Aroma diffuser
By concealing the atomizing component within the aroma diffuser body and using sensors and magnetic adsorption for control, the problem of high consumable costs and easy damage caused by exposed atomizing components is solved, thus improving the aroma diffuser's appearance and ease of use.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2026-03-31
AI Technical Summary
The exposed design of existing aroma diffusers results in high consumable costs and easy damage, making it difficult to meet the appearance requirements of temples or sacrificial sites, and they are easily affected by the environment in public places.
A diffuser with a concealed atomizing component inside the main body is designed. The base and cover form an installation cavity, in which the atomizing component is located. The atomizing component is controlled and protected by a sensor and a magnetic adsorption component. The cover acts as a rotary switch, and the sensor is activated in different sensing areas to control the atomizing component.
It achieves shielding and protection of the atomizing components, reduces consumable costs, improves the adaptability of appearance design, is suitable for temples or sacrificial sites, and enhances ease of use through magnetic feedback and sensor control.
Smart Images

Figure CN224056353U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of aromatherapy technology, and in particular to an aromatherapy diffuser. Background Technology
[0002] Aroma diffusers generally include a main body and an atomizing component. The atomizing component is detachably installed in the main body, and the main body supplies power to the atomizing component and controls its operation. Existing technology discloses an aroma diffuser with a disc-shaped rotary switch on its upper surface, and the atomizing component, as a consumable, is exposed in the central area of the upper surface.
[0003] Currently, there is a need to apply aroma diffusers to traditional settings such as temples or religious sites. These diffusers require a specific design, but if each exposed atomizing component, being a consumable, needs to be designed and manufactured according to a pre-defined shape, it would unnecessarily increase consumable costs. Furthermore, exposed atomizing components in public places are easily damaged by external environmental factors. Utility Model Content
[0004] The purpose of this invention is to provide an aromatherapy diffuser that hides the atomizing component inside the main body.
[0005] The aroma diffuser provided by this utility model includes a main body assembly and an atomizing assembly. The main body assembly includes a base and a rotary switch. The atomizing assembly is detachably installed on the base. The base has a circuit structure, and the atomizing assembly is electrically connected to the circuit structure. The rotary switch is a cover, which is detachably placed on the base. The cover can rotate circumferentially along its own axis to change the closing angle. An installation cavity is formed between the base and the cover, and the atomizing assembly is located in the installation cavity. The cover has a sensor, and the base has at least two sensors. The sensors are electrically connected to the circuit structure, and the sensing areas of the multiple sensors are distributed along the path of the sensor moving circumferentially.
[0006] As can be seen from the above scheme, the main body component, including the base and the cover, forms an installation cavity for accommodating the atomizing component. Simply install the atomizing component into the installation cavity and then cover it with the cover to enclose the atomizing component, thus providing shielding and protection. The base and the cover can be designed into the desired shape, such as a lotus flower, and can be used in sacrificial sites. At the same time, the cover also serves as a rotary switch. By rotating the cover, the closing angle of the cover on the base is changed, and the sensor is placed in the sensing area of different sensors to activate the sensors and achieve control of the atomizing component.
[0007] A preferred embodiment is that the cover is provided with a first magnetic adsorption element, the base is provided with a magnetic adsorption assembly, the magnetic adsorption assembly includes multiple second magnetic adsorption elements, and the multiple second magnetic adsorption elements are distributed circumferentially; when the sensing element is located in the sensing area of one of the sensors, the first magnetic adsorption element and the corresponding second magnetic adsorption element magnetically engage.
[0008] It can be seen that the magnetic attraction between the first and second magnetic adsorption components can provide tactile feedback to the user. When the user rotates the cover, the cover can be rotated to the corresponding position to activate the corresponding sensor.
[0009] A further embodiment is that multiple first magnetic adsorption components are provided, and the multiple first magnetic adsorption components are distributed along the circumference; multiple magnetic adsorption assemblies are provided, and the multiple magnetic adsorption assemblies are distributed along the circumference; the first magnetic adsorption components and the magnetic adsorption assemblies are matched one-to-one.
[0010] It can be seen that the combination of multiple first magnetic adsorption components and multiple magnetic adsorption assemblies can enhance the feedback when the rotating cover switches gears, and at the same time enhance the adsorption force of the seat on the cover.
[0011] A further embodiment is that the cover is provided with an adsorption assembly, which includes multiple first magnetic adsorption elements; the adsorption assembly cooperates with the magnetic adsorption assembly, and when the sensor is located in the sensing area of one of the sensors, at least two first magnetic adsorption elements in the adsorption assembly are magnetically attracted to at least two second magnetic adsorption elements in the magnetic adsorption assembly in a one-to-one correspondence.
[0012] It can be seen that when multiple first magnetic adsorption components and multiple second magnetic adsorption components are magnetically attracted together, they have a variety of staggered magnetic attraction methods, which can increase the number of switchable gears.
[0013] A further embodiment is that the cover has a first mating surface perpendicular to the axis, and the base has a second mating surface perpendicular to the axis, with the first mating surface and the second mating surface facing each other; a first magnetic adsorption component is disposed on the first mating surface, and a second magnetic adsorption component is disposed on the second mating surface.
