The described embodiments relate to the field of atomizers, and in particular, to an electronic atomization device and a smoke-generating assembly.
Traditional smoking ignites a tobacco via an open fire, and the tobacco is burned to produce smoke for a smoker to inhale. The smoke produced by burning the tobacco generally includes thousands of harmful substances. Therefore, traditional tobacco not only causes serious respiratory diseases to the smoker, but also easily brings harm from second-hand smoke.
In order to solve the technical problem of more harmful substances produced by burning the traditional tobacco, atomized electronic cigarettes and electronic flue-cured cigarettes have been developed by technicians. However, by atomizing cigarette liquid, the atomized electronic cigarettes form smoke for the user to inhale. Although the atomized electronic cigarettes overcome the above disadvantages of traditional cigarettes and can meet consumers' dependence on the tobacco to a certain extent, the cigarette liquid of the electronic cigarettes is made of flavors and fragrances, and is not a real cigarette product. In this way, the cigarette tastes light and lacks aroma of the tobacco, therefore, the atomized electronic cigarettes cannot be widely accepted by consumers. Existing low-temperature electronic flue-cured cigarettes heats the tobacco in a low-temperature manner where the solid smoking medium is non-combustion. Due to a low heating temperature, harmful substances produced by the heating manner are reduced, but amount of the smoke is obviously insufficient. However, if the tobacco is heated at a high temperature, the tobacco is easy to be blackened and carbonized, and the heat distribution is uneven. In addition, it is easy to cause a problem that one part of the tobacco has been carbonized and the temperature of another other part of the tobacco is not enough, which also produces more harmful substances. Thus, how to absorb the aroma of the tobacco and reduce the harmful substances to a greater extent has become an urgent problem in the tobacco industry.
In the related art, except using an atomization component to atomize the liquid medium, a baking unit is also configured to bake a solid smoking medium to solve the above problems. In the related art, the solid smoking medium is generally directly arranged on a baking cavity, and atomized gas is passed into the solid smoking medium. In this case, it has the following shortcoming: average flow velocity is low, flow velocities are uneven, amount of nicotine released is small, and consumption of the solid smoking medium is great.
The technical problem to be solved by the present disclosure is to provide an improved electronic atomization device, and further to provide an improved smoke-generating assembly.
A technical solution used in the present disclosure to solve its technical problems is: to propose an electronic atomization device, and the electronic atomization device including: a baking unit, defining a baking cavity; a smoke-generating assembly, accommodated in the baking cavity and including: a solid smoking medium; and a flow perturbation member, embedded in the solid smoking medium.
In some embodiments of the present disclosure, the flow perturbation member defines at least one spiral air flow channel; the electronic atomization device further includes a atomization unit, and the atomization unit defines a first air inlet fluidly communicated to outside air; the outside air enters from the first air inlet, passes through the atomization unit and the at least one spiral air flow channel, and contacts with the solid smoking medium; the solid smoking medium is arranged on the at least one spiral air flow channel.
In some embodiments, the atomizing unit is fluidly communicated to the first air inlet and the baking cavity, and the outside air enters from the first air inlet, passes through the atomization unit, enters the at least one spiral air flow channel, and contacts with the solid smoke medium.
In some embodiments, the flow perturbation member is spiral and extends longitudinally in the solid smoking medium.
In some embodiments, the flow perturbation member includes at least one flow perturbation piece arranged spirally, and the at least one flow perturbation piece defines the at least one spiral air flow channel.
In some embodiments, the flow perturbation member includes a plurality of spiral flow perturbation pieces spaced apart from each other and embedded with each other, and a spiral air flow channel is defined between each of two adjacent flow perturbation pieces.
In some embodiments, the flow perturbation member includes a central cylinder, the plurality of spiral flow perturbation pieces are arranged at intervals along an outer circumferential wall of in the central cylinder in a circumferential direction, and each of the flow perturbation pieces extends along an axial direction of the central cylinder.
In some embodiments, the smoke-generating assembly is detachably arranged in the baking cavity, and the smoke-generating assembly further includes an accommodating device configured to accommodate the solid smoking medium.
In some embodiments, the atomization unit and the baking unit are arranged horizontally side by side in the housing; the atomization unit includes an air flow channel, the air flow channel includes the first air inlet and a first air outlet, the first air outlet is located in one side of the atomization unit close to the baking unit, and the first air inlet is located in one side of the atomization unit away from the baking unit; and the baking cavity includes a second air inlet and the second air outlet, and the second air inlet is fluidly communicated to the second air outlet.
In some embodiments, the air flow channel is arranged longitudinally in the atomization unit, and the baking cavity is longitudinally defined in the baking unit.
In some embodiments, the electronic atomization device further includes a communication unit, the communication unit includes a communication channel, and the communication channel is configured to fluidly communicate the first air outlet of the atomization unit to the baking cavity.
In some embodiments, the housing includes a nozzle, the baking unit is cylindrical and arranged longitudinally in the housing, a lower portion of the baking unit is connected to the communication unit, and an upper portion of the baking unit is connected to the nozzle.
