Electric control atmosphere lamp

By designing electronic controlled atmosphere lights, using multiple lenses and driving components with different structures, diversified lighting atmosphere effects and dynamic projection light effects are achieved, solving the problem of single lighting atmosphere effects in the existing lighting atmosphere and improving the user experience.

CN223178701UActive Publication Date: 2025-08-01GODOX PHOTO EQUIPMENT CO LTD
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Patent Information

Application Number
CN202422522766.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-17
Publication Date
2025-08-01
Estimated Expiration
2034-10-17

AI Technical Summary

Technical Problem

The existing lighting atmosphere effect is relatively simple and cannot meet the users' increasingly rich scene usage needs.

Method used

An electronic controlled atmosphere lamp is designed, including a cover body, a main body and a light source assembly. A plurality of lenses with different structures are provided on the cover body. The light-out surface of the light source assembly can correspond to any lens. The driving component drives the main body to rotate, so that light passes through different lenses to form different optical effects.

Benefits of technology

It provides a variety of lighting atmosphere effects, bringing different visual experiences, and enriching the user's user experience through dynamically changing projection light effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an electric control atmosphere lamp. The electric control atmosphere lamp comprises a cover body, a main body, a light source assembly and a driving assembly, the cover body comprises a plurality of first lenses which are sequentially connected in a surrounding mode, and the structures of the first lenses are different from one another. The light source assembly is arranged on the main body, and the light-emitting surface of the light source assembly can be opposite to any first lens on the cover body. Light emitted by the light source assembly can penetrate through the corresponding first lens to generate a corresponding optical effect. The driving assembly can drive the main body to rotate relative to the cover body, so that light rays can form different optical effects through the first lenses of different structures, and therefore, the electric control atmosphere lamp can provide different lamplight atmosphere effects for users and bring different visual experiences to the users. In addition, if the main body rotates continuously, the projection lighting effect which changes dynamically can be generated, and the use experience of the user is further enriched. Therefore, the use requirements of users in different scenes can be met by using the electric control atmosphere lamp provided by the utility model.
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Description

Technical Field

[0001] The utility model relates to the field of lamps, and particularly to an electronically controlled atmosphere lamp. Background Art

[0002] With the improvement of people's living standards, in some restaurants and home environments, some lights are often used to create some atmosphere effects. However, the existing light atmosphere effects are generally relatively simple, merely projecting fixed images on the lights, and gradually cannot meet the increasingly rich scene usage requirements of users. Content of the Utility Model

[0003] An object of the utility model is to solve the deficiencies existing in the prior art, and to provide an atmosphere lamp that can provide a variety of optical effects.

[0004] To solve the above technical problems, the utility model adopts the following technical solutions:

[0005] An electronically controlled atmosphere lamp, comprising:

[0006] A cover body, comprising a plurality of first lenses sequentially enclosed and connected, and the structures of the first lenses are different from each other;

[0007] A main body, rotatably arranged inside the cover body;

[0008] A light source assembly, arranged on the main body, and the light-emitting surface of the light source assembly can face any one of the first lenses on the cover body, so that the light emitted by the light source assembly passes through the corresponding first lens to produce corresponding optical effects;

[0009] A driving assembly, arranged inside the cover body and fixedly connected to the main body, and the driving assembly can drive the main body to rotate relative to the cover body, so that the light can pass through each first lens to form different optical effects.

[0010] In an exemplary embodiment, the driving assembly is a motor, and the outer shell of the motor is fixed inside the main body; the rotating shaft of the motor is tightly connected to the cover body, so that the main body can rotate relative to the cover body.

[0011] In an exemplary embodiment, the cover body includes a top plate and an extension protruding from the inner wall of the top plate, each first lens is installed on the side edge of the top plate, a receiving groove is formed on the extension, and the end of the rotating shaft is clamped and fixed in the receiving groove.

[0012] In an exemplary embodiment, the main body includes a housing and a partition, the partition is fixedly arranged inside the housing, and the outer shell of the motor is fixedly arranged on the partition;

[0013] The main body includes at least one connecting post, the connecting post protrudes from the partition board, and a connecting hole is provided on the connecting post; the motor further includes at least one lug, the lug protrudes from the outer side wall of the housing, and a through hole is provided on the lug; the electronically controlled atmosphere lamp further includes a connecting member, and the connecting member passes through the corresponding through hole and the connecting hole, so that the housing is fixed on the partition board.

