Atomizer capable of sealing oil in rotating and sliding mode

The rotating sliding oil-sealing design solves the problem of children being able to easily open the atomizer's oil filling hole, achieving higher safety and leak-proof performance.

CN223503722UActive Publication Date: 2025-11-04SHENZHEN LOST VAPE TECHNOLOGY LTD
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Patent Information

Application Number
CN202422520439.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-18
Publication Date
2025-11-04
Estimated Expiration
2034-10-18

AI Technical Summary

Technical Problem

The existing atomizers have simple filling port connections that are easily opened by children, causing e-liquid to leak out and posing a safety hazard.

Method used

The design employs a rotary sliding oil sealing mechanism, which combines a rotary structure with a sliding structure to control the opening and closing of the oil injection hole, increasing the number of steps and the difficulty of operation.

Benefits of technology

It effectively prevents children from easily opening the filling hole, avoids e-liquid leakage, and improves the safety of the atomizer.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a rotary sliding oil seal atomizer which comprises an oil storage main body and an oil seal main body, the oil seal main body is provided with a rotary structure, a pin groove and a sliding structure, an oil storage cavity capable of storing tobacco tar is arranged in the oil storage main body, and the oil storage main body is provided with an elastic pin and an oil injection hole communicated with the oil storage cavity. The oil sealing body is arranged on the oil storage body to seal the oil injection hole, the elastic pin extends into the pin groove to enable the oil sealing body to be positioned on the oil storage body, the oil sealing body rotates anticlockwise on the oil storage body through the rotating structure, the pin groove can be separated from the elastic pin, and the oil sealing body can slide front and back on the oil storage body through the sliding structure. And the oil injection hole is controlled to be opened and closed. According to the atomizer, the oil filling hole can be opened only by rotating the oil sealing main body and then sliding the oil sealing main body, so that the opening steps and difficulty of the oil filling hole are enriched and improved, and the problems of oil leakage and potential safety hazards caused by oil leakage due to the fact that the oil filling hole is easily opened and tobacco tar in the oil storage cavity flows out of the oil filling hole are solved.
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Description

Technical Field

[0001] This utility model relates to the field of atomizer technology, specifically to a rotary sliding oil-sealing atomizer. Background Technology

[0002] Currently, most refillable atomizers use magnetic, flip-top, or threaded connections to seal the filling port. These three connection methods are easy to remove and require few steps. Magnetic connections allow for easy removal by simply pulling the cap, exposing the filling port; flip-top connections require pushing the cap upwards to open the port; and threaded connections require only counter-clockwise rotation. However, this exposure means that children playing with the atomizer without parental supervision can easily open the filling port, causing e-liquid to leak out and affecting the atomizer's normal operation. Furthermore, the e-liquid in the reservoir has a pleasant aroma, making it easy for children to accidentally ingest, posing a safety hazard. Utility Model Content

[0003] The purpose of this invention is to provide an atomizer with a rotating and sliding sealing mechanism. The filling hole can only be opened by rotating and then sliding the sealing body. This solves the problems of existing atomizers where the filling hole is easy to open and involves few steps, making it easy for children to open and causing e-liquid to flow out of the atomizer, thus affecting the normal use of the atomizer. In addition, the e-liquid in the reservoir has a fragrance and is easily ingested by children, posing a safety hazard.

[0004] The technical solution adopted by this utility model to solve the technical problem is: a rotary sliding sealing atomizer, including an oil storage body and an oil sealing body. The oil sealing body has a rotary structure, a pin groove, and a sliding structure. The oil storage body has an oil storage cavity for storing e-liquid. The oil storage body has a spring pin and an oil filling hole communicating with the oil storage cavity. The oil sealing body is disposed on the oil storage body to block the oil filling hole, and the spring pin extends into the pin groove to position the oil sealing body on the oil storage body. The oil sealing body rotates counterclockwise on the oil storage body through the rotary structure, which can separate the pin groove from the spring pin, and the oil sealing body can slide back and forth on the oil storage body through the sliding structure to control the opening and closing of the oil filling hole.

[0005] In one embodiment, the sealing body also has a limiting groove, which is connected to the pin groove. The sealing body rotates counterclockwise on the oil storage body through the rotating structure, and the spring pin can move from the pin groove into the limiting groove, thereby separating the pin groove from the spring pin.

