Atomization equipment
By designing tiltable gear components in electronic atomization equipment and controlling the heating power mode using the position changes of the movable parts and induction parts, the problems of cumbersome heating power adjustment and poor accuracy in existing equipment are solved, and convenient and efficient power switching is achieved, improving user experience.
Patent Information
- Application Number
- CN202421629909.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-10
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-07-10
AI Technical Summary
When adjusting the heating power, the manual pressing or touching methods of existing electronic atomization equipment are cumbersome, and the accuracy is difficult to control, resulting in poor experience and fatigue in fingers.
A atomization device is designed, using a gear assembly composed of movable parts and induction parts in the shell, and the position of the movable parts is switched through the inclination of the shell, thereby controlling the contact state between the induction parts and the control panel, and switching different heating power modes are realized.
It realizes the convenient switching of different heating power modes without finger pressing or sliding, which improves the convenience and accuracy of operation, reduces user operation fatigue, and improves user experience.
Smart Images

Figure CN222954911U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of aerosol atomization, and particularly relates to an atomization device. Background Art
[0002] At present, the power adjustment modes in the electronic atomization industry generally adopt mechanical or touch modes. For example, common button operations are used to adjust the power, and a small number of them use touch or sliding to adjust the power. In the existing button operation for power adjustment, manual pressing for adjustment is cumbersome, or the buttons may fail or be pressed too many times, causing hand fatigue and pain, and the experience effect is poor. Touch or sliding for power adjustment is extremely difficult to control accurately. Either the adjusted power is lower than the expected power wattage, or it is higher than the expected power wattage. The operation is cumbersome and annoying, and the experience effect is poor. Currently, no matter which power adjustment mode is used, it still cannot free the fingers. Content of the Utility Model
[0003] The utility model provides an atomization device for solving the problem of poor experience effect in manually adjusting the heating power.
[0004] In one embodiment, an atomization device is provided, including:
[0005] A housing having a first installation cavity and a second installation cavity, where the first installation cavity is used for detachably or fixedly installing the atomization component;
[0006] A control board disposed in the second installation cavity and electrically connected to the atomization component to control the atomization component to heat the atomization matrix; and
[0007] A gear position component disposed in the second installation cavity. The gear position component includes an inner housing, a movable member, and a sensing member. The inner housing has a movable cavity with a first target position and a second target position. The movable member is movably disposed in the movable cavity and can move back and forth between the first target position and the second target position. Part or all of the sensing member is disposed in the movable cavity, and the sensing member is located at the first target position and is electrically connected to the control board;
[0008] The housing can drive the movable member to move in the movable cavity by tilting to switch between a first gear position and a second gear position. In the state of the first gear position, the movable member moves to the first target position, the movable member contacts the sensing member, the sensing member generates a sensing signal, and when the control board receives the sensing signal, it controls the atomization component to switch to the first heating power mode;
[0009] In the second gear state, the movable member moves to the second target position, the movable member is separated from the sensing member, the sensing member does not generate a sensing signal, and the control board does not receive the sensing signal, then the control board controls the atomization assembly to switch to the second heating power mode.
[0010] In one embodiment, the housing is a long strip structure, the housing has a central axis along the length direction, the activity chamber has a radial surface perpendicular to the central axis, and the first target position and the second target position are distributed on the radial surface.
[0011] In one embodiment, the housing is a flat structure, the circumferential outer side surface of the housing includes a wide surface and a narrow surface, and the housing has a middle dividing surface parallel to the wide surface; the activity chamber is a cavity extending in a straight line, the first target position and the second target position are located at both ends of the activity chamber, and the first target position and the second target position are located on both sides of the middle dividing surface.
[0012] In one embodiment, the wide surface of the housing includes a first wide surface and a second wide surface, a first identifier is provided on the first wide surface, the first identifier corresponds to the first gear, a second identifier is provided on the second wide surface, and the second identifier corresponds to the second gear.
