Atomizer capable of balancing supply and demand of tobacco tar
By designing oil conductor holes of specific shapes and sizes in the atomizer and setting up parallel heating parts, the problems of unbalanced supply and demand of e-liquid and failure of heating parts are solved, and efficient utilization of e-liquid and sufficient smoke generation are achieved.
Patent Information
- Application Number
- CN202421920395.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-09
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-08-09
AI Technical Summary
In the existing atomizer, the supply and consumption of e-liquid oil are unbalanced, resulting in oil dropping or dry-burning by the heating element. The utilization rate of e-liquid oil is low, the heat generation of the heating element is small, resulting in less smoke, poor taste saturation, and the heating element cannot continue to use after the failure.
A atomizer with balanced supply and demand of e-liquid is designed, and multiple oil conductor holes are used to connect to the bottom wall of the oil storage cavity. The shape and size of the oil conductor holes are specific to ensure that the e-liquid is fully introduced into the oil suction piece, and two heating parts connected in parallel are provided to ensure that the e-liquid is completely heated.
The balance between supply and demand of e-liquid is achieved, prevents oil drops or dry burns from the oil-absorbing parts, improves the utilization rate of e-liquid, increases the amount of smoke and taste saturation, and can continue to be used when the heating parts fail.
Smart Images

Figure CN223025457U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of atomizers, in particular to an atomizer with balanced supply and demand of e-liquid. Background Art
[0002] At present, for the existing atomizers, the shape and size of the oil guiding holes are constant. Therefore, the amount of e-liquid entering the oil absorbing member through the oil guiding holes is also constant. When the resistance value of the heating element in the oil absorbing member is too large, the heat generated by the heating element is insufficient to completely atomize the e-liquid in the oil absorbing member, resulting in dripping of the oil absorbing member. When the resistance value of the heating element in the oil absorbing member is small, the heat generated by the heating element is greater than the amount of e-liquid in the oil absorbing member, causing the oil absorbing member to be dry burned by the heating element. Moreover, in the existing atomizers, the positions of the oil guiding holes are higher than the bottom wall of the oil storage cavity. When the amount of e-liquid in the oil storage cavity is too small, the remaining e-liquid cannot enter the oil absorbing member through the oil guiding holes to be heated and atomized by the heating element, resulting in waste of e-liquid and low utilization rate of e-liquid. In addition, in the existing atomizers, there is only one heating element in the oil absorbing member with a small heat output, resulting in a small amount of smoke generated by heating and poor taste saturation. Moreover, when the heating element fails, there is no alternative heating element to generate heat, resulting in the atomizer being unable to continue to be used. Summary of the Utility Model
[0003] The purpose of the utility model is to provide an atomizer with balanced supply and demand of e-liquid, which solves the problems in the existing atomizers that the imbalance between e-liquid supply and consumption leads to dripping of the oil absorbing member or dry burning of the oil absorbing member by the heating element, the e-liquid in the oil storage cavity cannot be completely consumed, resulting in low utilization rate of e-liquid, and the small heat output of the heating element leads to a small amount of smoke and poor taste saturation, and the heating element fails and cannot continue to heat.
[0004] The technical solution adopted by the utility model to solve the technical problems is: an atomizer with balanced supply and demand of e-liquid, including an atomizer body. The atomizer body has an oil storage cavity for storing e-liquid and an atomization channel formed in the oil storage cavity. An oil absorbing member is arranged in the atomization channel. A plurality of oil guiding holes for guiding the e-liquid in the oil storage cavity into the oil absorbing member are arranged on the channel wall of the atomization channel. Two heating elements connected in parallel are arranged in the oil absorbing member for heating the e-liquid in the oil absorbing member. The oil guiding holes are connected to the bottom wall of the oil storage cavity. The shape and size of the oil guiding holes are set so that the amount of e-liquid entering the oil absorbing member can be completely heated into smoke by each heating of the two heating elements.
[0005] As an implementation manner, the outer shape of the oil guiding hole is oval, the long aperture of the oil guiding hole is 3.5±0.5mm, and the short aperture of the oil guiding hole is 2.8±0.5mm.
[0006] As an implementation manner, the oil absorbing member is made of one of cotton material, glass fiber material, ceramic material, and porous quartz material.
