Disclosure of utility model
The utility model provides an atomization device which is used for solving the problem of high use cost of a heating non-burning cartridge.
In one embodiment, there is provided an atomizing device comprising:
a first housing provided with a suction nozzle;
the heating body is connected with one end of the first shell, which is opposite to the suction nozzle, and is provided with a heating cavity which is communicated with the suction nozzle and is used for installing an atomized matrix, and
The second shell is detachably connected with the first shell, an inserting groove is formed in one end, facing the first shell, of the second shell, and part or all of the heating body is detachably inserted into the inserting groove.
In one embodiment, one end of the heating body is connected with the first shell, and a slot extending along the axial direction is formed at the other end of the heating body.
In one embodiment, the heating chamber has an inner diameter smaller than an outer diameter of the atomized substrate in an unheated use.
In one embodiment, the inner wall of the insertion groove is provided with a protruding extrusion part, and the extrusion part is used for extruding the outer wall of the heating body so as to enable the heating body to hold the atomized substrate tightly.
In one embodiment, the inner wall of the heating chamber is provided with a protruding limiting portion, and the limiting portion is used for fixing the atomized substrate.
In one embodiment, a mounting hole is formed at one end of the first shell, which is opposite to the suction nozzle, the mounting hole is communicated with the suction nozzle, and one end of the heating body is inserted into the mounting hole.
In one embodiment, a protruding connection portion is disposed at an end of the first housing facing away from the suction nozzle, and the connection portion forms the mounting hole.
In one embodiment, a first magnetic attraction portion is disposed at one end of the first housing contacting the second housing, a second magnetic attraction portion is disposed at one end of the second housing contacting the first housing, and the first magnetic attraction portion and the second magnetic attraction portion can form magnetic attraction force to fixedly connect the first housing and the second housing.
In one embodiment, the heating body is a metal tube that can be heated by electromagnetic induction, an electromagnetic induction coil is disposed in the second housing, the electromagnetic induction coil surrounds the circumferential outer side of the insertion slot, and the electromagnetic induction coil is used for heating the heating tube.
In one embodiment, an electronic atomization device is provided, including a circuit board, a battery and the atomization device, where the battery board and the battery are located in the second housing, and the circuit board is electrically connected with the battery and the electromagnetic induction coil respectively.
According to the atomizing device and the electronic atomizing equipment, the first shell is connected with the heating body, the first shell is provided with the suction nozzle communicated with the heating cavity, the suction nozzle on the first shell can replace a suction nozzle section of a traditional heating non-combustion cartridge, and the suction nozzle is a part of the first shell and separated from the tobacco section, so that a hollow cooling section of the traditional heating non-combustion cartridge can be omitted, an atomizing substrate only comprising the tobacco section can be arranged in the heating cavity of the heating body of the atomizing device, the use cost of a user is greatly reduced, and an assembly formed by the first shell and the heating body is detachably connected with the second shell, so that the replacement of the atomizing substrate is facilitated.
Detailed Description
The utility model will be described in further detail below with reference to the drawings by means of specific embodiments. Wherein like elements in different embodiments are numbered alike in association. In the following embodiments, numerous specific details are set forth in order to provide a better understanding of the present utility model. However, one skilled in the art will readily recognize that some of the features may be omitted, or replaced by other elements, materials, or methods in different situations. In some instances, related operations of the present utility model have not been shown or described in the specification in order to avoid obscuring the core portions of the present utility model, and may be unnecessary to persons skilled in the art from a detailed description of the related operations, which may be presented in the description and general knowledge of one skilled in the art.
Furthermore, the described features, operations, or characteristics of the description may be combined in any suitable manner in various embodiments. Also, various steps or acts in the method descriptions may be interchanged or modified in a manner apparent to those of ordinary skill in the art. Thus, the various orders in the description and drawings are for clarity of description of only certain embodiments, and are not meant to be required orders unless otherwise indicated.
The numbering of the components itself, e.g. "first", "second", etc., is used herein merely to distinguish between the described objects and does not have any sequential or technical meaning. The term "coupled" as used herein includes both direct and indirect coupling (coupling), unless otherwise indicated.
