Air adjusting assembly and atomizing device
By designing a dual-operation air conditioning component in the atomizing device, the problem of accidental operation by children is solved, achieving higher safety and operational difficulty, and reducing the risk of accidental activation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HG INNOVATION LTD
- Filing Date
- 2025-04-23
- Publication Date
- 2026-05-29
AI Technical Summary
The switch structure of existing nebulizers is easily operated by children, leading to a high risk of accidental activation and ingestion.
Design an air regulating component that switches between locked and unlocked states through dual operation (rotation or translation) of the operating element, controls the connection of the air inlet of the sliding element, and increases the difficulty of unlocking the air intake function.
This effectively reduces the risk of children accidentally activating the nebulizer and improves operational safety.
Smart Images

Figure CN224291304U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of atomization technology, and in particular to an air regulating component and an atomizing device. Background Technology
[0002] Atomizing devices are electronic products that convert atomizing substrates into aerosols / mist through an atomizer. In the existing technology, some atomizing devices are designed with switches to control the atomization function, but these switches usually only require a single operation to trigger the atomization function, which is easily mastered by children. This poses a high risk of children accidentally operating the atomizing device and may lead to accidental ingestion. Utility Model Content
[0003] The technical problem to be solved by this application is to provide an improved air conditioning component and atomizing device that can reduce the risk of children accidentally activating the atomizing device.
[0004] In some embodiments, an atomizing device is provided, comprising a housing and an air regulating assembly; the housing has a first air inlet; the air regulating assembly is correspondingly disposed at the first air inlet; the air regulating assembly includes a slider and an operating member for driving the slider to slide; the slider has at least one second air inlet, and the operating member has a locked state and an unlocked state; in the locked state, the position of the operating member is locked, and the first air inlet and all of the second air inlets are not connected; in the unlocked state, the operating member can drive the slider to a position where the first air inlet and at least one of the second air inlets are connected; the operating member is configured to rotate or translate relative to the slider, thereby controlling the switching of the operating member between the locked state and the unlocked state.
[0005] In some embodiments, the housing further has a first groove, and the operating member has a lever portion, wherein, in the unlocked state, the lever portion is slidable along the first groove.
[0006] In some embodiments, the slider has an air intake closed position and an air intake open position relative to the first slide groove; the operating member drives the slider to slide relative to the first slide groove, thereby enabling the slider to move to the air intake closed position and the air intake open position.
[0007] In some embodiments, the rod has a first feature surface and a second feature surface, wherein the rod is configured to slide along the first groove when the first feature surface and the opening of the first groove are aligned; and the rod cannot slide along the first groove when the second feature surface and the opening of the first groove are aligned.
[0008] In some embodiments, the first feature surface is a narrow side and the second feature surface is a wide side; wherein, the width of the first groove along the first direction is less than the width of the wide side along the first direction; the width of the first groove along the first direction is greater than the width of the narrow side along the first direction; the operating member is configured to align the narrow side and the first groove by rotation, so that the rod portion can slide along the first groove.
[0009] In some embodiments, the slider further has a mounting hole, the operating member includes an operating portion and the rod portion, the operating portion being located on a first side of the mounting hole, and the rod portion passing through the mounting hole and partially located on a second side of the mounting hole.
[0010] In some embodiments, the rod portion includes a rotating portion partially passing through the mounting hole and a limiting portion located on a second side of the mounting hole, wherein the width of the rotating portion is smaller than the width of the mounting hole, and the width of the limiting portion is larger than the width of the mounting hole.
[0011] In some embodiments, the housing includes an outer shell and a support, the outer shell forming a receiving cavity, the support and the air regulating assembly being disposed in the receiving cavity; a first air inlet is formed on the outer shell, the air regulating assembly being located between the support and the outer shell; a first groove is formed on the surface of the support facing the outer shell.
[0012] In some embodiments, the atomizing device further includes a power supply unit mounted on the bracket; and / or, the atomizing device further includes a main control board and an airflow sensor, the main control board being mounted on the bracket; the airflow sensor being connected to the main control board; the operating member being capable of driving the sliding member to a position where the first air inlet, at least one second air inlet, and the airflow sensor are connected.