[0007] As an implementation manner, each of the heating elements is in an arc shape, and each of the heating elements is made of nickel material or iron-chromium-aluminum alloy material. A plurality of heat conduction holes are formed in each of the heating elements.
[0008] As an implementation manner, a mist discharging channel communicating with the atomization channel and a mist outlet channel communicating with the mist discharging channel are further formed in the oil storage cavity. An oil blocking ring abutting against the bottom end of the oil absorbing member is further arranged in the atomization channel.
[0009] As an implementation manner, the atomizer body includes an oil storage chamber body. A mist outlet is formed at the top end of the oil storage chamber body. The oil storage chamber body protrudes into the oil storage chamber from the mist outlet to form a mist outlet pipe. A mist outlet channel is formed in the mist outlet pipe. The mist outlet is communicated with the mist outlet channel.
[0010] As an implementation manner, the atomizer body further includes an atomization pipe and a mist discharging pipe. The atomization pipe and the mist discharging pipe are arranged in the oil storage chamber body. The upper end of the atomization pipe is connected to the lower end of the mist discharging pipe. The upper end of the mist discharging pipe is connected to the lower end of the mist outlet pipe. The spaces between the outer wall of the atomization pipe and the outer wall of the mist discharging pipe, and between the outer wall of the mist outlet pipe and the inner wall of the oil storage chamber body serve as the oil storage cavity. The atomization channel is formed in the atomization pipe. The mist discharging channel is formed in the mist discharging pipe. The oil absorbing member and an oil blocking ring abutting against the bottom end of the oil absorbing member are arranged in the atomization pipe.
[0011] As an implementation manner, an oil sealing member serving as the bottom wall of the oil storage cavity is further arranged in the oil storage chamber body. A connection channel is formed at the top end of the oil sealing member. The lower end of the atomization pipe is inserted into the connection channel. The pipe wall of the atomization pipe serves as the channel wall of the atomization channel. Oil guiding holes corresponding to the oil absorbing member are formed in the pipe wall of the atomization pipe, and the oil guiding holes are connected to the top end of the oil sealing member.
[0012] As an implementation manner, a base is arranged in the opening at the bottom end of the oil storage chamber body. The base abuts against the bottom end of the oil sealing member. A through channel communicating with the atomization channel is formed in the oil absorbing member. Each of the heating elements is arranged in the through channel and abuts against the inner wall of the through channel. A first wire is connected to one end of each of the heating elements, and a second wire and a third wire are respectively connected to the other end of each of the heating elements.
[0013] As an implementation manner, a plurality of air inlet holes communicating with the atomization channel are formed at the bottom end of the base. The lower ends of the first wire, the second wire, and the third wire extend into the base. A first electrode electrically connected to the first wire, a second electrode electrically connected to the second wire, and a third electrode electrically connected to the third wire are provided at the bottom end of the base.
[0014] Implementing the atomizer with balanced supply and demand of e-liquid of the present invention has the following beneficial effects: The atomizer with balanced supply and demand of e-liquid of the present invention can balance the supply amount and consumption amount of e-liquid by designing the oil guiding hole into a specific shape and size, preventing the oil absorbing member from dripping oil or the oil absorbing member from being dry burned by the heating member due to excessive or insufficient oil supply. Since the oil guiding hole is connected to the bottom wall of the oil storage cavity, all the e-liquid in the oil storage cavity can be introduced into the oil absorbing member through the oil guiding hole and heated into smoke, thereby improving the utilization rate of e-liquid. By providing two heating members connected in parallel to generate heat together, not only the amount of smoke generated by heating the e-liquid is large and the taste saturation is strong, but also when one of the heating members fails, the other heating member can still continue to generate heat to heat the e-liquid. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The present invention will be described in detail below with reference to the drawings to make the above advantages of the present invention more clear. Among them,
[0016] Figure 1 is an exploded view of the atomizer of the present invention;
[0017] Figure 2 is a three-dimensional schematic diagram of the atomizer of the present invention;
[0018] Figure 3 is a cross-sectional schematic diagram of the atomizer of the present invention;
[0019] Figure 4 is a schematic diagram of the structure of the heating member of the atomizer of the present invention;
[0020] Figure 5 is a size diagram of the oil guiding hole of the atomizer of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0021] The following will describe in detail the embodiments of the present invention with reference to the drawings and embodiments, so as to fully understand how the present invention uses technical means to solve technical problems and achieve the implementation process of technical effects. It should be noted that as long as there is no conflict, the various embodiments in the present invention and the various features in each embodiment can be combined with each other, and the formed technical solutions are all within the protection scope of the present invention.