In one embodiment, an atomizing device is provided, and an atomizing substrate used by the atomizing device is a heating non-combustion cartridge, and the atomizing device can use the heating non-combustion cartridge only comprising a tobacco section, so that a hollow cooling section and a suction nozzle section of the traditional heating non-combustion cartridge are omitted, and the use cost of the heating non-combustion cartridge is reduced. And, this atomizer is plug-in type detachable construction, can be through the mode quick replacement heating incombustible cigarette bullet of plug, can improve the change efficiency of heating incombustible cigarette bullet, and then improve user's use experience.
Referring to fig. 1 to 5, the atomizing device of the present embodiment mainly includes a first housing 1, a heating body 2 and a second housing 3, wherein the first housing 1 is fixedly connected with the heating body 2, the first housing 1 and the heating body 2 form a component, the first housing 1 and the second housing 3 are detachably connected, the first housing 1 and the second housing 3 have a connection state and a separation state, the first housing 1 and the second housing 3 are in butt joint in the connection state, the heating body 2 is inserted into the second housing 3, and the first housing 1 and the second housing 3 are separated in the separation state, the heating body 2 is pulled out of the second housing 3, and the heating body 2 is also separated from the second housing 3. The heating body 2 is used for detachably mounting the atomizing substrate 7, the atomizing substrate 7 only comprises a tobacco section of a traditional heating non-burning cartridge, the atomizing substrate 7 and the heating body 2 are inserted into the second shell 3 together in a connection state, a user can suck and use the atomizing substrate, the atomizing substrate 7 and the heating body 2 are separated from the second shell 3 together in a separation state, and the used atomizing substrate 7 can be separated from the heating body 2 to replace a new atomizing substrate 7 for use.
The first shell 1 belongs to an upper cover structure, a suction nozzle 11 is arranged at one end of the first shell 1, and the other end of the first shell 1, which is opposite to the suction nozzle 11, is fixedly connected with the heating body 2. The other end of the first shell 1, which is opposite to the suction nozzle 11, can be provided with a convex connecting part 12, the connecting part 12 is of a sleeve structure, the connecting part 12 is provided with a mounting hole, the mounting hole is communicated with the suction nozzle 11, one end of the heating body 2 is inserted and fixed in the mounting hole of the connecting part 12, the heating body 2 can be clamped in the mounting hole of the connecting part 12 in an interference fit manner, and the heating body 2 can also be fixed in the mounting hole of the connecting part 12 in a threaded connection manner.
In this embodiment, the first housing 1 is provided with the protruding connection portion 12, and the connection portion 12 not only can realize the fixed installation of the heating body 2, but also can be inserted into the second housing 3 when the first housing 1 and the second housing 3 are connected, so as to realize the limiting and fixing effect between the first housing 1 and the second housing 3.
In other embodiments, the other end of the first housing 1 facing away from the suction nozzle 11 may also be provided with a concave connection portion, where the concave connection portion is of a mounting hole structure, and one end of the heating body 2 is inserted and fixed in the concave connection portion, so that the fixed connection between the heating body 2 and the first housing 1 can be also realized, and the communication between the heating body 2 and the suction nozzle 11 is realized.
In this embodiment, the heating body 2 is a heating tube, which has a heating cavity 21 penetrating the heating tube, and the heating cavity 21 is used for installing the atomized substrate 7 in a plug-in manner. The heating tube is a metallic structure that can be heated to achieve circumferential heating of the atomized matrix 7 within the heating chamber 21.
The depth of the heating cavity 21 is equal to or slightly greater than the length of the atomized substrate 7, for example, when the atomized substrate 7 is 10-14mm, the depth of the atomized cavity 31 is 10-15mm, so that the whole atomized substrate 7 can be contained in the heating cavity 21, the heating cavity 21 heats the whole atomized substrate 7, and the heating atomization efficiency is improved.
The first housing 1 may be plastic or other materials with heat-resistant effect to block heat of the heating body 2 from being transferred to the suction nozzle 11, so as to avoid scalding users.
In this embodiment, the second housing 3 is a main body structure of the atomizing device, and an inserting groove 31 is disposed at an upper end of the second housing 3 (an end of the second housing 3 facing the first housing 1), and the inserting groove 31 extends into the second housing 3. The inner diameter and depth of the insertion groove 31 are adapted to the outer diameter and length of the heating body 2, so that the heating body 2 can be inserted into the insertion groove 31.