[0013] In some embodiments, the housing further has a second slide groove adapted to the slider; in the unlocked state, the operating member can drive the slider to move along the second slide groove to a position where the first air inlet and at least one of the second air inlets are connected.
[0014] In some embodiments, an air regulating assembly is provided, including a slider and an operating member; the slider has an air intake closed position and an air intake open position; the operating member is used to drive the slider to slide; the operating member has a locked state and an unlocked state; in the locked state, the position of the operating member is locked and the slider is in the air intake closed position; in the unlocked state, the operating member can drive the slider to the air intake open position; the operating member is configured to rotate or translate relative to the slider, thereby controlling the switching of the operating member between the locked state and the unlocked state.
[0015] According to the above embodiments, the air conditioning component and atomizing device are configured to rotate or translate relative to the sliding component, thereby controlling the switching between the locked and unlocked states of the operating component. When the user needs to unlock the air intake function, he / she needs to first rotate or translate the operating component to switch the operating component to the unlocked state, and then operate the operating component to move the sliding component to the air intake open position. That is, the air intake function of the atomizing device can only be unlocked through double operation, which increases the difficulty of unlocking the air intake function and is relatively difficult for children to master, thereby reducing the risk of children accidentally starting the atomizing device. Attached Figure Description
[0016] Figure 1 These are schematic diagrams of the assembly structure of the gas regulating component in some embodiments;
[0017] Figure 2 yes Figure 1 The exploded structural diagram of the air conditioning component is shown.
[0018] Figure 3 This is a schematic diagram of the atomizing device in some embodiments when the operating member is in the locked state and the sliding member is in the air intake closed position;
[0019] Figure 4 yes Figure 3 A schematic diagram of the vertical cross-sectional structure of the atomizing device shown;
[0020] Figure 5 This is a schematic diagram of the atomizing device in some embodiments when the operating component is in the unlocked state and the sliding component is in the air intake closed position;
[0021] Figure 6 This is a schematic diagram of the atomizing device in some embodiments when the slider is in the unlocked state and the slider is in the air intake open position;
[0022] Figure 7 yes Figure 6 A schematic diagram of the vertical cross-sectional structure of the atomizing device shown;
[0023] Figure 8This is a partial structural schematic diagram of the atomizing device in some embodiments when the wide side of the rod is aligned with the first groove;
[0024] Figure 9 This is a partial structural schematic diagram of the atomizing device in some embodiments when the narrow side of the rod is aligned with the first groove;
[0025] Figure 10 These are schematic cross-sectional views of the gas regulating components in some embodiments;
[0026] Figure 11 This is an exploded structural diagram of the atomizing device in some embodiments;
[0027] The reference numerals in the attached figures are as follows:
[0028] 1-Housing shell, 10-First air inlet, 11-Bracket, 12-Outer shell, 14-First slide groove, 15-Second slide groove;
[0029] 20-Second air inlet, 21-Sliding member, 210-Mounting hole, 22-Operating member, 221-Rod, 2211-Narrow side, 2212-Wide side, 2213-Rotating part, 2214-Limiting part, 222-Operating part, 223-Indicating part;
[0030] 31-Power supply unit, 32-Main control board. Detailed Implementation
[0031] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments. Similar elements in different embodiments are referred to by related similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of the present application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to the present application are not shown or described in the specification. This is to avoid obscuring the core parts of the present application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.
[0032] Furthermore, 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 be rearranged or adjusted in a manner obvious to those skilled in the art. Therefore, the various orders in the specification and drawings are only for the clear description of a particular embodiment and do not imply a necessary order, unless otherwise stated that a particular order must be followed.
[0033] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages).
[0034] Please see Figure 1 and Figure 2 In some embodiments, an air regulating component is provided, which includes a slider 21 and an operating component 22 for driving the slider 21 to slide.
