Atomizing bomb capable of preventing oil leakage of atomizing assembly
By employing a combination structure of a transparent shell, separator, atomizing core, oil guiding medium, and oil cotton component in the atomizing cartridge, the problems of easy oil leakage and invisible oil volume caused by multiple atomizing cores are solved, achieving the effects of preventing oil leakage and visualizing oil volume.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-20
- Publication Date
- 2026-03-31
AI Technical Summary
Existing multi-core atomizer cartridges are prone to leakage and the amount of oil is not visible, and current technology cannot effectively solve this problem.
It adopts a combination structure of transparent shell, isolation component, atomizing core, oil guiding medium, oil condenser and oil cotton component. The oil impact energy is absorbed by the layered assembly and the pore deformation of the oil cotton component, and the oil volume can be observed in combination with the transparent shell.
It effectively prevents oil leakage from the atomizer core, ensuring no oil leaks out, while also allowing you to visualize the oil level, thus improving atomization efficiency and safety.
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Figure CN224055364U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model embodiment relates to electronic atomization technical field, in particular to a kind of atomization bomb of anti-atomization component oil penetration. BACKGROUND
[0002] In order to improve the atomization efficiency of atomizer to improve the amount of smoke, a plurality of atomizing cores are usually provided in the prior art, and the contact area with oil in the oil tank is larger due to the relatively large number of atomizing cores. When the product moves or falls, the oil in the oil tank will shock and impact the atomizing core, causing the oil to flow out along the cigarette holder from the atomizing core.
[0003] At the same time, the oil tank of the atomization bomb in the prior art is usually invisible. INVENTION CONTENTS
[0004] The technical problem to be solved by the utility model embodiment is to provide an atomization bomb with anti-atomization component oil penetration, which solves the problem of oil leakage of the atomization bomb with multiple atomizing cores, and solves the problem of invisible oil quantity.
[0005] To solve the above technical problems, the utility model embodiment adopts the following technical scheme: an atomization bomb with anti-atomization component oil penetration, comprising a transparent shell, an oil tank arranged in the shell, and an atomization assembly arranged in the oil tank. The atomization assembly comprises a spacer, the spacer is provided with a first oil hole, and the first oil hole is provided with two or more than two; an atomizing core, the atomizing core is composed of a heating part, a oil guide medium sleeved outside the heating part, and an oil-repellent cover sleeved on the oil guide medium; the atomizing core is arranged in the spacer in two or more than two; the oil-repellent cover is provided with a corresponding oil inlet hole in the direction of the first oil hole; the heating part is arranged in the oil guide medium in the direction of the oil inlet hole; and an oil cotton piece, the oil cotton piece is arranged between the spacer and the atomizing core, and an oil inlet interval is left between the spacer and the atomizing core.
[0006] Further, the oil cotton piece comprises a cotton main body and a support portion extending downward from the main body, the cotton main body is sleeved on the upper end of the atomizing core, and the support portion supports downward to prevent the oil cotton piece from sliding and blocking the communication between the first oil hole and the oil inlet hole.
[0007] Further, the spacer is also provided with a second oil window, when the support portion supports downward, the support portion partially blocks the second oil window, and the unblocked part communicates with the oil inlet interval between the spacer and the atomizing core.
[0008] Further, a mouthpiece channel leading to the oil tank is further arranged on the shell, the top of the spacer is a converging port, and the converging port is in butt joint communication with the mouthpiece channel to communicate with the outside.
[0009] Further, the nozzle channel is circumferentially provided with a guide part, and a sealing part is further arranged on the converging port, which comprises a gasket pressing the edge of the converging port and a ring sleeved on the converging port.
[0010] Further, the sealing part is sleeved on the converging port, the converging port is butted with the lower end surface of the nozzle channel, and the upper end surface of the gasket is butted with the lower end surface of the nozzle channel.
[0011] Further, the shell is provided with air inlet holes at the bottom, the air inlet holes are communicated with the inside of the atomizing core, the number of the air inlet holes is one-to-one corresponding to the number of the atomizing cores, and the number of the first oil holes is one-to-one corresponding to the number of the atomizing cores.
[0012] Further, the air inlet holes are provided with a gas mixing chamber.
[0013] Further, the oil-proof cover is provided with an expansion slot at a position opposite to the oil inlet hole.
[0014] Further, the heating part is arranged in the oil guide medium and is attached to the oil inlet hole.
[0015] The above technical scheme has at least the following beneficial effects: the atomizing core is provided with the structure of the oil-proof cover, the oil guide medium and the heating part, and the isolating part is further sleeved on the atomizing core, so that the impact of the oil liquid on the atomizing core is weakened layer by layer when the oil liquid in the oil tank is oscillated again, and the oil liquid is prevented from seeping out of the atomizing core without affecting the oil absorption of the atomizing core.