[0014] In an exemplary embodiment, the electronically controlled atmosphere lamp includes a battery and a heat dissipation member, the battery is arranged inside the main body, the heat dissipation member is arranged on a side of the light source assembly away from the light-emitting surface, the battery is electrically connected to the light source assembly and the driving assembly, and the battery is used to supply power to the light source assembly and the driving assembly.

[0015] In an exemplary embodiment, the electronically controlled atmosphere lamp includes a base, the bottom of the cover body is fixed on the base, and the main body is rotatably arranged on the base; a limiting portion is provided at the bottom of the main body; a limiting shaft protrudes from the base, and the limiting shaft is received in the limiting portion.

[0016] In an exemplary embodiment, a light-transmitting window is formed on the side wall of the main body. When the main body rotates relative to the cover body, the light-transmitting window can face any one of the first lenses, and the light-emitting surface of the light source assembly faces the light-transmitting window, so that the light emitted by the light source assembly can pass through the light-transmitting window and be incident on the first lens of the cover body.

[0017] In an exemplary embodiment, the area of the light-transmitting window is not greater than the area of each of the first lenses.

[0018] In an exemplary embodiment, the electronically controlled atmosphere lamp includes a second lens, the lens is installed on the light-transmitting window, and the light emitted by the light source assembly passes through the second lens and the first lens in sequence and then is emitted.

[0019] In an exemplary embodiment, the first lens can be a flat lens, a lens, a color filter, or a logo lens; the second lens can be a flat lens, a lens, a color filter, or a logo lens.

[0020] It can be seen from the above technical solutions that the present utility model has at least the following advantages and positive effects:

[0021] The electronically controlled ambient light in the present utility model includes a cover body, a main body, a light source assembly, and a driving assembly. The cover body includes a plurality of first lenses that are sequentially enclosed and connected, and the structures of the first lenses are different from each other. The light source assembly is disposed on the main body, and its light-emitting surface can face any one of the first lenses on the cover body. The light emitted by the light source assembly can pass through the corresponding first lens to produce corresponding optical effects. The driving assembly can drive the main body to rotate relative to the cover body, so that the light can form different optical effects through the first lenses with different structures. Therefore, using the electronically controlled ambient light of the present utility model can provide different lighting atmosphere effects for users and bring different visual experiences to users. In addition, if the main body rotates continuously, a dynamic projection light effect can also be generated, further enriching the user experience. Therefore, using the electronically controlled ambient light of the present utility model can meet the usage requirements of users in different scenarios. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 FIG. 6 is a perspective view of the electronically controlled ambient light according to an embodiment of the present utility model.

[0023] Figure 2 FIG. Figure 1 7 is an exploded view of the electronically controlled ambient light shown in FIG. 6.

[0024] Figure 3 FIG. Figure 1 8 is a sectional view of the electronically controlled ambient light shown in FIG. 6 along the A-A direction.

[0025] Figure 4 FIG. Figure 1 9 is a perspective view of the cover body in the electronically controlled ambient light shown in FIG. 6.

[0026] Figure 5 FIG. Figure 4 10 is a sectional view of the cover body shown in FIG. 9 along the B-B direction.

[0027] Figure 6 FIG. [[ID=*35]] Figure 1 11 is a perspective view of the electronically controlled ambient light shown in FIG. 6 with the cover body omitted.

[0028] Figure 7 FIG. Figure 6 12 is a sectional view of the electronically controlled ambient light shown in FIG. 6 with the cover body omitted along the C-C direction.

[0029] Figure 8 FIG. Figure 2 13 is a perspective view of the motor in the electronically controlled ambient light shown in FIG. 6.

[0030] Figure 9 FIG. Figure 2 14 is a perspective view of the main body in the electronically controlled ambient light shown in FIG. 6 with the upper cover and the bottom plate omitted.

[0031] Figure 10 FIG. Figure 2A perspective view of the heat dissipation component in the illustrated electronically controlled ambient light.