[0035] The slider 21 has an air intake closed position and an air intake open position. When the slider 21 is in the air intake closed position, airflow cannot pass through it. When the slider 21 is in the air intake open position, airflow can pass through one side of the slider 21 to the other side. Specifically, the slider 21 has at least one second air intake hole 20 that extends through opposite sides of the slider 21. When the slider 21 is in the air intake closed position, airflow cannot pass through the second air intake hole 20. When the slider 21 is in the air intake open position, airflow can pass through the second air intake hole 20 from one side of the slider 21 to the other side, thereby achieving the air intake function.
[0036] The operating element 22 has a locked state and an unlocked state; in the locked state, the position of the operating element 22 is locked and the slider 21 is in the air intake closed position; in the unlocked state, the operating element 22 can drive the slider 21 to the air intake open position. Furthermore, the operating element 22 is configured to rotate or translate relative to the slider 21, thereby controlling the switching of the operating element 22 between the locked state and the unlocked state.
[0037] Therefore, according to the above-mentioned air adjustment component, when the user needs to unlock the air intake function, he / she needs to first rotate or move the operating component 22 to switch the operating component 22 to the unlocked state, and then operate the operating component 22 to move the sliding component 21 to the air intake open position. That is, the air intake function of the sliding component 21 can only be unlocked through double operation, which increases the difficulty of unlocking the air intake function and is relatively difficult for children to master, thus having the function of child lock.
[0038] Another function of the air conditioning component is to adjust the air intake of the atomizer, providing users with customizable suction resistance.
[0039] Please see Figures 3 to 7 In some embodiments, an atomizing device is provided, comprising a housing 1 and an air regulating assembly. The housing 1 has a first air inlet 10. The air regulating assembly is correspondingly disposed at the first air inlet 10.
[0040] The air regulating assembly includes a slider 21 and an operating member 22 for driving the slider 21 to slide. The slider 21 has at least one second air inlet 20, and the operating member 22 has a locked state and an unlocked state.
[0041] like Figure 3 As shown, when the operating member 22 is in the locked state, its position is locked, meaning the relative position between the operating member 22 and the housing 1 is locked, and the relative position between the sliding member 21 and the housing 1 is also locked. The first air inlet 10 on the housing 1 and all the second air inlets 20 on the sliding member 21 are not connected, preventing air from the outside of the housing 1 from entering the inside of the housing 1 through the first air inlet 10 and the second air inlets 20. Thus, the air intake function of the atomizing device is blocked.
[0042] When the first air inlet 10 and the second air inlet 20 on the sliding member 21 are not connected, the first air inlet 10 and the second air inlet 20 are misaligned, making it difficult for the airflow to pass continuously through the first air inlet 10 and the second air inlet 20, or only a small portion of the airflow can pass continuously through the first air inlet 10 and the second air inlet 20, so that the overall airflow of the atomizing device remains in a state where a normal vaping experience cannot be achieved.
[0043] like Figure 5 and Figure 6 As shown, when the operating member 22 is in the unlocked state, it can move the sliding member 21 to a position where the first air inlet 10 and at least one second air inlet 20 are connected. That is, the operating member 22 can move the sliding member 21 relative to the housing 1 to a position where the first air inlet 10 and at least one second air inlet 20 are connected. The number of second air inlets 20 can be determined according to actual conditions. Specifically, for the position where the first air inlet 10 and at least one second air inlet 20 are connected, all the second air inlets 20 can be connected to the first air inlet 10; or, only some of the second air inlets 20 can be connected to the first air inlet 10, while the other part of the second air inlets 20 are not connected to the first air inlet 10. At this time, air from outside the housing 1 can enter the inside of the housing 1 sequentially through the first air inlet 10 and at least one second air inlet 20. Thus, the air intake function of the atomizing device is unlocked.