[0022] It should be noted that a large number of technical features are recorded in the specification of this application, distributed in various technical solutions. If all possible combinations of technical features (i.e., technical solutions) of this application were to be listed, the specification would become overly lengthy. To avoid this problem, each of the technical features disclosed in the above-mentioned utility model content of this application, each of the technical features disclosed in the following various embodiments and examples, and each of the technical features disclosed in the drawings can be freely combined with each other to form various new technical solutions (all of these technical solutions are deemed to have been recorded in this specification), unless the combination of such technical features is technically infeasible. For example, in one example, features A+B+C are disclosed, and in another example, features A+B+D+E are disclosed. Features C and D are equivalent technical means that perform the same function, and only one of them can be used technically and they cannot be used simultaneously. Feature E can be combined with feature C technically. Then, the solution of A+B+C+D should not be deemed to have been recorded because it is technically infeasible, while the solution of A+B+C+E should be deemed to have been recorded.
[0023] As Figures 1-5 shown, the present utility model provides an atomizer with balanced supply and demand of e-liquid, which includes an atomizer body 12. The atomizer body 12 has an oil storage cavity 104 for storing e-liquid, and an atomization channel 601 formed in the oil storage cavity 104. An oil absorption member 3 is provided in the atomization channel 601. A plurality of oil guiding holes 602 for guiding the e-liquid in the oil storage cavity 104 into the oil absorption member 3 are provided on the channel wall of the atomization channel 601. The oil absorption member 3 has two heating elements 4 connected in parallel to heat the e-liquid in the oil absorption member 3. The oil guiding hole 602 is connected to the bottom wall of the oil storage cavity 104. The shape and size of the oil guiding hole 602 are set such that the amount of e-liquid entering the oil absorption member 3 can be completely heated into smoke by the two heating elements 4 each time they heat.
[0024] It should be noted that by designing the oil guiding hole 602 into a specific shape and size, the supply and consumption of e-liquid can be balanced, preventing the oil absorption member 3 from dripping oil or the oil absorption member 3 from being dry burned by the heating element 4 due to excessive or insufficient oil supply. By connecting the oil guiding hole 602 to the bottom wall of the oil storage cavity 104, all the e-liquid in the oil storage cavity 104 can be guided into the oil absorption member 3 through the oil guiding hole 602 and heated into smoke, thereby improving the utilization rate of e-liquid. By providing two heating elements 4 connected in parallel to heat together, not only is the amount of smoke generated by heating the e-liquid large and the taste saturation strong, but also when one of the heating elements 4 fails, the other heating element 4 can still continue to heat the e-liquid.
[0025] Among them, the number of the oil guiding holes 602 in this embodiment is preferably four, which can make the oil guiding more rapid and the amount of oil guided more sufficient.
[0026] In some embodiments, the outer shape of the oil guiding hole 602 is oval. The long aperture diameter d1 of the oil guiding hole 602 is 3.5 ± 0.5 mm, and the short aperture diameter d2 of the oil guiding hole 602 is 2.8 ± 0.5 mm. Among them, since the outer shape of the oil guiding hole 602 is oval and the oil absorbing member 3 is vertically arranged in the atomization channel 601, the e-liquid in the oil storage cavity 104 can be simultaneously introduced into the upper, middle, and lower sections of the oil absorbing member 3, so that the e-liquid is evenly introduced into the oil absorbing member 3. Among them, in this embodiment, the long aperture diameter d1 of the oil guiding hole 602 is preferably 3.5 mm at best. The long aperture diameter d1 of the oil guiding hole 602 can also be 3.0 mm, 3.1 mm, 3.2 mm, 3.3 mm, 3.4 mm, 3.6 mm, 3.7 mm, 3.8 mm, 3.9 mm, 4.0 mm. In this embodiment, the short aperture diameter d2 of the oil guiding hole 602 is preferably 2.8 mm at best. The long aperture diameter d1 of the oil guiding hole 602 can also be 2.3 mm, 2.4 mm, 2.5 mm, 2.6 mm, 2.7 mm, 2.9 mm, 3.0 mm, 3.1 mm, 3.2 mm, 3.3 mm.
