Electronic cigarette
11065404 ยท 2021-07-20
Assignee
Inventors
Cpc classification
A61M16/0003
HUMAN NECESSITIES
A24F40/40
HUMAN NECESSITIES
H05B3/0014
ELECTRICITY
A61M15/06
HUMAN NECESSITIES
A61M2016/0024
HUMAN NECESSITIES
A61M2205/8256
HUMAN NECESSITIES
A24F40/42
HUMAN NECESSITIES
H05B3/0004
ELECTRICITY
F24H3/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24H3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A24F40/42
HUMAN NECESSITIES
A24F40/40
HUMAN NECESSITIES
A61M16/00
HUMAN NECESSITIES
H05B1/02
ELECTRICITY
A61M11/04
HUMAN NECESSITIES
A61M11/00
HUMAN NECESSITIES
Abstract
An electronic cigarette includes a shell and a mouthpiece. The external wall of the shell has an air inlet. An atomizer and a liquid-supply are in contact with each other. The air inlet, atomizer, and an aerosol passage are interconnected.
Claims
1. A vaporizing device, comprising: a battery assembly including a battery, an LED and an electronic circuit board in a battery assembly housing, the battery and the LED electrically connected to the electronic circuit board; a sensor in the battery assembly housing electrically connected to the electronic circuit board; a plastic or rubber separator in the battery assembly housing adjacent to the sensor, the separator having a through hole providing an air passage through the separator; a liquid supply assembly including an outlet; an aerosol passage leading from an air inlet to the outlet; a heating wire oriented perpendicular to a longitudinal axis of the device, the heating wire in a cavity; and a porous component for absorbing liquid in the liquid supply assembly and for moving the liquid towards the heating wire.
2. The vaporizing device of claim 1 wherein the outlet is in a mouthpiece, and the aerosol passage includes a gas vent extending towards the mouthpiece.
3. The vaporizing device of claim 2 wherein the gas vent is co-axial with a longitudinal axis of the battery assembly housing.
4. The vaporizing device of claim 1 wherein the heating wire is surrounded by the porous component.
5. The vaporizing device of claim 1 wherein a first end of the liquid supply assembly is insertable into the battery assembly housing.
6. The vaporizing device of claim 5 further including a retaining element for retaining the liquid supply assembly in the battery assembly housing, the retaining element between a side of the liquid supply assembly and the battery assembly housing.
7. The vaporizing device of claim 5 wherein the outlet is in a mouthpiece, and a first end of the mouthpiece contacts the battery assembly housing when the liquid supply assembly is inserted into the battery assembly housing.
8. The vaporizing device of claim 7 wherein the battery, the electronic circuit board, the separator, the heating wire and the mouthpiece are arranged sequentially when the liquid supply assembly is inserted into the battery assembly housing.
9. The vaporizing device of claim 1 wherein the sensor comprises an air flow or pressure sensor on one side of a stream path in the battery assembly housing.
10. The vaporizing device of claim 1 wherein the separator has a base and the air passage extends from the base towards the heating wire.
11. The vaporizing device of claim 1 wherein a first portion of the aerosol passage extends from the air inlet to a first side of the air passage, and a second portion of the aerosol passage extends from a second side of the air passage towards the heating wire.
12. A vaporizing device, comprising: a battery assembly including a battery, an LED and an electronic circuit board in a battery assembly housing, the battery and the LED electrically connected to the electronic circuit board; a sensor in the battery assembly housing electrically connected to the electronic circuit board; a plastic or rubber separator in the battery assembly housing and an air passage through the separator; a liquid supply assembly including an outlet at a second end of the liquid supply assembly; an aerosol passage leading from an air inlet to the outlet; a heating wire perpendicular to a longitudinal axis of the device; and a porous component absorbing liquid in the liquid supply assembly and moving the liquid towards the heating wire.
13. The vaporizing device of claim 12 wherein the outlet is in a mouthpiece, and the aerosol passage includes a gas vent extending towards the mouthpiece.
14. The vaporizing device of claim 12 wherein the heating wire is surrounded by the porous component.
15. The vaporizing device of claim 12 wherein a first end of the liquid supply assembly is insertable into the battery assembly housing.
16. The vaporizing device of claim 15 further including a retaining element for retaining the liquid supply assembly in the battery assembly housing, the retaining element between one side of the liquid supply assembly and the battery assembly housing.
17. The vaporizing device of claim 15 wherein the outlet is in a mouthpiece, and a first end of the mouthpiece contacts the battery assembly housing when the liquid supply assembly is inserted into the battery assembly housing.
18. The vaporizing device of claim 12 wherein the sensor comprises an air flow or pressure sensor on one side of a stream path in the battery assembly housing.