[0044] The operating element 22 is configured to rotate or translate relative to the sliding element 21, thereby controlling the operating element 22 to switch between a locked state and an unlocked state. Figure 3 , Figure 5 and Figure 6 In some embodiments shown, the operating member 22 is rotatable relative to the sliding member 21 when the operating member 22 moves from... Figure 3 Rotate to the position shown Figure 5When in the indicated position, the operating member 22 can drive the sliding member 21 to move relative to the housing 1. The sliding member 21 moves to... Figure 6 In the indicated position, the first air inlet 10 and at least one second air inlet 20 are connected, and the air intake function of the atomizing device is unlocked. Alternatively, in some other embodiments, the operating member 22 may also translate relative to the sliding member 21. For example, the operating member 22 may translate relative to the sliding member 21 in a direction perpendicular to the outer surface of the housing 1, or the operating member 22 may translate relative to the sliding member 21 in a direction parallel to the outer surface of the housing 1. A limiting structure of a specific shape is provided between the operating member 22 and the sliding member 21 to control the switching of the operating member 22 between the locked and unlocked states.
[0045] For example, the operating member 22 has an operating part 222 and a rod part 221. The sliding member 21 is provided with a groove or through hole corresponding to the operating member 22. The rod part 221 is configured to enter the groove or through hole by pressing. Thus, the user needs to press the operating part 222 first to assemble the operating member 22 and the sliding member 21 before the operating member 22 can drive the sliding member 21 to slide. An elastic element (not shown) can be provided in the groove of the operating member 22 to reset the sliding member 21 and keep the sliding member 21 and the operating member 22 in an unassembled state.
[0046] Therefore, according to the above-mentioned atomizing device, when the user needs to unlock the air intake function, he / she needs to first rotate or move the operating component 22 to switch the operating component 22 to the unlocked state, and then operate the operating component 22 to move the sliding component 21 to the air intake open position. That is, the air intake function of the atomizing device can only be unlocked through double operation, which increases the difficulty of unlocking the air intake function and is relatively difficult for children to master, thereby reducing the risk of children accidentally starting the atomizing device.
[0047] Please see Figure 4 , Figures 7 to 9 In some embodiments, the housing 1 further has a first groove 14, and the operating member 22 has a rod portion 221. For example, Figure 9 As shown, when the operating member 22 is in the unlocked state, the lever 221 can slide along the first slide groove 14, that is, the lever 221 and the first slide groove 14 are slidably engaged. Conversely, as Figure 8 As shown, when the operating member 22 is in the locked state, the lever 221 and the first slide groove 14 cannot move relative to each other; that is, the lever 221 and the first slide groove 14 are not compatible and cannot slide relative to each other. Specifically, as... Figure 4 and Figure 7 As shown, in some embodiments, the housing 1 is longitudinally elongated, and the length direction of the first groove 14 may be consistent with the length direction of the housing 1; of course, in other embodiments, the housing 1 may not be longitudinally elongated.
[0048] Please see Figure 4 and Figure 7 In some embodiments, the slider 21 has an air intake closed position and an air intake open position relative to the first slide groove 14. The operating member 22 drives the slider 21 to slide relative to the first slide groove 14, thereby enabling the slider 21 to move to the air intake closed position and the air intake open position. Specifically, the slider 21 can move up and down relative to the housing 1 under the action of the operating member 22. Moving the slider 21 downward relative to the housing 1 can reach the air intake open position, and moving the slider 21 upward relative to the housing 1 can reach the air intake closed position. Figure 4 As shown, when the sliding member 21 is in the air intake closed position, the first air intake hole 10 and the second air intake hole 20 are misaligned and therefore not connected to each other. The second air intake hole 20 is blocked by the inner wall of the housing 1, and the airflow from the outside of the housing 1 cannot enter the interior of the housing 1 through the first air intake hole 10 and the second air intake hole 20. Figure 7 As shown, when the slider 21 is in the air intake open position, the first air intake hole 10 and the second air intake hole 20 are directly connected, and the airflow outside the housing 1 can enter the interior of the housing 1 through the first air intake hole 10 and the second air intake hole 20.
[0049] Please see Figure 4 In some embodiments, the housing 1 further includes a second slide groove 15, which is adapted to the slider 21. When the operating member 22 is in the unlocked state, it can drive the slider 21 to move along the second slide groove 15 to a position where the first air inlet 10 and at least one second air inlet 20 are connected. Specifically, the second slide groove 15 can guide the movement of the slider 21. Therefore, the length direction of the second slide groove 15 is consistent with the direction of movement of the slider 21 between the air inlet closed position and the air inlet open position. Specifically, the length direction of the second slide groove 15 can be consistent with the length direction of the first slide groove 14.