[0027] In some embodiments, the oil absorbing member 3 is made of one of cotton material, glass fiber material, ceramic material, and porous quartz material. In this embodiment, the oil absorbing member 3 preferably uses cotton material, which has a fluffy texture, fast oil absorption, large oil absorption capacity, good oil locking effect, air permeability, and environmental protection.
[0028] In some embodiments, each heating element 4 is in an arc shape. Each heating element 4 is made of nickel material or iron-chromium-aluminum alloy material respectively. A plurality of heat conduction holes 401 are formed on each heating element 4. Among them, each heating element 4 in an arc shape has good stability and will not deform under the extrusion of the oil absorbing member 3. Moreover, the contact surface with the oil absorbing member 3 is wide, and the heating and heat reception are more uniform. In this embodiment, the material of each heating element 4 is preferably iron-chromium-aluminum alloy material, which has stable heating, high temperature resistance, high surface load resistance, good oxidation resistance, low price, and long service life. Among them, each heat conduction hole 401 serves as a heat conduction medium and can conduct the heat generated by the heating element 4 to various parts of the oil absorbing member 3.
[0029] In some embodiments, a mist discharging channel 201 communicating with the atomization channel 601 is further formed in the oil storage cavity 104, and a mist outlet channel 103 communicating with the mist discharging channel 201. A oil blocking ring 5 abutting against the bottom end of the oil absorbing member 3 is further arranged in the atomization channel 601. Among them, the mist generated by the heating element 4 heating the e-liquid in the oil absorbing member 3 can be discharged from the atomization channel 601 into the mist discharging channel 201, and then discharged from the atomization device main body 12 through the mist outlet channel 103. The oil blocking ring 5 is used to prevent oil droplets from being generated at the bottom end of the oil absorbing member 3 under the action of gravity after the oil absorbing member 3 absorbs the e-liquid.
[0030] In some embodiments, the atomizer body 12 includes an oil storage chamber body 1. An aerosol outlet 101 is formed at the top end of the oil storage chamber body 1. An aerosol tube 102 protrudes into the oil storage chamber body 1 from the aerosol outlet 101. An aerosol passage 103 is formed inside the aerosol tube 102. The aerosol outlet 101 is in communication with the aerosol passage 103. It should be noted that after the aerosol enters the exhaust aerosol passage 201, it is discharged from the aerosol outlet 101 out of the atomizer body 12 for the user to inhale. The aerosol tube 102 is used to connect to the upper end of the following exhaust tube 2, so that the exhaust aerosol passage 201 is in communication with the aerosol passage 103.
[0031] In some embodiments, the atomizer body 12 further includes an atomization tube 6 and an exhaust tube 2. The atomization tube 6 and the exhaust tube 2 are arranged inside the oil storage chamber body 1. The upper end of the atomization tube 6 is connected to the lower end of the exhaust tube 2. The upper end of the exhaust tube 2 is connected to the lower end of the aerosol tube 102. The spaces between the outer walls of the atomization tube 6 and the exhaust tube 2, and between the outer wall of the aerosol tube 102 and the inner wall of the oil storage chamber body 1 serve as an oil storage cavity 104. An atomization passage 601 is formed inside the atomization tube 6. An exhaust aerosol passage 201 is formed inside the exhaust tube 2. An oil absorption member 3 and an oil blocking ring 5 that abuts against the bottom end of the oil absorption member 3 are provided inside the atomization tube 6. Among them, both the atomization tube 6 and the exhaust tube 2 are made of stainless steel material, resistant to corrosion by tobacco oil and the high temperature generated by the heating element 4, and have fast heat absorption and can quickly cool the aerosol to prevent the aerosol from being too hot and causing discomfort to the oral cavity. Among them, the oil storage chamber body 1 and the aerosol tube 102 are integrally formed by plastic material in the mold, without the need for mutual assembly, and are resistant to corrosion by tobacco oil.