[0013] In one embodiment, the activity chamber has a bottom surface, the bottom surface is the activity surface of the movable member, grooves are provided at both ends of the bottom surface, the groove at one end of the bottom surface forms the first target position, and the groove at the other end of the bottom surface forms the second target position.
[0014] In one embodiment, a transition arc surface connected to the bottom surface is provided at the opening of the groove; and / or, the bottom surface is an arc surface, and the middle part of the bottom surface protrudes.
[0015] In one embodiment, the movable member is a roller or a ball.
[0016] In one embodiment, the sensing member includes two electrical contacts, the movable member is a conductive structure, and when the movable member contacts the sensing member, the movable member is electrically connected to both electrical contacts at the same time; or, the sensing member is a pressure sensor or a gravity sensor.
[0017] In one embodiment, a start sensor is further included. An air intake passage is provided in the housing. The start sensor is communicated with the air intake passage. The start sensor is electrically connected to the control board. The start sensor is used to trigger the control board to control the atomization assembly to start heating and stop heating.
[0018] In one embodiment, a conductive terminal is provided in the first installation cavity. The conductive terminal is electrically connected to the control board and is used for electrically connecting to the conductive part of the atomization component.
[0019] In one embodiment, an atomization device is provided, including:
[0020] A housing;
[0021] An atomization component disposed within the housing;
[0022] A control board disposed within the housing and electrically connected to the atomization component to control the atomization component to heat and atomize the matrix; and
[0023] A gear position component disposed within the housing. The gear position component includes an inner housing, a movable member, and a sensing member. The inner housing has a movable cavity with a first target position and a second target position. The movable member is movably disposed within the movable cavity and can move back and forth between the first target position and the second target position. Part or all of the sensing member is disposed within the movable cavity, and the sensing member is located at the first target position and is electrically connected to the control board;
[0024] The housing can drive the movable member to move within the movable cavity by tilting to switch between the first gear position and the second gear position. In the first gear position state, the movable member moves to the first target position, the movable member contacts the sensing member, and the sensing member generates a sensing signal. When the control board receives the sensing signal, it controls the atomization component to switch to the first heating power mode;
[0025] In the second gear position state, the movable member moves to the second target position, the movable member separates from the sensing member, the sensing member does not generate a sensing signal, and when the control board does not receive the sensing signal, it controls the atomization component to switch to the second heating power mode.
[0026] According to the atomization device of the above embodiment, since the movable member within the gear position component can tilt and move to the first target position and the second target position to switch between the first gear position and the second gear position, and the first gear position and the second gear position have different heating powers, the user only needs to control different tilting states of the housing to achieve the switching of different heating power modes. The user does not need to adjust the power with fingers, which can improve the convenience and accuracy of power adjustment, reduce the user's operation fatigue, and have a better user experience effect. Description of the Drawings
[0027] Figure 1 It is a cross-sectional view of the atomization device along the middle dividing plane parallel to the wide surface in one embodiment;
[0028] Figure 2 is a cross-sectional view of an atomizing device along a middle plane parallel to the wide surface in an embodiment;
[0029] Figure 3 is a cross-sectional view of an atomizing device along a middle plane parallel to the narrow surface in an embodiment;
[0030] Figure 4 is an exploded view of an atomizing device in an embodiment;
[0031] Figure 5 is a top cross-sectional view of a control board and a gear position assembly in an embodiment;
[0032] Figure 6 is a side cross-sectional view of a control board and a gear position assembly in an embodiment;
[0033] Figure 7 is the usage state of the atomizing device in the first gear position state in an embodiment;
[0034] Figure 8 is the usage state of the atomizing device in the second gear position state in an embodiment.