[0016] The oil cotton part arranged between the isolating part and the atomizing core plays a sealing role, and the pores of the oil cotton part are occupied by the oil liquid when the oil liquid in the oil tank is oscillated again, so that the oil liquid is dispersed to a larger area through the pores in the sponge to reduce the local pressure, and the impact energy is dissipated through the joint action, thereby preventing the oil liquid from leaking out between the isolating part and the atomizing core.
[0017] In addition, the amount of the oil liquid in the oil tank can be clearly observed through the transparent shell. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 is a three-dimensional structure schematic diagram of a combined state of an optional embodiment of the utility model.
[0019] Figure 2 is a three-dimensional structure schematic diagram of a disassembled state of an optional embodiment of the utility model. Figure 1 .
[0020] Figure 3is a three-dimensional structure schematic diagram of a disassembled state of another optional embodiment of the utility model.
[0021] Figure 4 is a three-dimensional structure schematic diagram of a disassembled state of an optional embodiment of the utility model Figure 2 .
[0022] Figure 5 is a sectional three-dimensional structure schematic diagram of still another optional embodiment of the utility model. DETAILED DESCRIPTION
[0023] The utility model will be explained further in detail in combination with the drawings and specific embodiments. It should be understood that the following illustrative embodiments and explanations are only used to explain the utility model, and are not as the limitation of the utility model, and in the case of no conflict, the embodiments in the utility model and the features in the embodiments can be combined with each other.
[0024] As Figures 1-5 shown, an optional embodiment of the utility model provides a kind of atomizing bullet, including transparent shell 1, oil storehouse 10 being arranged in the shell, atomizing component being arranged in oil storehouse 10, the atomizing component includes,
[0025] insulation piece 2, the first oil hole 21 is opened in the insulation piece 2, and the first oil hole 21 is provided with more than two;
[0026] atomizing core 3, the atomizing core 3 is composed of heating portion 31, oil guide medium 32 being set on the heating portion and oil-repellent cover 33 being set on the oil guide medium;
[0027] The atomizing core 3 is provided with more than two in the insulation piece 2;
[0028] The oil-repellent cover 33 is provided with corresponding oil inlet hole 330 towards the first oil hole 21;
[0029] The heating portion 31 is attached in the oil guide medium 32 towards the oil inlet hole 330 direction;
[0030] Oil cotton piece 4, the oil cotton piece 4 is arranged between insulation piece 2 and atomizing core 3, and oil interval is left between the insulation piece 2 and atomizing core 3.
[0031] In the embodiment, the atomizing core 3 is provided as the structure of oil-repellent cover 33, oil guide medium 32 and heating portion 31 layer by layer, and the insulation piece 2 is further set on the atomizing core 3, and the impact of oil liquid on the atomizing core 3 is weakened layer by layer when the oil liquid in the oil storehouse 10 is oscillated, so as to prevent the oil liquid from seeping out of the atomizing core 3 without affecting the oil absorption of the atomizing core 3.
[0032] The oil cotton piece 4 arranged between the isolating piece 2 and the atomizing core 3 simultaneously plays a sealing role. When the oil in the oil tank 10 is re-oscillated, the pores of the oil cotton piece 4 are occupied by the oil, the viscosity of the oil and the deformation of the oil cotton piece 4 when impacted make the impacted oil be dispersed to a larger area through the internal pores of the sponge to reduce the local pressure, and the impact energy is dissipated through the joint action, thereby preventing the oil from leaking out between the isolating piece 2 and the atomizing core 3.
[0033] In addition, the amount of oil in the oil tank 10 can be more clearly observed through the transparent shell 1. The isolating piece 2, the oil-repellent cover 33, the oil-guiding medium 32 and the oil cotton piece 4 are all hollow, and the hollow parts are connected to each other in layers.
[0034] As shown in Figure 2 , 4 In another optional embodiment of the utility model, the oil cotton piece 4 includes a cotton main body 41 and a support part 42 extending downward from the main body, the cotton main body 41 is sleeved on the upper end of the atomizing core 3, and the support part 42 supports downward to prevent the oil cotton piece 3 from sliding and blocking the communication between the first oil hole 21 and the oil inlet hole 330.
[0035] In this embodiment, the oil cotton piece 4 is sleeved on the atomizing core 3 and then inserted into the isolating piece 2 during installation. Since the oil cotton piece 4 is in interference fit with the isolating piece 2, the oil cotton piece 4 will rub against the isolating piece 2 during insertion. The oil cotton piece 4 moves downward along the atomizing core 3 to cover the oil inlet hole 330. After the support part 42 is arranged, the support part 42 abuts against the bottom of the oil tank 10, so that the oil cotton piece 4 cannot move downward along the atomizing core 3.