[0006] In one embodiment, the limiting groove is strip-shaped, the pin groove is arc-shaped, and the bottom wall of the pin groove is provided with a positioning recess. The spring pin is ejected into the positioning recess through the top of the spring pin in the pin groove, so that the oil sealing body is positioned on the oil storage body.

[0007] In one embodiment, the sealing body slides back and forth on the oil storage body through the sliding structure, and the spring pin can also slide back and forth in the limiting groove. The bottom wall of the limiting groove has two limiting recesses, and each limiting recess is located on the sliding trajectory of the spring pin sliding back and forth in the limiting groove.

[0008] In one embodiment, the sliding structure includes a slider and a slide rail. The slide rail is disposed on the outer wall of the slider. A groove is formed on the oil storage body. The oil injection hole is formed on the bottom wall of the groove. The slider is embedded in the groove to block the oil injection hole. A rail groove corresponding to the slide rail is formed on the inner wall of the groove. The slide rail extends into the rail groove. The slider can slide back and forth in the groove by sliding the slide rail. The oil sealing body can slide back and forth on the oil storage body by sliding the slider back and forth in the groove. The spring pin can also slide back and forth in the limiting groove, thereby allowing the slider to control the opening and closing of the oil injection hole.

[0009] In one embodiment, the oil sealing body includes a cap, the pin groove and the limiting groove are formed at the bottom end of the cap, the slider is disposed at the bottom end of the cap, and the bottom end of the cap is also provided with a rotating shaft and a rotating rod. The slider has a shaft hole corresponding to the rotating shaft and a rotating hole corresponding to the rotating rod. The rotating shaft passes through the shaft hole, and the rotating rod passes through the rotating hole. The rotating shaft and the rotating rod, as well as the shaft hole and the rotating hole, constitute the rotating structure. The cap rotates in the shaft hole via the rotating shaft, and the rotating rod rotates in the rotating hole, so that the oil sealing body can rotate on the oil storage body.

[0010] In one embodiment, the oil storage body includes an oil storage pipe and an atomizing cover. The atomizing cover is disposed inside the oil storage pipe. The space between the outer wall of the atomizing cover and the inner wall of the oil storage pipe serves as the oil storage cavity. The top end of the oil storage pipe is provided with a sealing element for sealing the oil storage cavity. The top end of the sealing element has a groove, and one end of the groove extends to the edge of the sealing element. The oil injection hole penetrates the sealing element from the bottom wall of the groove, so that the oil injection hole communicates with the oil storage cavity. The slider slides forward from the edge of the sealing element into the groove to block the oil injection hole, and the cap is connected to the top end of the sealing element. The top end of the cap has a connecting channel penetrating the cap and the rotating shaft. A suction nozzle is inserted into the connecting channel, and a smoking channel communicating with the connecting channel is provided in the suction nozzle.

[0011] In one embodiment, the top of the sealing element is provided with a positioning hole, a spring is provided in the positioning hole, the lower end of the spring pin is inserted into the positioning hole and abuts against the spring, the upper end of the spring pin extends into the pin groove, the bottom wall of the slide groove is provided with a smoke exhaust channel communicating with the connecting channel, the atomizing hood is provided with an air guiding channel and a mist channel, the air guiding channel is communicating with the mist channel, the mist channel is communicating with the smoke exhaust channel, and the bottom end of the oil storage pipe is provided with a base for sealing the oil storage chamber.

[0012] In one embodiment, an atomizing core is provided in the mist channel, an oil inlet hole corresponding to the atomizing core is opened on the outer wall of the atomizing cover, an air inlet channel communicating with the air guide channel is opened on the outer wall of the sealing member, a first conductive member is provided at the bottom end of the base, a second conductive member is provided inside the first conductive member and isolated from the first conductive member, and the atomizing core is electrically connected to the first conductive member and the second conductive member.