[0035] The reference numerals are as follows:
[0036] 1 - housing, 11 - first installation cavity, 12 - second installation cavity, 13 - sealing silica gel, 14 - conductive terminal, 15 - mounting bracket, 16 - microphone head silica gel, 17 - first wide surface, 18 - second wide surface;
[0037] 2 - control board;
[0038] 3 - gear position assembly, 31 - inner housing, 311 - movable cavity, 3111 - first target position, 3112 - second target position, 32 - movable part, 33 - sensing part;
[0039] 4 - battery;
[0040] 5 - atomizing assembly, 51 - heating element, 52 - conductive part;
[0041] 6 - start sensor. Detailed implementation manners
[0042] The following further elaborates on the present utility model in detail through specific embodiments in conjunction with the accompanying drawings. Similar elements in different embodiments are labeled with related similar element numbers. In the following embodiments, many detailed descriptions are provided to enable a better understanding of this application. However, those skilled in the art can easily recognize that some of the features can be omitted in different situations, or can be replaced by other elements, materials, or methods. In some cases, some operations related to this application are not shown or described in the specification to avoid overwhelming the core part of this application with excessive descriptions. For those skilled in the art, it is not necessary to describe these related operations in detail, and they can fully understand the related operations based on the descriptions in the specification and general technical knowledge in the field.
[0043] In addition, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments. At the same time, the steps or actions in the method description can also be reordered or adjusted in a manner obvious to those skilled in the art. Therefore, the various sequences in the specification and drawings are only for clearly describing a certain embodiment and do not mean that they are necessary sequences, unless it is stated that a certain sequence must be followed.
[0044] The serial numbers assigned to the components herein, such as "first", "second", etc., are only used to distinguish the described objects and do not have any sequential or technical meaning. And the "connection" and "coupling" mentioned in this application, unless otherwise specified, both include direct and indirect connection (coupling).
[0045] Please refer to Figures 2 to 8 , in one embodiment, an atomization device is provided. This atomization device has two gears with different heating powers. Users can operate the atomization device in different forward and backward tilting states to switch between the two gears, so as to switch to the corresponding heating power for inhalation to meet the usage needs of users. The forward and backward tilting switching method of this atomization device is simple, efficient, and accurate, without the need for finger pressing or sliding operations, liberating the fingers, reducing the fatigue and pain of finger operations, and having a better user experience.
[0046] In this embodiment, the atomization device mainly includes a housing 1, a control board 2, and a gear component 3. The atomization device also includes components such as a battery 4.
[0047] The housing 1 further has a first installation cavity 11 and a second installation cavity 12. The first installation cavity 11 is used for detachably plugging in the atomization component 5, and the atomization component 5 can be used as a consumable for replacement. One end of the first installation cavity 11 away from the second installation cavity 12 has an opening, and the atomization component 5 can be inserted into the first installation cavity 11 from the opening of the first installation cavity 11. The housing 1 may further include a mouthpiece, and the mouthpiece is detachably installed at one end of the housing 1. The mouthpiece can cover the first installation cavity 11 to fix the atomization component 5 in the housing 1.
[0048] In other embodiments, the housing 1 may not include a mouthpiece. The atomization component 5 has its own mouthpiece structure, and the atomization component 5 can be directly used after being plugged into the first installation cavity 11 of the housing 1.
[0049] Please refer to Figure 1 , in other embodiments, the atomization device may also include the atomization component 5. The atomization component 5 is used as an accessory and is detachably connected to the housing 1. When in use, the atomization component 5 is plugged into the first installation cavity 11 of the housing 1 for use.
[0050] In other embodiments, the atomization device may also include the atomization component 5. The atomization component 5 is fixedly installed in the housing 1, and the atomization component 5 is fixedly installed in the first installation cavity 11. The atomization component 5 may be a heating structure for heating a liquid cigarette oil-like atomization matrix, or the atomization component 5 may also be a heating structure for plugging a cigarette stick-like atomization matrix. Taking the atomization component 5 as a heating structure for heating a liquid cigarette oil-like atomization matrix as an example, the atomization component 5 is provided with a heating body 51. The atomization component 5 further includes components such as a liquid storage cavity and a liquid storage matrix. The heating body 51 can be used to heat the liquid cigarette oil-like atomization matrix. A conductive part 52 is provided at the end of the atomization component 5, and the conductive part 52 is electrically connected to the heating body 51.