[0032] In some embodiments, an oil sealing member 7 serving as the bottom wall of the oil storage cavity 104 is further provided inside the oil storage chamber body 1. A connection passage 701 is formed at the top end of the oil sealing member 7. The lower end of the atomization tube 6 is inserted into the connection passage 701. The tube wall of the atomization tube 6 serves as the passage wall of the atomization passage 601. An oil guiding hole 602 corresponding to the oil absorption member 3 is formed on the tube wall of the atomization tube 6, and the oil guiding hole 602 is connected to the top end of the oil sealing member 7. Among them, the oil sealing member 7 is used to seal the oil storage cavity 104. The oil sealing member 7 is made of silica gel material, with a soft texture for easy assembly, and a large deformation coefficient for good sealing effect of the oil storage cavity 104. The connection passage 701 is used to connect and position the lower end of the atomization tube 6. Among them, the oil guiding hole 602 is connected to the top end of the oil sealing member 7. When the amount of tobacco oil in the oil storage cavity 104 is too small, the remaining tobacco oil can enter the oil absorption member 3 from the oil guiding hole 602 and be heated into aerosol by the heating element 4, thereby improving the utilization rate of tobacco oil.
[0033] In some embodiments, a base 8 is provided inside the bottom opening of the oil storage chamber body 1. The base 8 abuts against the bottom end of the oil sealing member 7. The oil absorption member 3 has a through-channel 301 communicating with the atomization channel 601. Each heating element 4 is disposed in the through-channel 301 and abuts against the inner wall of the through-channel 301. One end of each heating element 4 is connected to a first wire 402, and the other end of each heating element 4 is respectively connected to a second wire 403 and a third wire 404. Among them, the base 8 is used to block the bottom opening of the oil storage chamber body 1 and at the same time is used to support and position the oil sealing member 7 to prevent the oil sealing member 7 from shifting and causing oil leakage. The through-channel 301 is used to accommodate each heating element 4 and at the same time is used for air flow and smoke discharge. Each heating element 4 abutting against the inner wall of the through-channel 301 is used to prevent the oil absorption member 3 from collapsing after absorbing oil, resulting in the through-channel 301 being blocked. The first wire 402 conducts electricity as the positive electrode of the two heating elements 4 to connect each heating element 4, and at the same time is used to connect the two heating elements 4 in parallel. The second wire 403 and the third wire 404 respectively conduct electricity as the negative electrode of each heating element 4 to connect the corresponding heating element 4.
[0034] In some embodiments, a plurality of air inlet holes 801 communicating with the atomization channel 601 are formed at the bottom end of the base 8. The lower ends of the first wire 402, the second wire 403, and the third wire 404 extend into the base 8. A first electrode 9 electrically connected to the first wire 402, a second electrode 10 electrically connected to the second wire 403, and a third electrode 11 electrically connected to the third wire 404 are provided at the bottom end of the base 8. Among them, the air inlet holes 801 are used for air intake and guiding the air flow into the atomization channel 601 to drive the smoke to flow. The power supply device is electrically connected to the first electrode 9 through the first wire 402, the second wire 403 to the second electrode 10, and the third wire 404 to the third electrode 11 to conduct electricity to each heating element 4 to make it heat up.
[0035] The following is a detailed description through preferred embodiments.