[0050] In some embodiments, the rod portion 221 has a first feature surface and a second feature surface. The rod portion 221 is configured such that when the first feature surface is aligned with the opening of the first groove 14, the rod portion 221 can slide along the first groove 14; and when the second feature surface is aligned with the opening of the first groove 14, the rod portion 221 cannot slide along the first groove 14.
[0051] Please see Figure 1 , Figure 2 , Figure 8 and Figure 9, in some embodiments, the rod portion 221 has a narrow side 2211 and a wide side 2212. The first feature surface is the narrow side 2211, and the second feature surface is the wide side 2212. Among them, the width W1 of the first chute 14 in the first direction is smaller than the width W2 of the wide side 2212 in the first direction; the width W1 of the first chute 14 in the first direction is larger than the width W3 of the narrow side 2211 in the first direction. The operating member 22 is configured to align the narrow side 2211 with the first chute 14 by rotation so that the rod portion 221 can slide along the first chute 14. Specifically, the first direction can refer to Figure 8 and Figure 9 the A-A direction in. The first direction is also the width direction of the longitudinally elongated first chute 14; the first direction can be perpendicular to the length direction of the housing 1. As Figure 8 shown, in this position, the wide side 2212 is aligned with the first chute 14, but W2>W1, so the sizes of the wide side 2212 and the first chute 14 do not match, and the rod portion 221 cannot extend into the first chute 14, and the rod portion 221 can only be clamped and fixed at the end of the first chute 14. As Figure 9 shown, in this position, the narrow side 2211 is aligned with the first chute 14, and W3<W1, so the sizes of the narrow side 2211 and the first chute 14 can be slidably matched, and at this time the rod portion 221 can extend into the first chute 14 and slide back and forth relative to the first chute 14. During the process of the rod portion 221 sliding along the first chute 14, the sliding member 21 is带动 to slide along the second chute 15.
[0052] In an alternative embodiment, the first feature surface has a specific contour that is adapted to the opening contour of the first chute 14. For example, both the first feature surface and the opening contour of the first chute 14 are triangular (not shown in the figure), and the contour of the second feature surface is rectangular; therefore, only when the rod portion 221 is rotated until the first feature surface is aligned with the opening of the first chute 14 can the rod portion 221 slide along the first chute 14; when the second feature surface is aligned with the opening of the first chute 14, since the shapes of the second feature surface and the opening of the first chute 14 do not match, the rod portion 221 will be blocked outside the first chute 14.
[0053] Please refer to Figure 1 and Figure 2 , in some embodiments, the sliding member 21 further has a mounting hole 210. The operating member 22 includes an operating portion 222 and a rod portion 221. The operating portion 222 is located on the first side of the mounting hole 210, and the rod portion 221 passes through the mounting hole 210 and is partially located on the second side of the mounting hole 210. The operating portion 222 is at least partially placed in the first air inlet hole 10 and is exposed through the first air inlet hole 10 as a part that can be directly touched by a human hand. Specifically, the first side of the mounting hole 210 faces the outside of the housing 1, and the second side of the mounting hole 210 faces the inside of the housing 1. Please refer to Figures 3 to 7In some embodiments, a portion of the operating part 222 passes through the first air inlet 10 and is exposed on the outside of the housing 1, allowing the user to rotate or translate the operating part 222. The operating part 222 and the lever 221 can be an integrally formed structure or a separate structure. In some embodiments, the operating part 222 can be a knob, which the user touches and rotates to lock and unlock the operating element 22. When the operating part 222 rotates, the lever 221 rotates together, thereby changing the position of the wide side 2212 and the narrow side 2211 of the lever 221. By touching and rotating the operating part 222, the user can rotate the lever 221 until the wide side 2212 aligns with the first slide groove 14 or the narrow side 2211 aligns with the first slide groove 14. Alternatively, in other embodiments, the operating part 222 can be of other shapes, and the user touches and translates the operating part 222 to lock and unlock the operating element 22.