[0036] As shown in Figure 4 In another optional embodiment of the utility model, the isolating piece 2 is further provided with a second oil window 22. When the support part 42 supports downward, the support part 42 partially blocks the second oil window 22, and the unblocked part is communicated with the oil inlet interval between the isolating piece 2 and the atomizing core 3.
[0037] In this embodiment, the second oil window 22 is further arranged in the isolating piece 2, and the support part 42 partially blocks the second oil window 22, and the unblocked part is communicated with the oil inlet interval between the isolating piece 2 and the atomizing core 3. Since the atomizing assembly is immersed in oil, if only the first oil hole 21 is arranged on the isolating piece 2, the oil inlet pressure of the first oil hole 21 is relatively large. The second oil window 22 is arranged to expand the oil inlet amount and reduce the oil pressure, so that the oil inlet is relatively stable and less likely to leak.
[0038] At the same time, when the oil oscillates, the oil can oscillate from the oil inlet interval between the isolating piece 2 and the atomizing core 3, oscillate out from the unblocked part of the second oil window 22 of the support part 42 or oscillate back, disperse the oil and avoid directly impacting the atomizing core 3 to cause oil leakage.
[0039] Furthermore, since the support part 42 partially blocks the second oil window 22, the support part 42 blocks part of the oil reservoir and is in direct contact with the oil, and the support part 42 absorbs the oil distribution to the entire oil cotton piece 4. When the oil in the oil reservoir 10 is re-oscillated, the pores of the oil cotton piece 4 are occupied by the oil, the viscosity of the oil and the deformation of the oil cotton piece 4 when impacted cause the impacted oil to be dispersed to a larger area through the internal pores of the sponge, thereby reducing the local pressure, and the combined effect dissipates the impact energy, thereby preventing the oil from leaking out between the isolation piece 2 and the atomizing core 3.
[0040] As shown in Figure 4 , 5 shown, in another optional embodiment of the utility model, the shell 1 still is provided with the nozzle channel 11 leading to the oil reservoir 10, the top of isolation piece 2 is the converging port 20, and the converging port 20 is connected with the nozzle channel 11 and communicates with the outside.
[0041] In the embodiment, the converging port 20 is connected with the nozzle channel 11 and communicates with the outside, which ensures that the smoke generated by the atomizing core after absorbing the oil and being heated can be discharged along the channel for a person to smoke. Meanwhile, the top of the isolation piece 2 is provided with the converging port 20, so that the smoke generated by multiple atomizing cores 3 can be mixed, thereby ensuring the concentration of the smoke.
[0042] As shown in Figure 4 , 5 shown, in an optional embodiment of the utility model, the nozzle channel 11 is provided with a guide part 12 in the circumferential direction, and the converging port 20 is further provided with a sealing piece 25, which is composed of a gasket 251 pressing the edge of the converging port and a ring 252 sleeved on the converging port in the circumferential direction.
[0043] In the embodiment, the converging port 20 is further provided with the sealing piece 25, which ensures that the atomizing assembly can be inserted into the guide part 12 and connected with the nozzle channel 11, and the sealing piece 25 strengthens the sealing between the atomizing assembly and the nozzle channel 11 to prevent the oil from leaking out through the gap between the connection parts.
[0044] As shown in Figure 4 , 5 shown, in an optional embodiment of the utility model, the sealing piece 25 is sleeved on the converging port 20, the converging port 20 is connected with the nozzle channel 11, the upper end surface of the gasket 251 abuts against the lower end surface of the nozzle channel 11, and the ring 252 is inserted into the guide part 12 and is in interference sealing.
[0045] In the embodiment, the converging port 20 is further provided with the sealing piece 25, which ensures that the atomizing assembly can be inserted into the guide part 12 and connected with the nozzle channel 11, and the sealing piece 25 strengthens the sealing between the atomizing assembly and the nozzle channel 11 to prevent the oil from leaking out through the gap between the connection parts.
[0046] As shown in Figure 5As shown, in an optional embodiment of this utility model, an air inlet channel 15 is provided at the bottom of the housing 1. The air inlet channel 15 communicates with the interior of the atomizing core 3 for air intake. The number of air inlets 15 corresponds one-to-one with the number of atomizing cores 3. The number of first oil holes 21 corresponds one-to-one with the number of atomizing cores 3.
[0047] In this embodiment, several air inlets 15 are provided, each corresponding to one atomizing core 3 for air supply, ensuring that the air intake can completely carry out the smoke generated by the heating of the atomizing core 3. At the same time, the number of the first oil holes 21 of the isolation component 2 corresponds one-to-one with the number of atomizing cores 3, ensuring that each atomizing core 3 has an independent oil inlet path, ensuring the highest working efficiency between oil inlet and atomization, and that the atomizing core 3 can fully atomize the oil.
[0048] like Figure 5 As shown, in an optional embodiment of this utility model, a mixing chamber 16 is provided at the connection point between each air inlet 15 and the atomizing core 3.