[0036] As Figures 1-5As shown in the figure, the atomizer of the present utility model includes: an atomizer body 12, and the atomizer body 12 includes: an oil storage chamber body 1, a mist discharge pipe 2, an oil absorption member 3, a heating member 4, an oil blocking ring 5, an atomization pipe 6, an oil sealing member 7, a base 8, a first electrode 9, a second electrode 10, and a third electrode 11. Among them, an atomization channel 601 is formed in the atomization pipe 6 for accommodating the oil absorption member 3 and passing air flow. The oil absorption member 3 is installed in the atomization channel 601 for absorbing e-liquid. The oil blocking ring 5 is also installed in the atomization channel 601, and the oil blocking ring 5 abuts against the bottom end of the oil absorption member 3 to prevent the oil absorption member 3 from dripping e-liquid. The oil absorption member 3 has a through channel 301 communicating with the atomization channel 601 for accommodating the heating member 4 and discharging smoke. The heating member 4 is composed of two and is installed in the through channel 301 and abuts against the oil absorption member 3 to heat the e-liquid in the oil absorption member 3 to generate smoke. Four oil guiding holes 602 corresponding to the oil absorption member 3 are opened on the outer wall of the atomization pipe 6 for guiding e-liquid into the oil absorption member 3. One end of each heating member 4 is connected with a first wire 402 to serve as the positive electrode of the two heating members 4 to conduct electricity to connect each heating member 4, and at the same time to connect the two heating members 4 in parallel. The other end of each heating member 4 is respectively connected with a second wire 403 and a third wire 404 to respectively serve as the negative electrode of each heating member 4 to conduct electricity to connect the corresponding heating member 4. The upper end of the atomization pipe 6 is sleeved and connected to the lower end of the mist discharge pipe 2. A mist discharge channel 201 communicating with the atomization channel 601 is formed in the mist discharge pipe 2 for discharging smoke. The atomization pipe 6 and the mist discharge pipe 2 are installed in the oil storage chamber body 1. An air outlet 101 is opened at the top end of the oil storage chamber body 1 for discharging smoke. An air outlet pipe 102 is protruded into the oil storage chamber body 1 from the air outlet 101 for connecting the upper end of the mist discharge pipe 2. An air outlet channel 103 communicating with the air outlet 101 is formed in the air outlet pipe 102 and is also used for discharging smoke. The upper end of the mist discharge pipe 2 is inserted into the lower end of the air outlet pipe 102 and connected to make the mist discharge channel 201 communicate with the air outlet channel 103. The space between the outer walls of the atomization pipe 6 and the mist discharge pipe 2, and between the outer wall of the air outlet pipe 102 and the inner wall of the oil storage chamber body 1 forms an oil storage cavity 104 for storing e-liquid. The oil sealing member 7 is installed in the oil storage chamber body 1 for sealing the oil storage cavity 104. A connection channel 701 is opened at the top end of the oil sealing member 7 for connecting and positioning the lower end of the atomization pipe 6. The lower end of the atomization pipe 6 is inserted into the connection channel 701 and connected and positioned, and the oil guiding hole 602 is connected to the top end of the oil sealing member 7 to make the e-liquid in the oil storage cavity 104 be introduced into the oil absorption member 3 from the oil guiding hole 602. The base 8 is installed in the bottom opening of the oil storage chamber body 1 and abuts against the bottom end of the oil sealing member 7 for blocking the bottom opening of the oil storage chamber body 1, and at the same time for supporting and positioning the oil sealing member 7 to prevent the oil sealing member 7 from shifting and causing oil leakage. The lower ends of the first wire 402, the second wire 403, and the third wire 404 extend into the base 8. The first electrode 9 is installed at the bottom end of the base 8 and is electrically connected to the first wire 402. The second electrode 10 is installed at the bottom end of the base 8 and is electrically connected to the second wire 403. The third electrode 11 is installed at the bottom end of the base 8 and is electrically connected to the third wire 404.The power supply device is electrically connected to the first electrode 9 through the first wire 402, to the second electrode 10 through the second wire 403, and to the third electrode 11 through the third wire 404 to conduct electricity to each heating element 4 to make it heat up. Four air intake holes 801 communicating with the atomization channel 601 are provided at the bottom end of the base 8 for intake of air and guiding the air flow into the atomization channel 601 to drive the flow of the smoke.
[0037] Among them, the e-liquid in the e-liquid cavity 104 can be evenly introduced into the oil-absorbing member 3 through four oil-guiding holes 602. After each heating element 4 is energized and heated, the e-liquid in the oil-absorbing member 3 can be heated to generate smoke. The smoke can enter the atomization channel 601 from the through-channel 301 of the oil-absorbing member 3. When smoking, the external air flow can enter the atomization channel 601 from the air intake hole 801, then drive the smoke into the exhaust channel 201, and then be discharged from the atomizer main body 12 through the fog outlet 101 via the fog outlet channel 103 for the user to inhale. Since the two heating elements 4 are connected in parallel, when one of the heating elements 4 fails, the other heating element 4 can still continue to heat up to heat the e-liquid in the oil-absorbing member 3.