[0054] In some embodiments, a portion of the operating part 222 may be exposed on the outside of the housing 1. That is, there is a certain gap between a portion of the operating part 222 and the outer surface of the housing 1, which may be 3 to 5 mm. Thus, the operating part 222 protrudes a certain distance relative to the outer surface of the housing 1, thereby making it convenient for the user to touch and operate the operating part 222.
[0055] like Figure 10 As shown, in some embodiments, the rod 221 includes a rotating portion 2213 that partially passes through the mounting hole 210 and a second side located in the mounting hole 210 (see reference). Figure 10 The limiting portion 2214 is located on the lower side of the mounting hole 210. The width H1 of the rotating portion 2213 is smaller than the width H2 of the mounting hole 210, meaning that the rotating portion 2213 and the mounting hole 210 are in clearance fit, allowing the rotating portion 2213 to rotate relative to the mounting hole 210. The end of the rotating portion 2213 away from the operating portion 222 is used for sliding fit with the first slide groove 14. The end of the rotating portion 2213 away from the operating portion 222 has a narrow side 2211 and a wide side 2212. The width of the limiting portion 2214 is greater than the width of the mounting hole 210, thereby restricting the operating member 22 from moving along the first side (refer to the first side) near the mounting hole 210. Figure 10 The displacement of the upper side of the mounting hole 210 prevents the operating member 22 from dislodging from the mounting hole 210. This ensures that the operating member 22 can rotate smoothly relative to the sliding member 21 while preventing the operating member 22 from dislodging from the mounting hole 210. This limiting structure is simple, reliable, and easy to manufacture. Specifically, the limiting part 2214 can be a boss formed on the outer peripheral surface of the rod 221, which protrudes radially outward along the rod 221.
[0056] Please see Figure 4 , Figure 7 and Figure 11In some embodiments, the housing 1 includes an outer shell 12 and a support 11. The outer shell 12 has a receiving cavity, and the support 11 and the air regulating assembly are disposed within the receiving cavity. A first air inlet 10 is formed on the outer shell 12, and the air regulating assembly is located between the support 11 and the outer shell 12. A first groove 14 is formed on the surface of the support 11 facing the outer shell 12. A second groove 15 is also formed on the surface of the support 11 facing the outer shell 12. Furthermore, the depth of the second groove 15 is less than the depth of the first groove 14. Specifically, the surface portion of the support 11 facing the outer shell 12 is first recessed inward to form the second groove 15, and the bottom portion of the second groove 15 continues to be recessed inward to form the first groove 14.
[0057] Please see Figure 4 , Figure 7 and Figure 11 In some embodiments, the atomizing device also includes a power supply unit 31 mounted on the bracket 11. The power supply unit 31 may include components such as a battery cell.
[0058] Please see Figure 4 , Figure 7 and Figure 11 In some embodiments, the atomizing device further includes a main control board 32 and an airflow sensor, with the main control board 32 mounted on the bracket 11. The airflow sensor is connected to the main control board 32; the operating member 22 can drive the sliding member 21 to a position where the first air inlet 10, at least one second air inlet 20, and the airflow sensor are connected. Specifically, when the sliding member 21 slides to the air inlet open position, and the first air inlet 10 and the second air inlet 20 are connected, air from outside the housing 1 can enter the interior of the housing 1 through the first air inlet 10 and the second air inlet 20, and flow through the airflow sensor. The airflow sensor triggers a switch signal based on the detected change in airflow parameters, and sends the switch signal to the main control board 32. The main control board 32 receives the switch signal and makes corresponding judgments and instructions.