[0032] Figure 11 is Figure 2 A perspective view of the bottom plate in the illustrated electronically controlled ambient light.

[0033] Figure 12 is Figure 2 A perspective view of the base in the illustrated electronically controlled ambient light.

[0034] The description of the reference numerals is as follows: 100, electronically controlled ambient light; 10, cover body; 11, first lens; 12, top plate; 13, extension part; 131, receiving groove; 132, counterbore; 20, main body; 21, light-transmitting window; 22, upper cover; 221, through hole; 23, housing; 231, first window edge; 232, second window edge; 233, flange; 24, partition board; 241, notch; 25, connecting column; 26, bottom plate; 261, plate main body; 262, first boss; 2621, arc length segment; 263, second boss; 264, limiting part; 30, light source assembly; 40, driving assembly; 41, rotating shaft; 411, threaded hole; 42, outer shell; 43, lug; 431, through hole; 50, connecting piece; 60, battery; 70, heat dissipation component; 71, heat dissipation main body; 72, heat dissipation fins; 80, second lens; 81, lens main body; 82, turning part; 90, base; 91, base body; 911, weight-reducing hole; 92, convex part; 93, limiting shaft; 94, frustum. Detailed implementation manners

[0035] Typical implementation manners reflecting the features and advantages of the present utility model will be described in detail in the following description. It should be understood that the present utility model can have various changes in different implementation manners, all of which do not depart from the scope of the present utility model, and the descriptions and illustrations therein are essentially for illustrative purposes rather than for limiting the present utility model.

[0036] In the description of the present application, it should be understood that in the embodiments shown in the drawings, the indication of the direction or position relationship (such as up, down, left, right, front, and back, etc.) is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. When these elements are in the positions shown in the drawings, these descriptions are appropriate. If the description of the positions of these elements changes, then the indication of these directions also changes accordingly.

[0037] In addition, the terms "first" and "second" are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more of the said features. In the description of this application, "a plurality of" means two or more unless otherwise specifically defined.

[0038] This new embodiment provides an electronically controlled atmosphere lamp, which can provide different atmosphere effects for users and meet the usage requirements of users in various scenarios. The specific solution will be described through the following embodiments.

[0039] Please refer to Figures 1 to 3 , the electronically controlled atmosphere lamp 100 of this embodiment includes a cover body 10, a main body 20, and a light source assembly 30. Among them, the main body 20 is rotatably arranged inside the cover body 10. The light source assembly 30 is arranged on the main body 20. The light-emitting surface of the light source assembly 30 faces the cover body 10. The light emitted by the light source assembly 30 can pass through the cover body 10 and form an optical effect, thereby providing a lighting atmosphere effect for users.

[0040] Specifically, referring to Figure 4 and Figure 5 , the cover body 10 includes a plurality of first lenses 11 that are sequentially enclosed and connected. The number of the first lenses 11 can be three, four, five, six, etc., which can be specifically set according to actual needs and are not limited here. In this embodiment, six first lenses 11 are taken as an example for illustration.

[0041] The first lens 11 can be a flat lens, a lens, a color filter, or a logo sheet, etc. Among them, the logo sheet is also called a pattern sheet or a gobo sheet, which can project various patterns through light, and the patterns can include logos, patterns, words, etc.; its materials are divided into metal lamp sheets, copper lamp sheets, glass lamp sheets, colored glass sheets, etc.

[0042] The structures of the first lenses 11 are different from each other so that the optical effects formed after the light passes through different first lenses 11 are different. It should be noted that the structures of the first lenses 11 being different from each other can be that the overall structures of the first lenses 11 are different, such as thickness, curvature, shape, etc.; or the surface structures of the first lenses 11 are different, such as different textures on the surfaces of different first lenses 11.

[0043] The cover body 10 includes a top plate 12. The top plate 12 is a polygon. Specifically, in this embodiment, the top plate 12 is a hexagon. The six first lenses 11 are connected to the six sides of the top plate 12 in a one-to-one correspondence. The first lens 11 and the top plate 12 enclose a prism structure.