The depth of the insertion groove 31 is slightly greater than the length of the heating body 2, so that the connecting portion 12 of the first shell 1 and the heating body 2 can be inserted into the insertion groove 31, and the first shell 1 and the second shell 3 can be connected in an end face contact manner, so that a better sealing connection effect is achieved. And, heating member 2 wholly is located in grafting groove 31, is favorable to heating member 2's heating to heating member 2's heat preservation, improves heating efficiency.
In other embodiments, when one end portion of the heating body 2 is inserted into the first housing 1, most of the heating body 2 is located in the insertion groove 31, and heating of the atomized substrate 7 can also be achieved.
In this embodiment, the second housing 3 may include an outer housing 3a and an inner housing 3b, where the outer housing 3a is provided with an insertion port, the inner housing 3b is a cylindrical structure with one end open and the other end closed, and the inner housing 3b divides the cavity in the outer housing 3a into an insertion slot 31 and a receiving cavity 32, and the insertion slot 31 is aligned and communicated with the insertion port of the outer housing 3 a. The outer shell 3a and the inner shell 3b can be fixedly connected in a clamping or screw connection mode, and the outer shell 3a and the inner shell 3b can also be of an integrated structure.
Wherein, the bottom of the inserting groove 31 is provided with an air inlet, the bottom or the side of the shell 3a is provided with an air inlet, the accommodating cavity 32, the air inlet and the inserting groove 31 are sequentially communicated, so that the outside air can enter the heating cavity 21 of the heating body 2, namely, enter the atomizing substrate 7.
In this embodiment, the heating body 2 may be a metal tube that can be heated by electromagnetic induction, the electromagnetic induction coil 4 is disposed in the accommodating cavity 32 of the second housing 3, the electromagnetic induction coil 4 surrounds the circumferential outer side of the inserting slot 31, when the heating body 2 is inserted into the inserting slot 31, the electromagnetic induction coil 4 surrounds the circumferential outer side of the heating body 2, after the electromagnetic induction coil 4 is electrified, an induction magnetic field is formed to heat the heating body 2, and then the heating body 2 transfers heat energy generated by electromagnetic induction to the atomizing substrate 7 in the heating body 2 to bake the tobacco segment and generate smoke.
The electromagnetic induction coil 4 may be mounted and fixed on the outer side wall of the inner housing 3b, i.e. the electromagnetic induction coil 4 is fixed on the side wall of the inner housing 3b located in the accommodating chamber 32. The electromagnetic induction coil 4 is mounted on the outer side wall of the inner shell 3b, so that radial and axial alignment of the electromagnetic induction coil 4 and the heating body 2 can be realized more easily, and the heating efficiency of the heating body 2 is ensured.
In other embodiments, a mounting bracket may be disposed in the accommodating cavity 32 of the second housing 3, where the electromagnetic induction coil 4 is mounted on the mounting bracket, and the electromagnetic induction coil 4 may be aligned with the insertion slot 31 radially and axially.
In this embodiment, the electromagnetic induction coil 4 is used to heat the heating body 2, which is a non-contact heating with a space, and the heating body 2 is not effective to be connected with a heating source, so that the heating body 2 can be fixedly connected with the first housing 1 to form a component, that is, the heating body 2 can be inserted into and pulled out of the inserting slot 31 through connection and separation of the first housing 1 and the second housing 3, so that the atomized substrate 7 can be replaced conveniently.
In this embodiment, the first casing 1 and the second casing 3 may be fixed by magnetic attraction, one end of the first casing 1 facing the second casing 3 is provided with a first magnetic attraction portion 13, one end of the second casing 3 facing the first casing 1 is provided with a second magnetic attraction portion 33, the first magnetic attraction portion 13 and the second magnetic attraction portion 33 may be two magnetic blocks with different magnetic attraction, one of the first magnetic attraction portion 13 and the second magnetic attraction portion 33 is a magnetic block, the other is a metal block capable of being magnetically attracted, and both the first magnetic attraction portion 13 and the second magnetic attraction portion 33 may be magnetically attracted to each other.
The first magnetic attraction part 13 is inlaid in the end face of the first shell 1 facing one end of the second shell 3, or the first magnetic attraction part 13 is positioned in the first shell 1 and is close to the end face of the first shell 1 facing one end of the second shell 3, and the second magnetic attraction part 33 is inlaid in the end face of the second shell 3 facing one end of the first shell 1, or the second magnetic attraction part 33 is positioned in the second shell 3 and is close to the end face of the second shell 3 facing one end of the first shell 1. The first magnetic attraction part 13 and the second magnetic attraction part 33 are aligned, and the first casing 1 and the second casing 3 can be fixed in a plug-in mode through the magnetic attraction between the first magnetic attraction part 13 and the second magnetic attraction part 33.