[0013] The atomizer with rotary sliding sealing according to this utility model has the following beneficial effects: The atomizer with rotary sliding sealing according to this utility model can open the oil filling hole by first rotating and then sliding the sealing body, which enriches and increases the opening steps and difficulty of the oil filling hole, preventing the oil filling hole from being easily opened by children, causing the e-liquid in the oil storage chamber to flow out from the oil filling hole and causing oil leakage, as well as the safety hazards caused by oil leakage. Attached Figure Description

[0014] The present invention will now be described in detail with reference to the accompanying drawings, so that the above-mentioned advantages of the present invention become clearer. Among them,

[0015] Figure 1 This is an exploded view of the atomizer of this utility model;

[0016] Figure 2 This is a three-dimensional schematic diagram of the atomizer of this utility model;

[0017] Figure 3 This is a schematic diagram showing the separation of the oil sealing body and the oil storage body of the atomizer of this utility model;

[0018] Figure 4 This is a schematic diagram showing the separation of the oil sealing body and the oil storage body of the atomizer of this utility model;

[0019] Figure 5 This is a front sectional view of the atomizer of this utility model;

[0020] Figure 6 This is a side sectional view of the atomizer of this utility model;

[0021] Figure 7 This is a schematic diagram of the sealing structure of the atomizer of this utility model;

[0022] Figure 8 This is a schematic diagram of the sealing structure of the atomizer of this utility model. Detailed Implementation

[0023] The following detailed description of the embodiments of this utility model, in conjunction with the accompanying drawings, will provide a thorough understanding of how this utility model uses technical means to solve technical problems and achieve technical effects, enabling its implementation. It should be noted that, provided there is no conflict, the various embodiments and features within them can be combined with each other, and all resulting technical solutions are within the protection scope of this utility model.

[0024] It should be noted that the specification of this application contains a large number of technical features distributed across various technical solutions. Listing all possible combinations of technical features (i.e., technical solutions) would make the specification overly lengthy. To avoid this problem, the various technical features of the utility model in the above-described utility model content, the various technical features of the utility model in the various embodiments and examples below, and the various technical features of the utility model in the accompanying drawings can be freely combined to form various new technical solutions (all of which are considered to have been described in this specification), unless such a combination of technical features is technically infeasible. For example, in one example, feature A+B+C is described, and in another example, feature A+B+D+E is described. Features C and D are equivalent technical means that serve the same function, and technically only one needs to be used; they cannot be used simultaneously. Feature E can be technically combined with feature C. Therefore, the solution A+B+C+D should not be considered as described because it is technically infeasible, while the solution A+B+C+E should be considered as described.

[0025] In this utility model, the terms "upper", "lower", "top", "bottom", "inner", "outer", etc., are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing and understanding the technology of this utility model, and are not intended to limit the device or component to have a specific orientation or to be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0026] like Figure 1-8 As shown, this utility model provides a rotary sliding sealing atomizer, including an oil storage body 200 and an oil sealing body 100. The oil sealing body 100 has a rotary structure 120, a pin groove 201, and a sliding structure 110. The oil storage body 200 has an oil storage chamber 701 for storing e-liquid. The oil storage body 200 has a spring pin 4 and an oil filling hole 606 communicating with the oil storage chamber 701. The oil sealing body 100 is disposed on the oil storage body 200 to block the oil filling hole 606. The spring pin 4 extends into the pin groove 201 to position the oil sealing body 100 on the oil storage body 200. The oil sealing body 100 rotates counterclockwise on the oil storage body 200 through the rotary structure 120, which can separate the pin groove 201 from the spring pin 4. The oil sealing body 100 can slide back and forth on the oil storage body 200 through the sliding structure 110 to control the opening and closing of the oil filling hole 606. It should be noted that the oil filling hole 606 can only be opened by rotating and then sliding the sealing body 100. This enriches and increases the steps and difficulty of opening the oil filling hole 606, preventing children from easily opening the oil filling hole 606 and causing oil leakage from the oil storage chamber 701, as well as the safety hazards caused by oil leakage.

[0027] In some embodiments, the sealing body 100 also has a limiting groove 202, which is connected to the pin groove 201. The sealing body 100 rotates counterclockwise on the oil storage body 200 via the rotating structure 120, and the spring pin 4 can move from the pin groove 201 into the limiting groove 202, thereby separating the pin groove 201 from the spring pin 4. It should be noted that after the sealing body 100 rotates counterclockwise on the oil storage body 200 until the spring pin 4 moves into the limiting groove 202, the sealing body 100 can slide back and forth on the oil storage body 200 by pushing and pulling back and forth. At this time, the spring pin 4 also slides back and forth in the limiting groove 202. The limiting groove 202 controls the sliding distance and sliding trajectory of the sealing body 100.