In some embodiments, the communication unit includes a third air outlet located on a top and a third air inlet located on a horizontal surface close to one side of the atomization unit; the third air inlet is fluidly communicated to the first air outlet, and the third air outlet is fluidly communicated to the second air inlet.
In some embodiments, the communication unit includes a front half part and a rear half part spliced with the front half part, a surface of the front half part facing the rear half part defines a first arcuate groove, and a cross-section of the first arcuate groove is in shape of a semicircle; a surface of the rear half part facing the front half part defines a second arcuate groove, and a cross-section of the second arcuate groove is in shape of a semicircle; the third air inlet is fluidly communicated to an upper portion of the second arcuate groove, and the third air inlet is fluidly communicated to a lower portion of the second arcuate groove; after the front half part being spliced with the rear half part, the first arcuate groove and the second arcuate groove cooperatively define the communication channel in shape of an arcuate.
In some embodiments, a top of the rear half part further defines a groove, the groove is sleeved on a bottom of the baking unit, and the communication channel is fluidly communicated to the baking cavity.
In some aspects of the present disclosure, a smoke-generating assembly may be disclosed. The smoke-generating assembly is configured for an electronic cigarette, and includes a solid smoking medium; and a flow perturbation member embedded in the solid smoking medium.
In some embodiments, the flow perturbation member defines at least one spiral air flow channel, and the at least one spiral air flow channel extends longitudinally.
In some embodiments, the flow perturbation member is spiral and extends longitudinally in the solid smoking medium.
In some embodiments, the solid smoking medium includes tobacco leaves or tobacco particles, and the solid smoking medium is arranged in the at least one spiral air flow channel.
In some aspects of the present disclosure, an electronic atomization device may be disclosed. The electronic atomization device including: a baking unit; an atomization unit, wherein the baking unit and the atomization unit are arranged side by side along a first direction, and the atomization unit defines an air flow channel arranged along the first direction; and a smoke-generating assembly, accommodated in the baking unit and including: a solid smoking medium; and a flow perturbation member, embedded in the solid smoking medium and defining a spiral air flow passage arranged along a second direction substantially perpendicular to the first direction, wherein the spiral air flow passage is fluidly communicated to the air flow channel; wherein after entering the electronic atomization device, air successfully passes through the air flow channel and the spiral air flow channel, and further contacts with the solid smoking medium.
In order to have a clearer understanding of the technical features, objectives and effects of the present disclosure, the specific embodiments of the present disclosure will now be described in detail with reference to the accompanying drawings.
Referring to
In some embodiments, the support 13, the sleeve 11, and the nozzle 15 are integrally formed. The support 13 may include a first accommodating space 131 configured to accommodate the atomization unit 20, a second accommodating space 132 configured to accommodate the baking unit 80, a third accommodating space 133 configured to accommodate the power unit 50, a fourth accommodating space 134 configured to accommodate the air switch unit 60, a fifth accommodating space 135 configured to accommodate the main control unit 70, and a sixth accommodating space 136 configured to accommodate the communication unit 30. A partition wall 137 is defined between the first accommodating space 131 and the third accommodating space 133, and configured to separate the first accommodating space 131 from the third accommodating space 133.
In some embodiments, a top of the partition wall 137 defines a pair of electrode pores 1371, a pair of accommodating holes 1372 configured to receive magnetically attractive elements, and a first arcuate gas-guide groove 1373. The pair of electrode pores 1371 are distributed and spaced apart from each other along a length direction of the partition wall 137. The first arcuate gas-guide groove 1373 may include a first end away from the third accommodating space 133 and a second end close to the third accommodating space 133, and the first arcuate gas-guide groove 1373 extends from the first end a towards the second end. The third accommodating space 133 is located in a distal end of the support 13 away from the nozzle 15. The first accommodating space 131 and the second accommodating space 132 are located in a proximal end of the support 13 close to the nozzle 15. Accordingly, the power unit 50 is located in the distal end far away from the nozzle 15, and the atomization unit 20 and the baking unit 80 are located in the proximal end close to the nozzle 15. In this way, it is possible to make a structure of the electronic atomization device 1 more compact. The partition wall 137 further includes a second gas-guide groove 1374, which is in communication with or fluidly communicated to the second end of the first arcuate gas-guide groove 1373 sunk or recessed downwardly and longitudinally, and a horizontal third gas-guide groove 1375, which is configured to fluidly communicate the second gas-guide groove 1374 to the third accommodating space 133, thereby forming a first air flow channel fluidly communicated to the air switch unit 60. The first gas-guide groove 1373 has an arcuate shape, so that it is possible that a rate of a leakage inflowing the air switch unit 60 is decreased to a certain extent, thereby preventing the leakage from having an adverse effect on the air switch unit 60. In some embodiments, a bottom of the second gas-guide groove 1374 is located at a level lower than a connecting end of the third gas-guide groove 1375 and the second gas-guide groove 1374. In this way, even if the leakage inflows the air switch unit 60, a lower portion of the second gas-guide groove 1374 may accommodate a part of the leakage, thereby further decreasing a possibility of the leakage inflowing the air switch unit 60.