[0044] Referring to Figure 2 , Figure 6 andFigure 7 The main body 20 has a cylindrical structure. The light source assembly 30 is fixedly arranged inside the main body 20. A light-transmitting window 21 is formed on the side wall of the main body 20. The light-transmitting window 21 can rotate with the main body 20 and correspond to any one of the first lenses 11. The light-emitting surface of the light source assembly 30 is arranged opposite to the light-transmitting window 21. The light emitted by the light source assembly 30 can pass through the light-transmitting window 21 and be incident on the first lens 11 of the cover body 10, and then pass through the first lens 11 to produce corresponding optical effects, providing a unique atmosphere effect for the user.

[0045] The area of the light-transmitting window 21 is not larger than the area of each first lens 11, so as to avoid the formation of a messy and mixed optical effect when light is incident on multiple first lenses 11 at the same time.

[0046] As described above, the optical effects of the first lenses 11 are different from each other, and corresponding optical effects will be produced when the light source assembly 30 faces any one of the first lenses 11. Therefore, the user can select the corresponding first lens 11 according to his own needs, and then align the light-transmitting window 21 with the first lens 11.

[0047] It should be noted that in other embodiments, the light source assembly 30 can also be fixedly arranged on the outside of the main body 20. It can be specifically set according to actual needs, as long as the light-emitting surface of the light source assembly 30 can face any one of the first lenses 11 on the cover body 10, so that light can pass through the corresponding first lens 11 to produce corresponding optical effects, and no limitation is made here.

[0048] Please refer to Figure 5 、 Figures 7 to 9 The electronic control atmosphere lamp 100 includes a driving assembly 40. The driving assembly 40 is arranged inside the cover body 10 and fixedly connected to the main body 20. The driving assembly 40 can drive the main body 20 to rotate relative to the cover body 10, so that the light-transmitting window 21 on the main body 20 can face any one of the first lenses 11.

[0049] In some embodiments of the present application, the driving assembly 40 is a motor. The motor includes a rotating shaft 41 and a housing 42. When the motor is started, the housing 42 can rotate relative to the rotating shaft 41. The housing 42 of the motor is fixedly arranged inside the main body 20, and the rotating shaft 41 of the motor is tightly connected to the cover body 10, so that the main body 20 can rotate relative to the cover body 10.

[0050] Specifically in this embodiment, the cover body 10 includes an extension portion 13. The extension portion 13 protrudes from the inner wall of the top plate 12. A receiving groove 131 is formed on the extension portion 13. The end of the rotating shaft 41 is clamped and fixed in the receiving groove 131.

[0051] Further, in the present embodiment, a threaded hole 411 is provided at the end of the rotating shaft 41. A counterbore 132 is provided at one end of the extension portion 13, and a receiving groove 131 is provided at the other end of the extension portion 13. The receiving groove 131 communicates with the counterbore 132. The electric control ambient light 100 includes a connecting member 50. The connecting member 50 passes through the counterbore 132 and is received in the threaded hole 411 to achieve the fastening connection between the rotating shaft 41 and the cover 10, ensuring that the rotating shaft 41 is stationary relative to the cover 10. The connecting member 50 can be a bolt, a screw, or the like.

[0052] It should be noted that, in other embodiments, the connection manner between the rotating shaft 41 and the cover 10 can also be interference fit, snap connection, etc., which can be specifically set according to actual needs and are not limited herein as long as the rotating shaft 41 can be fixedly connected to the cover 10 to ensure that the rotating shaft 41 is stationary relative to the cover 10 when the motor is started.

[0053] The main body 20 includes an upper cover 22, and a through hole 221 is provided on the upper cover 22. The through hole 221 allows the extension portion 13 and the rotating shaft 41 to pass through to achieve the docking between the extension portion 13 and the rotating shaft 41.

[0054] In some embodiments of the present application, the main body 20 includes a housing 23 and a partition 24. The partition 24 is fixedly provided inside the housing 23. The outer shell 42 of the motor is fixedly arranged on the partition 24 so that when the outer shell 42 rotates relative to the rotating shaft 41, the outer shell 42 can drive the main body 20 to rotate.