[0028] In some embodiments, the limiting groove 202 is strip-shaped, the pin groove 201 is arc-shaped, and the bottom wall of the pin groove 201 is provided with a positioning recess 203. The spring pin 4 is ejected from the pin groove 201 through the top of the spring pin 4 into the positioning recess 203, so that the oil sealing body 100 is positioned on the oil storage body 200. The limiting groove 202 is strip-shaped, which allows the oil sealing body 100 to slide back and forth along the sliding trajectory of the limiting groove 202 on the oil storage body 200, and allows the oil sealing body 100 to slide back and forth a certain distance. The pin groove 201 is arc-shaped. When the spring pin 4 is inserted into the pin groove 201, the arc-shaped pin groove 201 limits the oil sealing body 100 to prevent it from sliding back and forth, thus preventing the oil filling hole 606 from being easily opened by pushing and pulling the oil sealing body 100 back and forth. When the top of the spring pin 4 is ejected into the positioning recess 203, an impact sound is emitted. At this time, it means that the oil sealing body 100 is positioned on the oil storage body 200 and cannot be moved by pushing and pulling the oil sealing body 100 back and forth.

[0029] In some embodiments, the sealing body 100 slides back and forth on the oil storage body 200 via the sliding structure 110, and the spring pin 4 can also slide back and forth within the limiting groove 202. Two limiting recesses 207 are provided on the bottom wall of the limiting groove 202, each limiting recess 207 located on the sliding trajectory of the spring pin 4 within the limiting groove 202. It should be noted that the two limiting recesses 207 are respectively provided at both ends of the limiting groove 202. When the sealing body 100 slides backward on the oil storage body 200 via the sliding structure 110, the spring pin 4 can slide from the front end to the rear end of the limiting groove 202. At this time, the top of the spring pin 4 can be ejected into the limiting recess 207 at the rear end of the limiting groove 202 and make an impact sound, indicating that the oil filling hole 606 is fully opened. When the sealing body 100 slides forward on the oil storage body 200 via the sliding structure 110... When in motion, the spring pin 4 can slide from the rear end of the limiting groove 202 to the front end. At this time, the top of the spring pin 4 can be ejected into the limiting recess 207 at the front end of the limiting groove 202 and make an impact sound, indicating that the oil filling hole 606 has been completely blocked by the oil sealing body 100. Then, rotate the oil sealing body 100 clockwise, and the spring pin 4 can move from the front end of the limiting groove 202 into the pin groove 201. The top of the spring pin 4 can be ejected into the positioning recess 203, so that the oil sealing body 100 is positioned on the oil storage body 200 and cannot be pushed back and forth.

[0030] In some embodiments, the sliding structure 110 includes a slider 3 and a slide rail 301. The slide rail 301 is disposed on the outer wall of the slider 3. A groove 604 is provided on the oil storage body 200. An oil injection hole 606 is provided on the bottom wall of the groove 604. The slider 3 is embedded in the groove 604 to block the oil injection hole 606. A rail groove 605 corresponding to the slide rail 301 is provided on the inner wall of the groove 604. The slide rail 301 extends into the rail groove 605. The slider 3 can slide back and forth in the groove 604 by sliding the slide rail 301 in the rail groove 605. The oil sealing body 100 can slide back and forth on the oil storage body 200 by sliding the slider 3 back and forth in the groove 604. The spring pin 4 can also slide back and forth in the limiting groove 202, thereby allowing the slider 3 to control the opening and closing of the oil injection hole 606. The slide groove 604 is used to accommodate the slider 3. After the slider 3 is embedded in the slide groove 604, it can abut against the bottom wall of the slide groove 604 to block the oil injection hole 606. The slide groove 604 and the slide rail 301 allow the slider 3 to slide back and forth in the slide groove 604, and the slider 3 will not be displaced or fall off from the slide groove 604 during the back and forth sliding process.