[0014] As can be seen, the first magnetic adsorption component and the second magnetic adsorption component are hidden between the first mating surface and the second mating surface, which improves the appearance of the aroma diffuser.
[0015] A further option is that the base has a circumferentially extending groove, and the cover has a protrusion that is slidably connected to the groove.
[0016] It can be seen that the cooperation between the groove and the protrusion can limit the rotation angle of the cover, and also make the cover only able to be installed on the base in the manner of the cooperation between the protrusion and the groove.
[0017] A further approach is to mount the sensors on the protrusions, with the sensing areas of multiple sensors distributed along the extension path of the groove.
[0018] As can be seen, the sensing areas of all the sensors are distributed along the extension path of the slide, and any sensor can be activated by rotating the cover within the extension range of the slide.
[0019] A further design involves a through-hole extending along the axis of the cover, and an atomizing component with a mist outlet connected to the through-hole along the axis.
[0020] Therefore, it can be seen that the relative position of the cover axis and the base does not change as the cover rotates. The mist outlet is set here so that the atomized aromatherapy oil can be sprayed out from the through hole when the cover rotates at any angle. Attached Figure Description
[0021] Figure 1 This is a structural diagram of the first embodiment of the present invention.
[0022] Figure 2 This is a structural diagram of the base and atomizing component of the first embodiment of this utility model.
[0023] Figure 3 This is a structural diagram of the base body according to the first embodiment of this utility model.
[0024] Figure 4 This is a structural diagram of the cover body of the first embodiment of the present invention from a first perspective.
[0025] Figure 5 This is a structural diagram of the cover body of the first embodiment of this utility model from a second perspective.
[0026] Figure 6 These are bottom views of the cover and top views of the base and atomizing components of the second embodiment of this utility model. Detailed Implementation
[0027] First embodiment:
[0028] This embodiment provides an aromatherapy diffuser, including a main body component 1 and an atomizing component 2, such as... Figures 1 to 5 As shown, the main body assembly 1 includes a base 11 and a cover 12. The cover 12 is detachably mounted on the upper part of the base 11. The base 11 and the cover 12 are designed in the shape of a lotus flower. The outer surface of the lotus-shaped main body assembly 1 is symmetrical about the axis 3. The cover 12 has a downward-facing first mating surface 121, and the base 11 has an upward-facing second mating surface 111. Both the first mating surface 121 and the second mating surface 111 are parallel to the axis 3. When the cover 12 is mounted on the base 11, the first mating surface 121 and the second mating surface 111 are opposite each other and in contact. The cover 12 can rotate circumferentially along the axis 3 to change the closing angle on the upper part of the base 11. The closing angle is the rotation angle of the cover 12 about the axis 3 on the base 11.
[0029] The base 11 is provided with a groove 112. When the cover 12 is placed on the base 11, an installation cavity is formed between the cover 12 and the base 11 located in the groove. The atomizing component 2 is detachably installed in the installation cavity. The base 11 is provided with a circuit structure. When the atomizing component 2 is installed in the installation cavity, the atomizing component 2 is electrically connected to the circuit structure. The base 11 can supply power to the atomizing component 2 and control the atomizing component 2.
[0030] like Figure 4 and Figure 5 As shown, the cover 12 has a through hole 122 that runs through itself along the axis 3, the atomizing component 2 has a mist outlet 21 for spraying atomized aromatherapy oil, the groove 112 of the seat 11 has a mating position 1121, and the atomizing component 2 has a protrusion that mates with the mating position 1121, so that when the atomizing component 2 is installed in the groove 112, the mist outlet 21 is located exactly at the axis 3, and when the cover 12 is placed on the seat 11, the mist outlet 21 and the through hole 122 are connected along the axis 3.
[0031] In this embodiment, the base 11 has a circumferentially extending groove 113 at the second mating surface 111. Below the groove 113 are two Hall sensors 114 electrically connected to the circuit structure. The sensing range of the two Hall sensors 114 is distributed along the extension path of the groove 113. The cover 12 has a protrusion 123 at the first mating surface 121. The protrusion 123 is provided with a magnetic sensing element 124. When the cover 12 is placed on the base 11, the protrusion 123 is engaged in the groove 113. As the cover 12 is rotated, the protrusion 123 can slide along the extension path of the groove 113. At this time, the sensing element 124 on the protrusion 123 can be rotated to the sensing range of the first Hall sensor 114 or the second Hall sensor 114 and activate the corresponding Hall sensor 114, thereby controlling the atomizing component 2. This embodiment includes only two Hall sensors 114, and one end of the slide 113 also includes a neutral position 1131 without a Hall sensor 114. That is, this neutral position 1131 is not within the sensing range of either sensor 114. When the protrusion 123 rotates to the neutral position 1131, the sensing element 124 does not activate the sensor 114. This neutral position 1131 can be set to turn off the function of the atomizing component 2. It should be noted that, since the two Hall sensors 114 are located below the slide 113, for better illustration of the solution in this embodiment, the two Hall sensors 114 and the neutral position 1131 are shown with dashed lines in the accompanying drawings.