[0051] In other embodiments, the atomization device may also include the atomization component 5. The housing 1 has a cavity, and the atomization component 5, the control board 2, and the gear component 3 are all installed in this cavity. The atomization component 5, the control board 2, and the gear component 3 are respectively fixed at different positions in the cavity.
[0052] In this embodiment, a sealing silicone 13 is installed in the housing 1. The sealing silicone 13 divides the cavity in the housing 1 into a first installation cavity 11 and a second installation cavity 12. Components such as the control board 2, the gear component 3, and the battery 4 are installed in the second installation cavity 12.
[0053] In this embodiment, a conductive terminal 14 may be provided at the bottom of the first installation cavity 11. The conductive terminal 14 protrudes from the bottom of the first installation cavity 11. The other end of the conductive terminal 14 passes through the sealing silica gel 13 and is electrically connected to the control board 2. The conductive terminal 14 is used to be electrically connected to the conductive part 52 of the atomization component 5. The control board 2 is also electrically connected to the battery 4. The control board 2 is electrically connected to the heating element 51 of the atomization component 5 through the conductive terminal 14. The control board 2 is used to control the heating power of the atomization component 5.
[0054] An installation frame 15 is provided in the second installation cavity 12. The battery 4 can be installed on the installation frame 15. The installation frame 15 can be fixedly connected to the housing 1 by means of snap connection, screw connection, etc. The installation frame 15 can also be an integral structure with the housing 1.
[0055] In this embodiment, the gear position component 3 includes an inner housing 31, a movable member 32 and a sensing member 33. The inner housing 31 can be fixedly installed on the control board 2, or the inner housing 31 can be directly installed on the inner side wall of the housing 1. The inner housing 31 has a movable cavity 311. The movable member 32 is movably installed in the movable cavity 311. The movable member 32 can roll in the movable cavity 311.
[0056] Among them, the height of the movable cavity 311 is slightly greater than the height of the movable member 32, which can prevent the movable member 32 from running around in the movable cavity 311 and play a role in limiting.
[0057] The movable cavity 311 has a first target position 3111 and a second target position 3112. The movable member 32 can move back and forth between the first target position 3111 and the second target position 3112.
[0058] Part of the sensing member 33 is arranged in the movable cavity 311 and is located at the first target position 3111. Part of the sensing member 33 can be exposed outside the movable cavity 311 and is electrically connected to the control board 2. The exposed part of the sensing member 33 can be directly electrically connected to the control board 2 by means of welding, etc., or the exposed part of the sensing member 33 can be electrically connected to the control board 2 through a cable. The sensing member 33 can also be entirely located in the movable cavity 311, and the sensing member 33 is electrically connected to the control board 2 through a conductive connector such as a circuit.
[0059] The sensing member 33 can include two electrical contacts in the shape of gold fingers. The movable member 32 is a conductive structure such as a conductive metal roller. When the movable member 32 rolls to the first target position 3111, the movable member 32 contacts the sensing member 33, and the movable member 32 contacts the two electrical contacts simultaneously, so that the two electrical contacts are turned on and a trigger signal can be generated. After the control board 2 receives the trigger signal, it controls the atomization component 5 to switch to the heating power of the first gear position.
[0060] In other embodiments, the movable member 32 may also be a metal ball with a relatively large diameter. The distance between the two electrical contacts is less than the diameter of the metal ball, and the metal ball can also achieve electrical connection with the two electrical contacts simultaneously, so as to trigger the induction member 33 to generate a trigger signal.
[0061] In this embodiment, the housing 1 is a long strip structure. The housing 1 has a central axis along the length direction. The movable cavity 311 has a radial plane perpendicular to the central axis, and the first target position 3111 and the second target position 3112 are located on this radial plane. It should be noted that the first target position 3111 and the second target position 3112 being located on the radial plane means that the first target position 3111 and the second target position 3112 are distributed along the radial plane, that is, the first target position 3111 and the second target position 3112 are distributed along the radius of the housing 1. With such a setting, tilting the housing 1 in different directions can cause the movable member 32 to roll to different target positions.