[0055] Specifically, in the present embodiment, the main body 20 includes at least one connecting column 25. The connecting column 25 protrudes from the partition 24. A connecting hole is provided on the connecting column 25. The motor further includes at least one lug 43, and the lug 43 protrudes from the outer side wall of the outer shell 42. A through hole 431 is provided on the lug 43. The connecting member 50 passes through the corresponding through hole 431 and the connecting hole, so that the outer shell 42 is fixed on the partition 24, ensuring that the outer shell 42 is stationary relative to the main body 20. Thus, when the motor is started, the outer shell 42 can drive the housing 23 to rotate relative to the cover 10, so that the light-transmitting window 21 on the main body 20 can correspond to any one of the first lenses 11.

[0056] In other embodiments, the connecting column 25 may not be provided. For example, mounting holes can be provided on the partition 24, and the connecting member 50 passes through the corresponding through hole 431 and the mounting holes to fix the outer shell 42 to the partition 24. Or, the connection manner between the outer shell 42 of the motor and the partition 24 can also be other forms, such as bonding, snap connection, etc., as long as the fixed connection between the main body 20 and the outer shell 42 can be achieved to ensure that the main body 20 can rotate with the outer shell 42. It can be specifically set according to actual needs and is not limited herein.

[0057] See Figure 2and Figure 7 The electronically controlled atmosphere lamp 100 includes a battery 60, and the battery 60 is disposed inside the main body 20. The battery 60 is electrically connected to the light source assembly 30 and the driving assembly 40, and the battery 60 is used to supply power to the light source assembly 30 and the driving assembly 40.

[0058] The battery 60 can be disposed on a side of the partition 24 away from the connecting column 25. The fixing manner of the battery 60 can be bonding, magnetic attraction, etc. It can be specifically set according to actual needs and is not limited herein.

[0059] See Figure 7 and Figure 10 The electronically controlled atmosphere lamp 100 further includes a heat dissipation member 70, and the heat dissipation member 70 is disposed on a side of the light source assembly 30 away from the light-emitting surface. The heat dissipation member 70 is used to dissipate heat from the light source assembly 30, which is beneficial to extending the service life of the light source assembly 30.

[0060] Specifically, the heat dissipation member 70 includes a heat dissipation main body 71 and a plurality of heat dissipation fins 72 spaced apart on the surface of the heat dissipation main body 71. The surface of the heat dissipation main body 71 away from the heat dissipation fins 72 is attached to a side of the light source assembly 30 away from the light-emitting surface, so as to facilitate the heat generated by the light source assembly 30 to be diffused to the heat dissipation fins 72 through the heat dissipation main body 71, and then transfer the heat to the air through heat conduction. 6]

[0061] Both the light source assembly 30 and the heat dissipation member 70 are fitted inside the housing 23. Specifically, in this embodiment, see Figure 7 and Figure 9 A light-transmitting window 21 is provided on the housing 23 of the main body 20. The housing 23 includes a first window edge 231 and a second window edge 232. There are two first window edges 231. The two first window edges 231 are oppositely disposed on the surfaces of the top and bottom of the light-transmitting window 21. There are two second window edges 232, and they are respectively protrudingly provided on the first window edge 231. The light source assembly 30 is clamped between the two first window edges 231, and a side surface of the light source assembly 30 away from the light-emitting surface is in contact with the side wall of the second window edge 232.

[0062] The heat dissipation member 70 is clamped between the two second window edges 232. A notch 241 is provided at a position of the partition 24 close to the light-transmitting window 21 to avoid the heat dissipation member 70 and facilitate the installation of the heat dissipation member 70 inside the housing 23. And in the radial direction of the housing 23, the size of the notch 241 is the same as the thickness of the heat dissipation member 70 to ensure that the heat dissipation main body 71 of the heat dissipation member 70 can be attached to the light source assembly 30.

[0063] Please refer to Figure 6 and Figure 7, in some embodiments of the present application, the electronically controlled ambient light 100 further includes a second lens 80. The second lens 80 is installed on the light-transmitting window 21, so that the light emitted by the light source assembly 30 passes through the second lens 80 and the first lens 11 in sequence and then is emitted. The setting of the second lens 80 enables the light emitted by the light source assembly 30 to be processed by the second lens 80 first and then processed a second time by the first lens 11, so that different optical effects can be superimposed to provide a richer user experience for the user. The second lens 80 can be a flat lens, a lens, a color filter, a logo lens, etc.