Referring to
Referring to
In some embodiments, the baking unit 80 is cylindrical and arranged longitudinally in the housing 10. In addition, a lower portion of the baking unit 80 is connected to the communication unit 30, and an upper portion of the baking unit 80 is connected to the nozzle 15. In some embodiments, the baking unit 80 may include a cylindrical heating element and a cylindrical heat conductor coaxially arranged on an inner side of the heating element. The inner side of the heating element form a baking cavity 810 configured to accommodate the smoke-generating assembly 40. The baking cavity 810 defines a second air inlet 8111 arranged on a bottom and a second air outlet arranged 8112 on a top, and the second air inlet 8111 is fluidly communicated to the communication channel 33. Further, the cylindrical heat conductor is arranged on an end of the second air outlet 8112 of the baking cavity 810, and is made of metallic material with high heat conductivity such as copper, aluminium, stainless steel, or the like. The baking unit 80 is configured to heat the solid smoking medium, such as a tobacco, in a low-temperature manner where the solid smoking medium is non-combustion. In this way, due to a low heating temperature, harmful substances produced by means of heating are reduced. In some embodiments, a heating temperature of the baking unit 80 is configured to keep an inner temperature of the solid smoking medium be 40 to 50 degrees Celsius. In some embodiments, the heating temperature of the baking unit 80 may be 45 to 55 degrees Celsius.
As shown in
As shown in
As shown in
In some embodiments, the flow perturbation member 41 may be spiral, and extend longitudinally in the solid smoking medium. Furthermore, the flow perturbation member 41 may include a central cylinder 411 and three flow perturbation pieces 412 arranged at intervals. The central cylinder 411 is integrally formed with the flow perturbation pieces 412. In some embodiments, the central cylinder 411 may be omitted. The number of the flow perturbation pieces 412 may be one or a plurality, and is not limited to three. The three flow perturbation pieces 412 may be arranged at intervals along an outer circumferential wall of in the central cylinder 411 in a circumferential direction, each of the three flow perturbation pieces 412 extends along an axial direction of the central cylinder 411. In some embodiments, each of the flow perturbation pieces 412 may be spiral, and defines a spiral air flow channel 413 having a spiral shape. The spiral air flow channel 413 may be arranged between two adjacent flow perturbation pieces 412, and is configured to allow or enable the air to enter the solid smoking medium. Further, the spiral air flow channel 413 may extend longitudinally and be fluidly communicated to the second air flow channel 210. With the spiral air flow channel 413 being arranged spirally, paths of the air are increased or extended, thereby improving the velocity uniformity. In addition, it is possible to increase a contact area of the solid smoking medium contacting with the air, so that the air flow passing through the solid smoking medium may more sufficiently contact with the solid smoking medium, thereby improving the release and the transmission of the nicotine.
As shown in
As shown in
In some embodiments, the accommodating device 42 may be cylindrical and configured to accommodate the solid smoking medium. In addition, the accommodating device 42 may be a metal sleeve with high heat conductivity. A bottom of the sleeve may define an air inlet, so that the sleeve may be fluidly communicated to the second air flow channel 210, and the air may be allowed or enabled to enter. In some embodiments, it should be understood that the accommodating device 42 may be a wrapping paper wrapped around the solid smoking medium, and is not limited to the sleeve.
In some embodiments, the smoke-generating assembly 40 further includes an installation sleeve 43 arranged in the accommodating device 42 and located in an end close to the nozzle 15, and a filter cotton 44 arranged in the installation sleeve 43. In some embodiments, it should be understood that the installation sleeve 43 may be omitted. The filter cotton 44 is received in the accommodating device 42, and located in an end of the accommodating device 42 close to the nozzle 15. In some embodiments, the filter cotton 44 may be columnar, and configured to filtrate the smoke produced by the solid smoking medium.
As shown in
It is to be understood that the above examples only present preferred some embodiments of the present disclosure, and the description is more specific and detailed, but it should not be construed as a limitation on the scope of the present disclosure. It should be noted that for those skilled in the art, the above technical features can be freely combined and several deformations and improvements can be made without departing from the conception of the present disclosure, all of which fall within the scope of the present disclosure. Therefore, all equivalent transformations and modifications made within the scope of the claims of the present disclosure shall fall within the scope of coverage of the claims of the present disclosure.
Number | Date | Country | Kind |
---|---|---|---|
201910663302.X | Jul 2019 | CN | national |
The present application is a continuation-application of International (PCT) Patent Application No. PCT/CN2020/098600, filed on Jun. 28, 2020, which claims foreign priority of Chinese Patent Application No. 201910663302.X, filed on Jul. 22, 2019, the entire contents of which are hereby incorporated by reference in their entireties.
Number | Date | Country | |
---|---|---|---|
Parent | PCT/CN2020/098600 | Jun 2020 | US |
Child | 17580624 | US |