[0062] In this embodiment, the housing 1 is a long and flat structure. The circumferential side surface of the housing 1 includes a wide surface and a narrow surface. The housing 1 has a middle dividing surface parallel to the wide surface, where the wide surface includes a first wide surface 17 and a second wide surface 18 that are parallel to each other. The movable cavity 311 is a cavity extending along a straight line. The middle dividing surface is located at both ends of the movable cavity 311, and the first target position 3111 and the second target position 3112 are located on both sides of the middle dividing surface of the housing 1. With such a setting, flipping and tilting the housing 1 can achieve controlling the movable member 32 to move back and forth between the first target position 3111 and the second target position 3112, and the operation is simple.
[0063] In this embodiment, the two gears that the gear position assembly 3 realizes switching between are two heating power gears with different heating power magnitudes. When the movable member 32 rolls to the first target position 3111, the first heating power mode is triggered. When the movable member 32 rolls to the second target position 3112, the second heating power mode is triggered. The first heating power mode and the second heating power mode have different heating power magnitudes, and the user can switch to the corresponding power mode according to the demand.
[0064] In this embodiment, the atomizing device can switch between the first gear and the second gear by tilting forward and backward:
[0065] Please refer to Figure 7 , when the user tilts the housing 1 with the first wide surface 17 facing up, in the first gear state, the movable cavity 311 tilts, the first target position 3111 is lower than the second target position 3112, and the movable member 32 rolls under the action of gravity and rolls to the first target position 3111. At this time, the movable member 32 contacts the induction member 33, and the induction member 33 generates a trigger signal. When the control board 2 receives this trigger signal, it controls the atomizing assembly 5 to switch to the first heating power mode;
[0066] Please refer toFigure 8 When the user flips the housing 1 by 180° so that it is inclined on the second wide surface 18 (the wide surface parallel to the first wide surface 17) and is in the second gear state, the movable cavity 311 is inclined in the reverse direction, the second target position 3112 is lower than the first target position 3111, and the movable member 32 rolls to the other end under the action of gravity and rolls to the second target position 3112. At this time, the movable member 32 is separated from the sensing member 33, the sensing member 33 does not generate a trigger signal, and the control board 2 does not receive this trigger signal, so the control atomization assembly 5 is switched to the second heating power mode.
[0067] In this embodiment, an air intake channel is further provided in the housing 1, and the atomization device further includes a start sensor 6 (also called a microphone), the start sensor 6 is communicated with the air intake channel, the start sensor 6 is also electrically connected to the control board 2, and the start sensor 6 is used to detect the air pressure in the air intake channel. When the user sucks, an air flow will be generated in the air intake channel, the air pressure drops, and when the start sensor 6 detects the drop in air pressure, it triggers the control board 2 to control the atomization assembly 5 to start heating; when the user stops sucking, no air flow is generated in the air intake channel, the air pressure rises, and when the start sensor 6 detects the rise in air pressure, it triggers the control board 2 to control the atomization assembly 5 to stop heating.
[0068] A microphone silica gel 16 is further provided in the second installation cavity 12. The microphone silica gel 16 serves as a sealing structure for the start sensor 6, and the microphone silica gel 16 wraps the start sensor 6 to improve the airtightness of the connection between the start sensor 6 and the air intake channel.
[0069] In other embodiments, the atomization device may also be provided with a key switch, the key switch is electrically connected to the control board 2, and the start heating and stop heating of the atomization assembly 5 can also be realized through the key switch.
[0070] In the atomization device of this embodiment, since the movable member 32 in the gear assembly 3 can be inclined and moved to the first target position 3111 and the second target position 3112 to switch between the first gear and the second gear, and the first gear and the second gear have different heating powers, the user only needs to control different inclination states of the housing 1 to realize the switching of different heating power modes. The user does not need to adjust the power with fingers, which can improve the convenience and accuracy of power adjustment, reduce the user's operation fatigue, and have a better use experience effect.