The first casing 1 and the second casing 3 are fixed in a magnetic attraction mode, and the user can complete automatic magnetic attraction fixation by approaching the first casing 1 and the second casing 3, so that the use experience of the user for disassembling and assembling the first casing 1 and the second casing 3 can be improved.
In other embodiments, the first casing 1 and the second casing 3 may be detachably and fixedly connected by a buckle, a threaded connection, or the like.
In the present embodiment, the first housing 1 and the second housing 3 of the atomizing device include a connected use state and a separated state;
Referring to fig. 2, in a combined use state, the first shell 1 and the second shell 3 are magnetically connected, an atomization substrate 7 (only including a tobacco section) is installed in a heating cavity 21 of the heating body 2, and the heating body 2 is inserted into an insertion groove 31 of the second shell 3;
Referring to fig. 3, in the separated state, the first housing 1 is separated from the second housing 3, and the first housing 1 drives the heating body 2 to be separated from the second housing 3 together, in which state, a user can replace the atomized medium 7 in the heating body 2, take off the baked atomized medium, and load a new atomized medium 7.
In the atomizing device and the electronic atomizing equipment in the embodiment, as the first shell 1 is connected with the heating body 2, the first shell 1 is provided with the suction nozzle 11 communicated with the heating cavity 21, the suction nozzle 11 on the first shell 1 can replace a suction nozzle section of a traditional heating non-burning cartridge, and the suction nozzle 11 is a part of the first shell and is separated from a tobacco section, so that a hollow cooling section of the traditional heating non-burning cartridge can be omitted, the heating cavity 21 of the heating body 2 of the atomizing device can be provided with an atomizing substrate 7 only comprising the tobacco section, the use cost of a user is greatly reduced, and an assembly formed by the first shell 1 and the heating body 2 is detachably connected with the second shell 3 in a pluggable manner, and the replacement of the atomizing substrate 7 is facilitated.
In one embodiment, the outer wall of the heating body 2 may be mounted on a heating plate, the heating plate is a resistance heating structure, the heating plate may convert electric energy into heat energy, the heating plate is provided with a first electrical connection contact, a second electrical connection contact corresponding to the first electrical connection contact in position is disposed in the plugging slot 31 of the second housing 3, and the second electrical connection contact is connected with a power supply. After the assembly formed by the first shell 1 and the heating body 2 is inserted and installed with the second shell 3, the first electric connection contact is in contact electric connection with the second electric connection contact, so that the inserted power supply of the heating plate can be realized. The heating and baking of the atomized substrate 7 in the heating body 2 can also be realized by adopting the heating body 2 with the heating piece.
In one embodiment, the heating body 2 may also have a square tubular structure, and correspondingly, the electromagnetic induction coil 4 is arranged to be wound along the square tube, so that electromagnetic heating of the heating body 2 may also be achieved.
Referring to fig. 5, in one embodiment, the heating body 2 is a heating tube, one end of the heating tube is connected to the connecting portion 12 of the first housing 1, the other end of the heating tube is provided with a slot 22, the slot 22 extends from the end surface of the tube wall of the heating tube along the axial direction, and the slot 22 may extend to a position close to the connecting portion 12. The heating tube may be provided with one slot 22 or a plurality of slots 22, for example two symmetrical slots 22.
The heating tube is provided with slots 22, so that the heating tube has radial elasticity, can form clamping force to fix the atomized substrate 7 in the heating cavity 21, and can be radially opened to be beneficial to taking out the atomized substrate 7.
Of course, the heating pipe is not required to be provided with the slot 22, and the volume of the atomized substrate 7 is correspondingly reduced after baking, so that the atomized substrate 7 with reduced volume in the heating cavity 21 can be taken out by swinging the opening of the heating body 2 downwards when the atomized substrate 7 is replaced.