[0059] In some embodiments, the atomizing device further includes an atomizing component (not shown), which is connected to at least one of the main control board 32 and the power supply unit 31. When powered on, the atomizing component heats and atomizes the atomizing matrix to generate an aerosol for the user to inhale. The power supply unit 31 provides power to the atomizing component. The main control board 32 controls the atomization switch of the atomizing unit. For example, when the air intake function of the atomizing device needs to be unlocked, the user touches and rotates or slides the operating component 22 to switch it to the unlocked state. Then, the user continues to touch and slide the operating component 22, which drives the slider 21 to slide. When the slider 21 moves to the air intake open position, under the user's suction force, air from the outside of the housing 1 enters the interior of the housing 1 through the first air intake port 10 and the second air intake port 20, and flows through the airflow sensor. The airflow sensor triggers a switch signal based on the detected change in airflow parameters. The airflow sensor sends this switch signal to the main control board 32. The main control board 32 receives the switch signal and issues a command signal to control the atomizing component to turn on (power on), so that the atomizing component is powered on and heats up. Conversely, when the slider 21 moves to the air intake closed position, since the first air intake port 10 and the second air intake port 20 are not connected, the airflow sensor cannot detect the change in airflow, and the atomizing component remains in a power-off and inactive state.
[0060] In some embodiments, the bracket 11 can also be used to mount an atomizing assembly. That is, the bracket 11 can be used to mount at least one of the power supply unit 31, the atomizing assembly, and the main control board 32.
[0061] Please see Figure 1 and Figure 2 In some embodiments, the slider 21 has at least two second air inlets 20 for adjusting the air intake. Specifically, in some embodiments, when the slider 21 moves up and down relative to the housing 1 to a first position, only one second air inlet 20 is connected to the first air inlet 10, and the air intake is at the first level; when the slider 21 moves up and down relative to the housing 1 to a second position, two second air inlets 20 are connected to the first air inlet 10, and the air intake is at the second level, and so on. Alternatively, at least two second air inlets 20 may have different air intake areas. When the slider 21 moves up and down relative to the housing 1 to the first position, the second air inlet 20 with the smaller air intake area is connected to the first air inlet 10, and the air intake is at the first level; when the slider 21 moves up and down relative to the housing 1 to the second position, the second air inlet 20 with the larger air intake area is connected to the first air inlet 10, and the air intake is at the second level. Therefore, the intake volume can be adjusted simply by changing the number or intake area of the second air inlet 20 through the original movement path of the slider 21.
[0062] Please see Figure 1 and Figure 2In some embodiments, an indicator 223 is formed on the exposed surface of the operating member 22. Specifically, the indicator 223 is formed on the exposed surface of the operating member 222. The indicator 223 is used to indicate an unlocked state and a locked state. Specifically, the indicator 223 may be a straight groove formed on the exposed surface of the operating member 22. When the operating member 22 rotates relative to the slider 21, the position of the indicator 223 also changes, thus it can be used to indicate the unlocked state and the locked state of the operating member 22. For example, please refer to... Figure 3 and Figure 5 , Figure 3 The straight groove on the operating component 22 is horizontal, meaning its length is perpendicular to the length of the housing 1. This indicates that the operating component 22 is locked, the sliding component 21 cannot move relative to the housing 1, and the air intake function of the atomizing device is shut off. Rotating the operating component 22 90°... Figure 5 The state shown is as follows. Figure 5 The straight groove on the operating element 22 is vertical, meaning its length is parallel to the length of the housing 1. This indicates that the operating element 22 is in the unlocked state, and the operating element 22 can move the sliding element 21 up and down relative to the housing 1. Figure 6 As shown, when the slider 21 is slid to the air intake open position, the air intake function of the atomizing device is turned on.
[0063] The above-described specific examples are for illustrative purposes only and are not intended to limit the scope of this invention. Those skilled in the art to which this invention pertains can make various simple deductions, modifications, or substitutions based on the concept of this invention.
Claims
1. An atomizing device, characterized in that, include: The housing (1) has a first air inlet (10); An air regulating component is provided at the first air inlet (10); The air regulating component includes a slider (21) and an operating component (22) for driving the slider (21) to slide. The slider (21) has at least one second air inlet (20), and the operating member (22) has a locked state and an unlocked state; in the locked state, the position of the operating member (22) is locked, and the first air inlet (10) and all the second air inlets (20) are not connected; in the unlocked state, the operating member (22) can drive the slider (21) to a position where the first air inlet (10) and at least one second air inlet (20) are connected; The operating element (22) is configured to rotate or translate relative to the sliding element (21), thereby controlling the operating element (22) to switch between the locked state and the unlocked state.