19. A vaporizing device, comprising: a battery assembly including a battery, an LED and an electronic circuit board in a battery assembly housing, the battery and the LED electrically connected to the electronic circuit board; a sensor in the battery assembly housing electrically connected to the electronic circuit board; a plastic or rubber separator in the battery assembly housing, and an air passage through the separator; a liquid supply assembly including an outlet in a mouthpiece at a second end of the liquid supply assembly; an aerosol passage leading from an air inlet to the outlet; a heating wire extending perpendicular to a longitudinal axis of the device; a porous component for absorbing liquid in the liquid supply assembly and for moving liquid towards the heating wire; and a first end of the mouthpiece contacting the battery assembly housing when the liquid supply assembly is inserted into the battery assembly housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
Embodiment 1
(13) As shown in
(14) As shown in
(15) As shown in
(16) The atomization cavity wall 25 is surrounded with the porous body 27, which can be made of foam nickel, stainless steel fiber felt, high molecule polymer foam and foam ceramic. A first piezoelectric element 23 is also provided on the atomizer 9. The atomization cavity wall 25 can be made of aluminum oxide or ceramic. As shown in
(17) As shown in
(18) As shown in the functional diagram of the circuit in
(19) When a smoker smokes, the mouthpiece 15 is under negative pressure. The air pressure difference or high speed stream between the normal pressure cavity 5 and the negative pressure cavity 8 causes the sensor 6 to output an actuating signal, the electronic circuit board 3 connected therewith goes into operation. Now the ripple film 22 in the sensor 6 is deformed to take the second magnetic steel 21 away from the Reed switch 19. The Reed switch 19 is then closed (i.e., K1 is closed) under the effect of the excessive magnetic line of force from the first magnetic steel 20, starting the field effect power transistor electronic switch (i.e., U1 is opened). The high frequency oscillator may uses the Colpitts oscillator with the frequency of 550 KHz-8 MHz. The automatic fine-adjusting element in the circuit resonates with the first piezoelectric element 23. The LED 1 can be lit under the supply of the rechargeable battery 2.
(20) Air enters the normal pressure cavity 5 through the air inlet 4, passes through the air passage 18 of the sensor and then the through hole in the vapor-liquid separator 7, and flows into the atomization cavity 10 in the atomizer 9. The high speed stream passing through the ejection hole drives the nicotine solution in the porous body 27 to eject into the atomization cavity 10 in the form of droplets, where the nicotine solution is subjected to the ultrasonic atomization by the first piezoelectric element 23 and is further atomized by the heating element 26.
(21) After the atomization the droplets with large diameters stick to the wall under the action of eddy flow and are reabsorbed by the porous body 27 via the overflow hole 29. Droplets with small diameters float in stream and form aerosols, which are sucked out via the aerosol passage 12, gas vent 17 and mouthpiece 15. The solution storage porous body 28 in the liquid-supplying bottle 11 is in contact with the bulge 36 on the atomizer 9, thereby achieving the capillary infiltration liquid-supplying.
(22) The mouthpiece 15 is threaded. When the nicotine solution in the liquid-supplying bottle 11 is used up, users can screw the mouthpiece 15 out to take the liquid-supplying bottle 11 out, refill the liquid-supplying bottle 11 with the nicotine solution, put the liquid-supplying bottle 11 into the shell 14 again, and then screw the mouthpiece 15.
(23) The Reed switch 19, the first magnetic steel 20, the second magnetic steel 21, the ripple film 22 can be replaced by a semiconductor strain gauge with sealed film, which is mounted in the place of the sensor ripple film.
(24) To simplify the design, the first piezoelectric element 23 on the atomizer 9 can be omitted, and the atomization of the nicotine solution will be made only by the heating element 26. The size of such an atomizer can be made smaller, and the structure of the connection of the whole electronic atomization cigarette is the same as the embodiment 1. In addition, as shown
(25) As shown in
(26) As shown in
Embodiment 2
(27) As shown in
(28) On the inner wall of the shell 14 of the electronic atomization cigarette described in the embodiment 1 and 2, a digital display screen 32 for showing the smoking times per day and the cell capacity can be also provided. The sensor 6 uses a linear signal output, which is proportional to the suction force (i.e., the stronger one sucks, the longer the time of operation is), the atomizer 9 operates in the linear mode, thereby simulating a cigarette that looks like a normal cigarette.
(29) Within the shell 14, the microswitch 16 is connected to the sensor 6 in parallel and used for manually cleaning. When users do not smoke, they press the microswitch 16 to start the sensor 6 connected therewith in parallel, or clean the residue or other impurity substance within the shell 14.
(30) The nicotine solution for atomization contains 0.4-3.5% nicotine, 0.05-2% cigarette essence, 0.1-3.1% organic acid, 0.1-0.5% anti-oxidation agent, and the rest is 1,2-propylene glycol.