In one embodiment, on the basis that the heating body 2 is provided with the slot 22, the inner diameter of the heating cavity 21 can be slightly smaller than the outer diameter of the atomization matrix 7 in an unheated use state, so that after the heating cavity 21 is provided with a new unused atomization matrix 7, the atomization matrix 7 with larger outer diameter clamps the heated body 2, the atomization matrix 7 can be more firmly arranged in the heating cavity 21, the atomization matrix 7 can be prevented from sliding out when the first shell 1 and the second shell 3 are combined and arranged, the heating pipe is fully contacted with the atomization matrix 7, and the heat transmission efficiency, namely the baking efficiency of the heating pipe on the atomization matrix 7, is improved.
Referring to fig. 6, in an embodiment, on the basis that the heating body 2 (heating tube) is provided with the slot 22, the inner wall of the inserting slot 31 of the second housing 3 may be provided with a radially protruding extrusion portion 311, for example, a plurality of semi-spherical protrusions are provided in the inserting slot 31, or a plurality of ribs extending along the axial direction are provided, and the protruding limiting portion may be a slightly protruding structure, when the heating tube is inserted into the inserting slot 31, the protruding extrusion portion 311 extrudes the heating tube, so that the heating tube extrudes the atomized substrate 7 along the radial direction, that is, the heating tube is fully contacted with the atomized substrate 7, thereby improving the heat transmission efficiency, that is, improving the baking efficiency of the heating tube on the atomized substrate 7.
In an embodiment, the inner wall of the heating cavity 21 of the heating body 2 may be provided with a radially protruding limiting portion, for example, a plurality of semi-spherical protrusions are provided in the heating cavity 21, or a plurality of ribs extending along the axial direction are provided, the protruding limiting portion may be a slightly protruding structure, when the atomized substrate 7 is installed in the heating cavity 21, the protruding limiting portion may squeeze the atomized substrate 7, so that the atomized substrate 7 is limited and fixed in the heating cavity 21, and the stability of installation and fixation of the atomized substrate 7 may also be improved.
Referring to fig. 7, in one embodiment, the inner casing 3b has a cylindrical structure, the upper end and the lower end of the inner casing 3b in the axial direction are provided with radially protruding mounting portions 34, the mounting portions 34 may have a flange structure, the electromagnetic induction coil 4 is sleeved on the outer side surface of the inner casing 3b, and the electromagnetic induction coil 4 is axially limited by the two mounting portions 34. The installation of the installation portion 34 can realize the limit installation of the electromagnetic induction coil 4.
Referring to fig. 8, in one embodiment, an electronic atomization device is provided, which is different from any of the above embodiments in that the electronic atomization device further includes a circuit board 5 and a battery 6.
The electronic atomizing apparatus of the present embodiment includes the circuit board 5, the battery 6, and the atomizing device in any of the above embodiments.
The circuit board 5 and the battery 6 are installed in the second housing 3, specifically, the circuit board 5 and the battery 6 are installed in the accommodating cavity 32 of the second housing 3, and the circuit board 5 and the battery 6 are located in different cavities with the heating body 2.
The circuit board 5 is electrically connected with the battery 6 and the electromagnetic induction coil 4 respectively, the battery 6 is used for providing electric energy for the circuit board 5 and the electromagnetic induction coil 4, the circuit board 5 is used for controlling the electromagnetic induction coil 4 to start and stop heating, and the circuit board 5 can also be used for controlling the heating power of the electromagnetic induction coil 4.
The second casing 3 can also be equipped with the socket that charges far away from the one end of first casing 1, charges the socket and is connected with circuit board 5 electricity, charges the socket and can be connected with portable power source or commercial power, for battery 6 supplements the electric energy.
According to the electronic atomization device, as the first shell 1 is connected with the heating body 2, the first shell 1 is provided with the suction nozzle 11 communicated with the heating cavity 21, the suction nozzle 11 on the first shell 1 can replace a suction nozzle section of a traditional heating non-burning cartridge, and the suction nozzle 11 is a part of the first shell and is separated from a tobacco section, so that a hollow cooling section of the traditional heating non-burning cartridge can be omitted, an atomization substrate 7 only comprising the tobacco section can be installed in the heating cavity 21 of the heating body 2 of the atomization device, the use cost of a user is greatly reduced, and an assembly formed by the first shell 1 and the heating body 2 is detachably connected with the second shell 3, and the replacement of the atomization substrate 7 is facilitated.
The foregoing description of the utility model has been presented for purposes of illustration and description, and is not intended to be limiting. Several simple deductions, modifications or substitutions may also be made by a person skilled in the art to which the utility model pertains, based on the idea of the utility model.