[0049] In this embodiment, by setting a mixing chamber 16 at the connection between the air intake channel 15 and the atomizing core 3, even if part of the air intake channel 15 is blocked, as long as one air intake channel 15 is still connected to the mixing chamber 16, the air intake airflow can still flow through the mixing chamber 16 to each atomizing core 3 and carry out atomized smoke.
[0050] like Figure 5 As shown, in an optional embodiment of this utility model, the oleophobic cover 33 has a telescopic groove 333 in the direction opposite to the oil inlet 330. In this embodiment, the telescopic groove 333 reduces the expansion caused by heat transfer from the heating part 31, and avoids excessive expansion of the oleophobic cover 33, which squeezes the oil cotton part 4 and affects the sealing of the oil cotton part 4.
[0051] like Figure 3 , 5 As shown, in an optional embodiment of this utility model, the heating element 31 is fitted inside the oil guiding medium 32 toward the oil inlet 330, and the heating element 31 is a mesh structure.
[0052] In this embodiment, the heating element 31 with a mesh structure is attached to the oil guide medium 32 and faces the oil inlet 330. When the shaking and oscillating oil passes through the oil guide medium 32, the heating element 31 contacts the oil to the maximum extent. At the same time, due to the mesh structure of the heating element 31, the viscous oil forms tension between the mesh holes, which further hinders the oil from moving forward and prevents the oil from seeping out.
[0053] The embodiments of the present application are described above with reference to the drawings; however, the present application is not limited to the specific embodiments described above, but the specific embodiments described above are merely illustrative rather than restrictive, and a person of ordinary skill in the art can make many forms under the inspiration of the present application without departing from the purpose of the present application and the scope protected by the claims, and these all belong to the protection scope of the present application.
Claims
1. An oil-bleeding prevention aerosol can for an aerosolizing assembly, comprising a transparent can body, an oil reservoir provided in the can body, and an aerosolizing assembly provided in the oil reservoir, characterized in that, The atomization assembly comprises, The spacer is provided with a first oil hole, and the first oil hole is provided with two or more than two; The atomization core is composed of a heating part, a oil guide medium sleeved outside the heating part, and an oil-repellent cover sleeved on the oil guide medium; The atomization core is provided with two or more than two in the spacer; the oil-repellent cover is provided with a corresponding oil inlet hole in the direction of the first oil hole; The heating part is attached to the oil guide medium in the direction of the oil inlet hole; The oil cotton piece is arranged between the spacer and the atomization core, and an oil inlet interval is left between the spacer and the atomization core.
2. The anti-fogging, oil-infused, aerosol of claim 1, wherein, The oil cotton piece comprises a cotton main body and a supporting part extending downward along the main body, the cotton main body is sleeved on the upper end of the atomization core, and the supporting part supports downward to prevent the oil cotton piece from sliding and blocking the communication between the first oil hole and the oil inlet hole.
3. The anti-mist assembly oil-infused aerosol of claim 2, wherein, The spacer is also provided with a second oil window, when the supporting part supports downward, the supporting part partially blocks the second oil window, and the unblocked part communicates with the oil inlet interval between the spacer and the atomization core.
4. The anti-mist assembly oil-infused aerosol of claim 3, wherein, The shell is also provided with a nozzle channel leading to the oil reservoir, the top of the spacer is a converging port, and the converging port is in communication with the nozzle channel and the outside.
5. The anti-mist assembly oil-infused aerosol of claim 4, wherein, The nozzle channel is provided with a guide part in the circumferential direction, the converging port is also provided with a sealing piece, and the sealing piece is composed of a gasket pressing the edge of the converging port and a ring sleeved on the converging port in the circumferential direction.
6. The anti-mist assembly oil-infused aerosol of claim 5, wherein, The sealing piece is sleeved on the converging port, the converging port is in butt joint with the nozzle channel, the upper end surface of the gasket abuts against the lower end surface of the nozzle channel, and the ring is inserted into the guide part and is in interference sealing.
7. The anti-fogging, oil-infused, aerosol of claim 1, wherein, The bottom of the shell is provided with an air inlet channel, the air inlet channel communicates with the inside of the atomization core to intake air, the number of air inlet channels corresponds to the number of atomization cores, and the number of first oil holes corresponds to the number of atomization cores.
8. The anti-mist assembly oil-infused aerosol of claim 7, wherein, The air inlet channel is provided with a gas mixing chamber at the communication part of the atomization core.
9. The anti-fogging, oil-infused, aerosol of claim 1, wherein, The oil-repellent cover is provided with an expansion slot in the opposite direction of the oil inlet hole.
10. The anti-fogging, oil-infused, aerosol of claim 1, wherein, The heating part is attached to the oil guide medium in the direction of the oil inlet hole, and the heating part is in a mesh structure.