[0071] The gear component 3 in this embodiment is also combined with the user's suction use state, so that the gears can be engaged in the normal suction state without affecting the user's suction posture. Specifically, when the user is sucking normally, the atomization device is generally in an inclined state. This gear component 3 utilizes the characteristic of the inclined smoking device during sucking. When the atomization device is tilted with different wide faces facing up, the atomization device is still in the normal inclined state for the user to suck, without the need to adjust the atomization device to other inclined states different from the normal inclined state, which can improve the user experience.
[0072] Please refer to Figure 6 , in an embodiment, the movable cavity 311 has a bottom surface, which is the surface in the movable cavity 311 away from the first installation cavity 11. The bottom surface of the movable cavity 311 is the movable surface of the movable member 32, and a groove is provided on the bottom surface, and this groove forms the target position. For example, grooves are provided at both ends of the bottom surface, the groove at one end forms the first target position 3111, and the groove at the other end forms the second target position 3112. The setting of the groove enables the movable member 32 to stop stably at the corresponding target position, ensuring the accuracy and stability of switching between different gears.
[0073] The opening of the groove has a transition arc surface connected to the bottom surface of the movable cavity 311, so that when the user switches the housing 1 to different inclined states, it is easier for the movable member 32 to roll into and out of the groove (target position), which can improve the smoothness of the movement of the movable member 32.
[0074] The bottom surface of the movable cavity 311 can be set as an arc surface, with the middle part of the bottom surface protruding. When the movable member 32 passes over the middle part of the bottom surface, it will roll to the corresponding target position faster, which can prevent the movable member 32 from accidentally rolling to other target positions and also prevent the movable member 32 from stopping at the middle position of the bottom surface.
[0075] In an embodiment, the sensing member 33 can also be other sensing components. For example, the sensing member 33 is also a pressure sensor or a gravity sensor. When the movable member 32 rolls into contact with the sensing member 33, the pressure sensor or the gravity sensor will detect a change in pressure or gravity and can also generate a corresponding trigger signal to control the atomization component 5 to switch the heating mode.
[0076] In an embodiment, a gear mark can be provided on the outer circumferential surface of the housing. For example, a first mark is provided on the first wide surface 17 of the housing 1, and the first mark corresponds to the first gear. A second mark is provided on the second wide surface 18, and the second mark corresponds to the second gear. When the first mark is tilted upwards, it means that the first wide surface 17 is facing up, and the first heating power mode corresponding to the first gear is switched; when the second mark is tilted upwards, it means that the second wide surface 18 is facing up, and the second heating power mode corresponding to the second gear is switched. The setting of the gear mark allows the user to clearly know the switched gear and avoid the user switching to the wrong heating power mode for sucking.
[0077] The above uses specific examples to elaborate on the present utility model, which is only used to help understand the present utility model and is not intended to limit the present utility model. For those skilled in the technical field to which the present utility model pertains, based on the idea of the present utility model, several simple deductions, deformations or substitutions can also be made.
Claims
1. An atomization device, characterized in that: include: A housing, wherein the housing has a first mounting cavity and a second mounting cavity, wherein the first mounting cavity is used for a detachable atomizer assembly; A control board, the control board is arranged in the second mounting cavity and is used to be electrically connected to the atomizing assembly to control the atomizing assembly to heat the atomized substrate; as well as a shift assembly, the shift assembly being arranged in the second mounting cavity, the shift assembly comprising an inner shell, a movable member and a sensing member, the inner shell having a movable cavity, the movable cavity having a first target position and a second target position, the movable member being movably arranged in the movable cavity, the movable member being movable back and forth between the first target position and the second target position, part or all of the sensing member being arranged in the movable cavity, and the sensing member being located at the first target position, and the sensing member being electrically connected to the control board; The housing can drive the movable member to move in the movable chamber by tilting to switch between the first gear and the second gear. In the first gear state, the movable member moves to the first target position, the movable member contacts the sensing member, the sensing member generates a sensing signal, and the control panel receives the sensing signal, and then controls the atomization component to switch to the first heating power mode. In the second gear state, the movable part moves to the second target position, the movable part is separated from the sensing part, the sensing part does not generate a sensing signal, and the control board does not receive the sensing signal, then the atomization assembly is controlled to switch to the second heating power mode.