[0032] In this embodiment, as Figures 2 to 5As shown, the cover 12 has three first magnetic adsorption members 125 distributed circumferentially at the first mating surface 121, and the base 11 has three magnetic adsorption assemblies 115 distributed circumferentially at the second mating surface 111. Each magnetic adsorption assembly 115 includes three second magnetic adsorption members 1151 distributed circumferentially. Both the first magnetic adsorption members 125 and the second magnetic adsorption members 1151 are magnets. The first magnetic adsorption members 125 and the magnetic adsorption assemblies 115 are matched one-to-one. In this embodiment, when the cover 12 is rotated, the first magnetic adsorption member 125 can be magnetically attracted to the three second magnetic adsorption members 1151 in the corresponding magnetic adsorption assembly 115, depending on the angle of rotation. When the first magnetic adsorption member 125 is magnetically attracted to the three second magnetic adsorption members 1151 in the corresponding magnetic adsorption assembly 115, the sensing element 124 is located in the sensing range of the first sensor 114, the sensing range of the second sensor 114, and the neutral position 1131, respectively.
[0033] Second embodiment:
[0034] In this embodiment, as Figure 6 As shown, the cover 4 has three adsorption components 42 distributed circumferentially at the first mating surface 41, and the seat 5 has three magnetic adsorption components 52 distributed circumferentially at the second mating surface 51. The adsorption components 42 and the magnetic adsorption components 52 are matched one-to-one. The adsorption component 42 includes five first magnetic adsorption elements 421 distributed circumferentially, and the magnetic adsorption component 52 includes five second magnetic adsorption elements 521 distributed circumferentially. The first magnetic adsorption elements 421 and the second magnetic adsorption elements 521 can be magnetically attracted to each other in an alternating manner, so that at least two first magnetic adsorption elements 421 and at least two second magnetic adsorption elements 521 are magnetically attracted to each other in a one-to-one manner.
[0035] The above embodiments illustrate only one implementation of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
Claims
1. Aromatherapy machine, comprising a body assembly and an atomization assembly, the body assembly comprising a seat body and a rotary switch, the atomization assembly being detachably mounted on the seat body, the seat body being provided with a circuit structure, the atomization assembly being electrically connected with the circuit structure; characterized in that ; the rotary switch being provided as a cover body, the cover body being detachably provided on the seat body, the cover body being rotatable along a circumferential direction of an axis thereof to change a covering angle; an installation cavity being formed between the seat body and the cover body, the atomization assembly being located in the installation cavity; the cover body being provided with a sensing piece, the seat body being provided with at least two sensors, the sensors being electrically connected with the circuit structure, sensing areas of the sensors being distributed on a path of the sensing piece along the circumferential direction.
2. The aromatherapy machine of claim 1, wherein, the cover body being provided with a first magnetic attraction accessory, the seat body being provided with a magnetic attraction assembly, the magnetic attraction assembly comprising a plurality of second magnetic attraction accessories, the second magnetic attraction accessories being distributed along the circumferential direction; when the sensing piece is located in a sensing area of one of the sensors, the first magnetic attraction accessory is magnetically attracted to a corresponding one of the second magnetic attraction accessories.
3. The aromatherapy machine of claim 2, wherein, a plurality of first magnetic attraction accessories are provided, the first magnetic attraction accessories being distributed along the circumferential direction; a plurality of magnetic attraction assemblies are provided, the magnetic attraction assemblies being distributed along the circumferential direction; the first magnetic attraction accessories are one-to-one correspondingly matched with the magnetic attraction assemblies.
4. The aromatherapy machine of claim 2, wherein, the cover body being provided with an adsorption assembly, the adsorption assembly comprising a plurality of the first magnetic attraction accessories; the adsorption assembly being matched with the magnetic attraction assembly, when the sensing piece is located in a sensing area of one of the sensors, at least two first magnetic attraction accessories in the adsorption assembly are one-to-one correspondingly magnetically attracted to at least two second magnetic attraction accessories in the magnetic attraction assembly.
5. The aromatherapy machine of any one of claims 2 to 4, wherein, the cover body being provided with a first matching surface perpendicular to the axis, the seat body being provided with a second matching surface perpendicular to the axis, the first matching surface being opposite to the second matching surface; the first magnetic attraction accessories being provided on the first matching surface, the second magnetic attraction accessories being provided on the second matching surface.
6. The aromatherapy machine of any one of claims 1 to 4, wherein, the seat body being provided with a sliding groove extending along the circumferential direction, the cover body being provided with a protrusion, the protrusion being slidingly connected to the sliding groove.
7. The aromatherapy machine of claim 6, wherein, the sensing piece being mounted on the protrusion, sensing areas of the sensing pieces being distributed on an extension path of the sliding groove.
8. The aromatherapy machine of any one of claims 1 to 4, wherein, the cover body being provided with a through hole extending through the cover body along the axis, the atomization assembly being provided with a mist outlet, the mist outlet being in communication with the through hole along the axis.