[0031] In some embodiments, the oil sealing body 100 includes a cover 2, a pin groove 201 and a limiting groove 202 formed at the bottom end of the cover 2, a slider 3 disposed at the bottom end of the cover 2, and a rotating shaft 204 and a rotating rod 205 also provided at the bottom end of the cover 2. The slider 3 is provided with a shaft hole 302 corresponding to the rotating shaft 204 and a rotating hole 303 corresponding to the rotating rod 205. The rotating shaft 204 is inserted into the shaft hole 302 and the rotating rod 205 is inserted into the rotating hole 303. The rotating shaft 204 and the rotating rod 205, as well as the shaft hole 302 and the rotating hole 303, constitute a rotating structure 120. The cover 2 rotates in the shaft hole 302 via the rotating shaft 204 and rotates in the rotating hole 303 via the rotating rod 205, so that the oil sealing body 100 can rotate on the oil storage body 200. It should be noted that after the slider 3 is embedded in the slide groove 604, it cannot rotate within the slide groove 604. The cover 2 can rotate on the oil storage body 200 through the rotating shaft 204 and the shaft hole 302. During the rotation, the rotating rod 205 can also rotate within the rotating hole 303. The rotating rod 205 is limited by the rotating hole 303, which allows the cover 2 to rotate 30 degrees clockwise and 30 degrees counterclockwise on the oil storage body 200. When the cover 2 rotates 30 degrees clockwise on the oil storage body 200, the spring pin 4 can move from the pin groove 201 to the limiting groove 202. Then, the cover 2 rotates 30 degrees counterclockwise on the oil storage body 200, and the spring pin 4 can move from the limiting groove 202 back to the pin groove 201 for positioning.

[0032] In some embodiments, the oil storage body 200 includes an oil storage pipe 7 and an atomizing cover 8. The atomizing cover 8 is disposed inside the oil storage pipe 7. The space between the outer wall of the atomizing cover 8 and the inner wall of the oil storage pipe 7 serves as an oil storage cavity 701. The top end of the oil storage pipe 7 is provided with a sealing member 6 for sealing the oil storage cavity 701. The top end of the sealing member 6 is provided with a sliding groove 604, and one end of the sliding groove 604 extends to the edge of the sealing member 6. The oil injection hole 606 penetrates the sealing member 6 from the bottom wall of the sliding groove 604, so that the oil injection hole 606 communicates with the oil storage cavity 701. The slider 3 slides forward from the edge of the sealing member 6 into the sliding groove 604 to block the oil injection hole 606, and the cap 2 is connected to the top end of the sealing member 6. The top end of the cap 2 is provided with a connecting channel 206 that penetrates the cap 2 and the rotating shaft 204. A suction nozzle 1 is inserted into the connecting channel 206. The suction nozzle 1 is provided with a smoking channel 101 that communicates with the connecting channel 206. The atomizing cover 8 is used to isolate the e-liquid in the oil storage chamber 701. One end of the groove 604 extends to the edge of the seal 6, allowing the slider 3 to be inserted into the groove 604 to block the oil filling hole 606. When the oil filling hole 606 is opened, e-liquid can be injected into the oil storage chamber 701 through the oil filling hole 606. The connecting channel 206 is used to connect the mouthpiece 1, which is used to hold in the mouth to smoke. The smoking channel 101 is used to draw the smoke generated by the atomizer atomizing the e-liquid into the mouth.

[0033] In some embodiments, the top of the sealing member 6 is also provided with a positioning hole 603, a spring 5 is provided in the positioning hole 603, the lower end of the spring pin 4 is inserted into the positioning hole 603 and abuts against the spring 5, the upper end of the spring pin 4 extends into the pin groove 201, the bottom wall of the slide groove 604 is also provided with a smoke exhaust channel 601 communicating with the connecting channel 206, the atomizing cover 8 is provided with an air guide channel 802 and a mist channel 801, the air guide channel 802 communicates with the mist channel 801, the mist channel 801 communicates with the smoke exhaust channel 601, and the bottom end of the oil storage pipe 7 is provided with a base 10 for sealing the oil storage chamber 701. The positioning hole 603 is used to accommodate the spring 5 and the positioning pin 4. The pin 4 can be ejected by the elastic force of the spring 5, and the top of the pin 4 can be ejected into the positioning recess 203 and each limiting recess 207 and make an impact sound. The air guide channel 802 is used to introduce airflow, the mist channel 801 is used to pass airflow and exhaust smoke, and the smoke exhaust channel 601 is used to exhaust the smoke in the mist channel 801 from the connecting channel 206 and the smoking channel 101 to the atomizer for the user to inhale.