2. The atomizing device according to claim 1, characterized in that, The housing (1) also has a first groove (14), and the operating member (22) has a rod (221), wherein, in the unlocked state, the rod (221) is slidable along the first groove (14).
3. The atomizing device according to claim 2, characterized in that, The sliding member (21) has an air intake closed position and an air intake open position relative to the first slide groove (14); The operating element (22) drives the sliding element (21) to slide relative to the first slide groove (14), thereby enabling the sliding element (21) to move to the air intake closed position and the air intake open position.
4. The atomizing device according to claim 2, characterized in that, The rod (221) has a first feature surface and a second feature surface, wherein the rod (221) is configured to slide along the first slide groove (14) when the first feature surface and the opening of the first slide groove (14) are aligned; and the rod (221) cannot slide along the first slide groove (14) when the second feature surface and the opening of the first slide groove (14) are aligned.
5. The atomizing device according to claim 4, characterized in that, The first feature surface is a narrow side (2211), and the second feature surface is a wide side (2212); wherein, the width of the first groove (14) along the first direction is smaller than the width of the wide side (2212) along the first direction; the width of the first groove (14) along the first direction is greater than the width of the narrow side (2211) along the first direction; The operating element (22) is configured to align the narrow side (2211) and the first groove (14) by rotation, so that the rod (221) can slide along the first groove (14).
6. The atomizing device according to claim 2, characterized in that, The slider (21) also has a mounting hole (210), and the operating member (22) includes an operating part (222) and a rod part (221). The operating part (222) is located on a first side of the mounting hole (210), and the rod part (221) passes through the mounting hole (210) and is partially located on a second side of the mounting hole (210).
7. The atomizing device according to claim 6, characterized in that, The rod portion (221) includes a rotating portion (2213) partially passing through the mounting hole (210) and a limiting portion (2214) located on the second side of the mounting hole (210). The width of the rotating portion (2213) is smaller than the width of the mounting hole (210), and the width of the limiting portion (2214) is larger than the width of the mounting hole (210).
8. The atomizing device according to claim 2, characterized in that, The housing (1) includes an outer shell (12) and a support (11). The outer shell (12) forms a receiving cavity, and the support (11) and the air regulating assembly are disposed in the receiving cavity. The first air inlet (10) is formed on the outer shell (12), and the air regulating assembly is located between the support (11) and the outer shell (12). The first sliding groove (14) is formed on the surface of the support (11) facing the outer shell (12).
9. The atomizing device according to claim 8, characterized in that, The atomizing device also includes a power supply unit (31) mounted on the bracket (11); And / or, the atomizing device further includes a main control board (32) and an airflow sensor, the main control board (32) being mounted on the bracket (11); the airflow sensor being connected to the main control board (32); the operating member (22) being able to drive the sliding member (21) to a position where the first air inlet (10), at least one second air inlet (20), and the airflow sensor are connected.
10. The atomizing device according to claim 2, characterized in that, The housing (1) also has a second slide groove (15) that is adapted to the sliding member (21); in the unlocked state, the operating member (22) can drive the sliding member (21) to move along the second slide groove (15) to a position where the first air inlet (10) and at least one second air inlet (20) are connected.
11. An air conditioning assembly, characterized in that, include: The slider (21) has an air intake closed position and an air intake open position; Operating component (22) for driving the slider (21) to slide; The operating element (22) has a locked state and an unlocked state; in the locked state, the position of the operating element (22) is locked and the sliding element (21) is in the air intake closed position; in the unlocked state, the operating element (22) can drive the sliding element (21) to move to the air intake open position. The operating element (22) is configured to rotate or translate relative to the sliding element (21), thereby controlling the operating element (22) to switch between the locked state and the unlocked state.