[0038] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention 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 perform equivalent replacements on some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. An atomizer with balanced supply and demand of e-liquid, comprising an atomizer body, characterized in that: The atomizer body is provided with an oil storage chamber for storing tobacco oil, and an atomization channel formed in the oil storage chamber. An oil suction piece is provided in the atomization channel. A plurality of oil guide holes for guiding tobacco oil in the oil storage chamber into the oil suction piece are provided on the channel wall of the atomization channel. The oil suction piece is provided with two heating pieces connected in parallel to heat tobacco oil in the oil suction piece. The oil guide holes are connected to the bottom wall of the oil storage chamber. The shape and size of the oil guide holes are set so that the tobacco oil entering the oil suction piece can be completely heated into smoke by the two heating pieces each time.
2. The atomizer according to claim 1, characterized in that The oil guide hole has an elliptical shape, a long hole diameter of the oil guide hole is 3.5±0.5mm, and a short hole diameter of the oil guide hole is 2.8±0.5mm.
3. The atomizer according to claim 1, characterized in that The oil absorption piece is made of one of the following materials: cotton material, glass fiber material, ceramic material, and porous quartz material.
4. The atomizer according to claim 1, characterized in that Each of the heating elements is in an arc shape, and each of the heating elements is made of a nickel material or an iron-chromium-aluminum alloy material. Each of the heating elements is provided with a plurality of heat-conducting holes.
5. The atomizer according to claim 1, characterized in that The oil storage cavity is also formed with a mist exhaust channel connected to the atomization channel and a mist outlet channel connected to the mist exhaust channel. The atomization channel is also provided with an oil blocking ring abutting against the bottom end of the oil suction member.
6. The atomizer according to any one of claims 1 to 5, characterized in that: The atomizer body comprises an oil storage tank body, a mist outlet is formed at the top of the oil storage tank body, the oil storage tank body protrudes from the mist outlet into the oil storage tank body to form a mist outlet pipe, a mist outlet channel is formed in the mist outlet pipe, and the mist outlet is communicated with the mist outlet channel.
7. The atomizer according to claim 6, characterized in that The atomizer body also includes an atomizing pipe and an exhaust pipe, which are arranged in the oil storage tank body, and the upper end of the atomizing pipe is connected to the lower end of the exhaust pipe, and the upper end of the exhaust pipe is connected to the lower end of the outlet pipe. The outer wall of the atomizing pipe and the outer wall of the exhaust pipe, as well as the space between the outer wall of the outlet pipe and the inner wall of the oil storage tank body serve as the oil storage chamber, the atomizing channel is formed in the atomizing pipe, and the exhaust pipe is formed in the exhaust pipe. The oil suction member and an oil blocking ring abutting against the bottom end of the oil suction member are provided in the atomizing pipe.
8. The atomizer according to claim 7, characterized in that The oil storage tank body is also provided with an oil sealing member serving as the bottom wall of the oil storage cavity, a connecting channel is provided at the top of the oil sealing member, the lower end of the atomizing tube is inserted into the connecting channel, the tube wall of the atomizing tube serves as the channel wall of the atomizing channel, the tube wall of the atomizing tube is provided with the oil guide hole corresponding to the oil suction member, and the oil guide hole is connected to the top of the oil sealing member.
9. The atomizer according to claim 8, characterized in that A base is provided in the bottom opening of the oil storage tank body, and the base is abutted against the bottom end of the oil sealing component. The oil absorption component has a through channel connected to the atomization channel. Each heating element is provided in the through channel, and each heating element is abutted against the inner wall of the through channel. One end of each heating element is connected to a first wire, and the other end of each heating element is respectively connected to a second wire and a third wire.
10. The atomizer according to claim 9, characterized in that The bottom end of the base is provided with a plurality of air inlet holes communicating with the atomization channel, the lower ends of the first wire, the second wire, and the third wire extend into the base, and the bottom end of the base is provided with a first electrode electrically connected to the first wire, a second electrode electrically connected to the second wire, and a third electrode electrically connected to the third wire.