[0034] In some embodiments, an atomizing core 9 is provided in the mist channel 801, an oil inlet hole 803 corresponding to the atomizing core 9 is opened on the outer wall of the atomizing cover 8, an air inlet channel 602 communicating with the air guide channel 802 is opened on the outer wall of the sealing member 6, a first conductive member 1001 is provided at the bottom end of the base 10, a second conductive member 10 isolated from the first conductive member 1001 is provided in the first conductive member 1001, and the atomizing core 9 is electrically connected to the first conductive member 1001 and the second conductive member 10. The atomizing core 9 is used to atomize the e-liquid in the oil storage chamber 701 and generate smoke. The oil inlet 803 is used to guide the e-liquid in the oil storage chamber 701 into the atomizing core 9 for atomization. When smoking, the external airflow can enter the air guide channel 802 from the air intake channel 602, and then enter the mist channel 801 through the air guide channel 802. This causes the smoke generated by the atomizing core 9 to atomize the e-liquid to pass through the connecting channel 206 and the smoking channel 101 and be discharged from the atomizer. The first conductive element 1001 and the second conductive element 10 are used to electrically connect to the power supply equipment, and then power is supplied to the atomizing core 9 to make it heat up and atomize the e-liquid.

[0035] The following detailed description uses preferred embodiments.

[0036] like Figure 1-8As shown, the atomizer of this utility model includes: an oil-sealing body 100 and an oil-reservoir body 200. The oil-sealing body 100 includes: a mouthpiece 1, a cap 2, and a slider 3. The slider 3 is installed at the bottom end of the cap 2. The bottom end of the cap 2 is provided with a rotating shaft 204 and a rotating rod 205 to enable the oil-sealing body 100 to rotate on the oil-reservoir body 200. The slider 3 has a shaft hole 302 corresponding to the rotating shaft 204 and a rotating hole 3 corresponding to the rotating rod 205. 03 is also used to enable the sealing body 100 to rotate on the oil storage body 200. The rotating shaft 204 is inserted into the shaft hole 302, and the rotating rod 205 is inserted into the rotating hole 303. The cover 2 can rotate through the rotating shaft 204 and the shaft hole 302, as well as the rotating rod 205 and the rotating hole 303, thereby enabling the sealing body 100 to rotate on the oil storage body 200. The rotating rod 205 is limited by the rotating hole 303, allowing the sealing body 100 to rotate clockwise and counterclockwise. Each component can rotate 30 degrees. The outer wall of the slider 3 is provided with a slide rail 301 for the sealing body 100 to slide back and forth on the oil storage body 200. The bottom end of the cover 2 is also provided with a connecting pin groove 201 and a limiting groove 202. The pin groove 201 is used to position the sealing body 100 on the oil storage body 200, and the limiting groove 202 is used to limit the sliding distance of the sealing body 100 on the oil storage body 200. The bottom wall of the pin groove 201 is provided with a positioning recess 203, and each end of the bottom wall of the limiting groove 202 is provided with a limiting recess 207. The top of the cover 2 is provided with a connecting channel 206 that passes through the cover 2 and the rotating shaft 204 for connecting the mouthpiece 1. The mouthpiece 1 is inserted into the connecting channel 206 for smoking in the mouth. The mouthpiece 1 is provided with a smoking channel 101 that is connected to the connecting channel 206 for inhaling the smoke generated by the atomizer atomizing e-liquid into the mouth. All components are combined together to form the sealing body 100.

[0037] The oil storage body 200 includes: a spring pin 4, a spring 5, a seal 6, an oil storage tube 7, an atomizing cover 8, an atomizing core 9, a base 10, and a second conductive component 10. The atomizing cover 8 is installed inside the oil storage tube 7 to isolate the e-liquid. The space between the outer wall of the atomizing cover 8 and the inner wall of the oil storage tube 7 forms an oil storage cavity 701 for storing e-liquid. The atomizing cover 8 has an airflow channel 802 for introducing airflow, and a mist channel 801 communicating with the airflow channel 802 for airflow passage and smoke exhaust. The atomizing core 9 is installed inside the mist channel 801 for... The atomizing chamber 701 contains e-liquid and generates vapor. The outer wall of the atomizing cover 8 has an inlet hole 803 corresponding to the atomizing core 9 to guide the e-liquid from the chamber 701 into the atomizing core 9. A sealing element 6 is installed at the top of the oil storage tube 7 to seal the oil storage chamber 701. The outer wall of the sealing element 6 has an air intake channel 602 communicating with the air guide channel 802 to allow external airflow into the air guide channel 802. A base 10 is installed at the bottom of the oil storage tube 7 and also seals the oil storage chamber 701. The bottom of the base 10 has a hollow first conductive element 10. 01 is used for conductive connection of the atomizing core 9. The second conductive element 10 is inserted into the first conductive element 1001 and is also used for conductive connection of the atomizing core 9. The atomizing core 9 is electrically connected to the first conductive element 1001 and the second conductive element 10. The top of the sealing element 6 has a groove 604 for accommodating the slider 3, and one end of the groove 604 extends to the edge of the sealing element 6 to facilitate the insertion of the slider 3. The inner wall of the groove 604 has a rail groove 605 for matching the rail 301 on the slider 3. The bottom wall of the groove 604 has an oil filling hole 606 that penetrates the sealing element 6. Furthermore, the oil injection hole 606 is connected to the oil storage cavity 701 for injecting e-liquid into the oil storage cavity 701. The top of the sealing component 6 is also provided with a positioning hole 603 for accommodating the spring 5 and the positioning pin 4. The spring 5 is installed in the positioning hole 603 to provide elastic force to the pin 4. The lower end of the pin 4 is inserted into the positioning hole 603 and abuts against the spring 5 to deform the spring 5 and generate elastic force. The bottom wall of the slide 604 is also provided with a smoke exhaust channel 601 that is connected to the mist channel for exhausting smoke. All components are combined together to form the oil storage body 200.