2. The atomizing device according to claim 1, characterized in that The shell is a long strip structure, and the shell has a central axis along the length direction. The activity chamber has a radial surface perpendicular to the central axis, and the first target position and the second target position are distributed on the radial surface.
3. The atomizing device according to claim 2, characterized in that: The shell is a flat structure, the circumferential outer side surface of the shell includes a wide surface and a narrow surface, and the shell has a center dividing surface parallel to the wide surface; the active cavity is a cavity extending along a straight line, the first target position and the second target position are located at both ends of the active cavity, and the first target position and the second target position are located on both sides of the center dividing surface.
4. The atomizing device according to claim 3, characterized in that: The wide surface of the housing includes a first wide surface and a second wide surface, the first wide surface is provided with a first mark corresponding to the first gear position, and the second wide surface is provided with a second mark corresponding to the second gear position.
5. The atomizing device according to claim 1, characterized in that: The movable cavity has a bottom surface, which is the movable surface of the movable part. Both ends of the bottom surface are provided with grooves. The groove at one end of the bottom surface forms the first target position, and the groove at the other end of the bottom surface forms the second target position.
6. The atomizing device according to claim 5, characterized in that The opening of the groove has a transition arc surface connected to the bottom surface; and / or the bottom surface is an arc surface, and the middle part of the bottom surface is convex.
7. The atomizing device according to claim 1, characterized in that The movable part is a roller or a ball.
8. The atomizing device according to claim 1, characterized in that: The sensing element includes two electrical contacts, the movable element is a conductive structure, and when the movable element contacts the sensing element, the movable element is electrically connected to the two electrical contacts at the same time; or, the sensing element is a pressure sensor or a gravity sensor.
9. The atomizing device according to claim 1, characterized in that: It also includes a start sensor, the shell has an air intake passage, the start sensor is connected to the air intake passage, the start sensor is electrically connected to the control board, and the start sensor is used to trigger the control board to control the atomization component to start heating and stop heating.
10. The atomizing device according to claim 1, characterized in that: A conductive terminal is provided in the first installation cavity, the conductive terminal is electrically connected to the control board, and the conductive terminal is used to be electrically connected to the conductive part of the atomizer assembly.
11. An atomization device, characterized in that: include: shell; an atomizing assembly, wherein the atomizing assembly is disposed in the housing; A control panel, the control panel is disposed in the housing and is electrically connected to the atomizing assembly to control the atomizing assembly to heat the atomized substrate; as well as a shift assembly, the shift assembly is arranged in the outer shell, the shift assembly comprises an inner shell, a movable part and a sensing part, the inner shell has a movable cavity, the movable cavity has a first target position and a second target position, the movable part is movably arranged in the movable cavity, the movable part can move back and forth between the first target position and the second target position, part or all of the sensing part is arranged in the movable cavity, and the sensing part is located at the first target position, and the sensing part is electrically connected to the control board; The housing can drive the movable member to move in the movable chamber by tilting to switch between the first gear and the second gear. In the first gear state, the movable member moves to the first target position, the movable member contacts the sensing member, the sensing member generates a sensing signal, and the control panel receives the sensing signal, and then controls the atomization component to switch to the first heating power mode. In the second gear state, the movable part moves to the second target position, the movable part is separated from the sensing part, the sensing part does not generate a sensing signal, and the control board does not receive the sensing signal, then the atomization assembly is controlled to switch to the second heating power mode.