A flow opening (14) is provided in the middle of the impurity removal pipe (13), and the flow opening (14) is aligned with the docking hole (12). A plurality of filter discs (15) are slidably connected to the middle of the impurity removal pipe (13), and a replacement component is provided in the impurity removal pipe (13), and the replacement component is used to replace a new filter disc (15); The filter disc (15) comprises a metal shell (19), a filter element (25) is fixedly connected to the interior of the shell (19), and blocking plates (23) are fixedly connected to both sides of the bottom of the shell (19), and the blocking plates (23) are slidably engaged in the side pillars (16); The center portion of the driving disk (8) is sunken, and the entire driving disk (8) is arranged in an inverted conical shape, and a plurality of debris removal pipes (13) are evenly distributed on the surface of the driving disk (8); The replacement assembly includes two groups of blocking blocks (22), each group including two symmetrically arranged blocking blocks (22), one end of each blocking block (22) being rotatably connected to the inner wall of the side support (16), and a torsion spring being connected between the blocking block (22) and the side support (16), wherein one group of blocking blocks (22) is located in the middle of the flow opening (14), and the other group of blocking blocks (22) is located above the flow opening (14).

2. The electronic cigarette oil impurity removal device according to claim 1, characterized in that: A counterweight plate (17) is slidably connected to the top of the inner side of the debris removal tube (13), an elastic spiral rope (18) is connected between the top of the counterweight plate (17) and the debris removal tube (13), and a plurality of extrusion pads (21) are fixed to the top of the outer shell (19).

3. The electronic cigarette oil impurity removal device according to claim 2, characterized in that: A filter screen (20) is fixedly connected to the top of the housing (19), and the filter element (25) is located below the filter screen (20). Two symmetrically arranged avoidance grooves (24) are provided on the outer side of the housing (19), and the avoidance grooves (24) are located above the blocking plate (23).

4. The electronic cigarette oil impurity removal device according to claim 3, characterized in that: A plurality of flow slots are provided on the outer side of the side pillar (16), and the plurality of flow slots are arranged at equal intervals. The thickness of the outer wall of the side pillar (16) increases sequentially from top to bottom.

5. The electronic cigarette oil impurity removal device according to claim 4, characterized in that: The drive assembly comprises two drive boxes (5) fixed to the outer surface of the degassing tank (1), a drive motor (10) is fixed inside the drive box (5), a gear (9) is fixed to the top of the drive motor (10), and a toothed ring (11) is fixed to the outer edge of the drive disc (8), and the toothed ring (11) is meshed with the two gears (9).

6. The electronic cigarette oil impurity removal device according to claim 5, characterized in that: The utility model also includes an electric telescopic rod (26), the end of which is fixedly connected to an electromagnet (27), the top of the impurity removal pipe (13) is made of a magnetizable metal material, the end of the electric telescopic rod (26) away from the electromagnet (27) is connected to a leather collar (28), the top of the impurity removal tank (1) is rotatably connected to an expansion cover (2), and the feeding pipe (3) is connected to the expansion cover (2).