[0038] The oil sealing body 100 is connected to the top of the oil storage body 200 by the slider 3 embedded in the slide groove 604, and the slide rail 301 extends into the rail groove 605. The slider 3 abuts against the bottom wall of the slide groove 604 to block the oil injection hole 606. The cover 2 covers the top of the sealing element 6. The connecting channel 206 corresponds to and communicates with the smoke exhaust channel 601. The upper end of the spring pin 4 extends into the pin groove 201, and the spring pin 4 is launched to the positioning recess 203 by the elastic force of the spring 5 to position the oil sealing body 100 on the oil storage body 200. After the spring pin 4 extends into the pin groove 201, the arc-shaped pin groove 201 limits the oil sealing body 100 so that it cannot slide back and forth.

[0039] The cover 2 can rotate on the seal 6 via the rotating shaft 204 and shaft hole 302. During rotation, the rotating rod 205 can also rotate within the rotating hole 303. The rotating rod 205, limited by the rotating hole 303, allows the cover 2 to rotate 30 degrees clockwise and 30 degrees counterclockwise on the seal 6. When the cover 2 rotates 30 degrees clockwise on the seal 6, the spring pin 4 can move from the pin groove 201 to the limiting groove 202. At this time, by pushing and pulling the cover 2 back and forth at the top of the seal 6, the slider 3 can slide back and forth in the slide groove 604 via the slide rail 301 and rail groove 605. At the same time, the spring pin 4 also slides back and forth in the limiting groove 202. When the slider 3 slides backward in the slide groove 604, the spring pin 4 can slide from the front end to the rear end of the limiting groove 202. The elastic force of the spring 5 can release the spring pin 4. After the top of pin 4 is ejected into the limiting recess 207 at the rear end of the limiting groove 202 and makes an impact sound, the oil filling hole 606 is exposed on the bottom wall of the slide groove 604. When the slider 3 slides forward in the slide groove 604, the spring pin 4 can slide from the rear end of the limiting groove 202 to the front end. The elastic force of the spring 5 can eject the top of the spring pin 4 into the limiting recess 207 at the front end of the limiting groove 202 and make an impact sound. The oil filling hole 606 is blocked again by the slider 3. Then, the cap 2 is rotated counterclockwise 30 degrees at the top of the sealing element 6. The spring pin 4 can move from the limiting groove 202 to the pin groove 201 again. The cap 2 is limited by the arc-shaped pin groove 201, which can prevent the cap 2 from sliding back and forth, thereby preventing the cap 2 from easily opening the oil filling hole 606 and causing oil leakage by pushing and pulling the cap 2 back and forth.

[0040] Finally, it should be noted that the above are merely preferred embodiments of this utility model and are not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A rotary sliding oil-sealing atomizer, characterized in that, The device includes an oil storage body and an oil sealing body. The oil sealing body has a rotating structure, a pin groove, and a sliding structure. The oil storage body has an oil storage cavity for storing e-liquid. The oil storage body has a spring pin and an oil filling hole communicating with the oil storage cavity. The oil sealing body is disposed on the oil storage body to block the oil filling hole. The spring pin extends into the pin groove to position the oil sealing body on the oil storage body. The oil sealing body can rotate counterclockwise on the oil storage body through the rotating structure, which can separate the pin groove from the spring pin. The oil sealing body can also slide back and forth on the oil storage body through the sliding structure to control the opening and closing of the oil filling hole.

2. The atomizer according to claim 1, characterized in that, The sealing body also has a limiting groove, which is connected to the pin groove. The sealing body rotates counterclockwise on the oil storage body through the rotating structure, and the spring pin can move from the pin groove to the limiting groove, thereby separating the pin groove from the spring pin.

3. The atomizer according to claim 2, characterized in that, The limiting groove is strip-shaped, the pin groove is arc-shaped, and the bottom wall of the pin groove is provided with a positioning recess. The spring pin is ejected into the positioning recess through the top of the spring pin in the pin groove, so that the oil sealing body is positioned on the oil storage body.

4. The atomizer according to claim 2 or 3, characterized in that, The oil sealing body slides back and forth on the oil storage body through the sliding structure, and the spring pin can also slide back and forth in the limiting groove. The bottom wall of the limiting groove has two limiting recesses, and each limiting recess is located on the sliding trajectory of the spring pin sliding back and forth in the limiting groove.

5. The atomizer according to claim 4, characterized in that, The sliding structure includes a slider and a slide rail. The slide rail is disposed on the outer wall of the slider. A groove is formed on the oil storage body. The oil injection hole is formed on the bottom wall of the groove. The slider is embedded in the groove to block the oil injection hole. A rail groove corresponding to the slide rail is formed on the inner wall of the groove. The slide rail extends into the rail groove. The slider can slide back and forth in the groove by sliding the slide rail. The oil sealing body can slide back and forth on the oil storage body by sliding the slider back and forth in the groove. The pin head can also slide back and forth in the limiting groove with the spring pin, thereby allowing the slider to control the opening and closing of the oil injection hole.

6. The atomizer according to claim 5, characterized in that, The sealing body includes a cap, the pin groove and the limiting groove are formed at the bottom end of the cap, the slider is provided at the bottom end of the cap, the bottom end of the cap is also provided with a rotating shaft and a rotating rod, the slider is provided with a shaft hole corresponding to the rotating shaft and a rotating hole corresponding to the rotating rod, the rotating shaft is inserted into the shaft hole and the rotating rod is inserted into the rotating hole, the rotating shaft and the rotating rod, as well as the shaft hole and the rotating hole constitute the rotating structure, the cap rotates in the shaft hole via the rotating shaft and the rotating rod rotates in the rotating hole, so that the sealing body can rotate on the oil storage body.

7. The atomizer according to claim 6, characterized in that, The oil storage body includes an oil storage pipe and an atomizing cover. The atomizing cover is disposed inside the oil storage pipe. The space between the outer wall of the atomizing cover and the inner wall of the oil storage pipe serves as the oil storage cavity. The top end of the oil storage pipe is provided with a sealing element for sealing the oil storage cavity. The top end of the sealing element has a groove, and one end of the groove extends to the edge of the sealing element. The oil injection hole penetrates the sealing element from the bottom wall of the groove, so that the oil injection hole communicates with the oil storage cavity. The slider slides forward from the edge of the sealing element into the groove to block the oil injection hole, and the cap is connected to the top end of the sealing element. The top end of the cap has a connecting channel penetrating the cap and the rotating shaft. A suction nozzle is inserted into the connecting channel, and a smoking channel communicating with the connecting channel is provided in the suction nozzle.

8. The atomizer according to claim 7, characterized in that, The top of the sealing element is also provided with a positioning hole, and a spring is provided in the positioning hole. The lower end of the spring pin is inserted into the positioning hole and abuts against the spring. The upper end of the spring pin extends into the pin groove. The bottom wall of the slide groove is also provided with a smoke exhaust channel communicating with the connecting channel. The atomizing hood is provided with an air guiding channel and a mist channel. The air guiding channel communicates with the mist channel and the mist channel communicates with the smoke exhaust channel. The bottom end of the oil storage pipe is provided with a base for sealing the oil storage chamber.

9. The atomizer according to claim 8, characterized in that, The mist channel is provided with an atomizing core, the outer wall of the atomizing cover is provided with an oil inlet hole corresponding to the atomizing core, the outer wall of the sealing element is provided with an air inlet channel communicating with the air guide channel, the bottom end of the base is provided with a first conductive element, the first conductive element is provided with a second conductive element isolated from the first conductive element, and the atomizing core is electrically connected to the first conductive element and the second conductive element.