[0064] Specifically, in this embodiment, the second lens 80 includes a lens body 81 and turning portions 82. There are two turning portions 82. The two turning portions 82 are respectively arranged at the top and the top of the lens body 81 and face the light source assembly 30. In the axial direction of the housing 23, the thickness of the turning portion 82 is higher than the thickness of the first window edge 231. When the second lens 80 is installed on the light-transmitting window 21, the turning portion 82, the first window edge 231 and the second window edge 232 enclose a card slot for accommodating the end of the light source assembly 30, thereby enhancing the fixing of the main body 20 to the light source assembly 30.

[0065] Refer to Figure 11 And in combination with Figure 7 , the main body 20 further includes a bottom plate 26, and the bottom plate 26 is installed at the bottom of the housing 23. Specifically, in this embodiment, the bottom plate 26 includes a plate body 261, a first boss 262 in a ring shape provided on the plate body 261, and a second boss 263 arranged along the chord length of the first boss 262. The second boss 263 abuts against the inner peripheral walls of the first window edge 231 and the second window edge 232 at the bottom of the housing 23. The second boss 263 can enhance the structural strength of the bottom of the housing 23.

[0066] In the axial direction of the main body 20, the height of the arc length segment 2621 corresponding to the second boss 262 is lower than the height of the second flange. The top end face of the arc length segment 2621 can be in contact with the bottom end face of the housing 23. The arc length segment 2621 can support the bottom of the housing 23, which is beneficial to the stability of the second lens 80, the light source assembly 30 and the heat dissipation member 70 installed on the housing 23.

[0067] A ring-shaped flange 233 is protrudingly provided at the bottom of the housing 23, and the flange 233 is sleeved and fixed on the outer peripheral side of the first boss 262, and the inner peripheral wall of the flange 233 abuts against the outer peripheral wall of the first boss 262. The end face of the flange 233 abuts against the surface of the plate body 261 of the bottom plate 26.

[0068] See Figure 12 And in combination with Figure 7, the electronically controlled ambient light 100 includes a base 90. The bottom of the cover 10 is fixed on the base 90, and the main body 20 is rotatably arranged on the base 90.

[0069] In some embodiments, the base 90 includes a base body 91 and a convex portion 92 protruding from the base body 91. Both the base body 91 and the convex portion 92 are polygons. The cover 10 is sleeved and fixed on the outer peripheral side of the convex portion 92, and the bottom end face of the cover 10 abuts against the upper surface of the base body 91. The setting of the convex platform has a positioning function to facilitate the installation between the cover 10 and the base 90. The connection between the cover 10 and the base 90 can be screw connection, bonding, magnetic attraction, etc., which can be specifically set according to actual needs and are not limited here.

[0070] The bottom end face of the main body 20 is close to or directly contacts the upper end face of the convex portion 92. The diameter of the main body 20 is smaller than the inner diameter of the convex platform, so that there is a gap between each first lens 11 on the cover 10 and the outer side wall of the main body 20, enabling the main body 20 to rotate smoothly.

[0071] The base 90 includes a limiting shaft 93. The limiting shaft 93 protrudes from the base body 91. A limiting portion 264 is provided on the bottom plate 26 of the main body 20. When the main body 20 is installed on the base 90, the limiting shaft 93 is received in the limiting portion 264. The limiting portion 264 can be a limiting groove structure or a limiting hole structure, which can be specifically set according to actual needs and are not limited here. In this embodiment, the limiting portion 264 is taken as an example of a limiting groove structure for illustration.

[0072] The setting of the limiting shaft 93 and the limiting portion 264 enables the main body 20 to rotate around the limiting shaft 93 as the rotation center, effectively avoiding the deviation of the main body 20 during rotation.

[0073] In other embodiments, the limiting shaft 93 can also protrude from the bottom of the main body 20, and the limiting portion 264 is provided on the base body 91 of the base 90; or, the base 90 includes a convex edge, the convex edge is arranged along the circumference of the base body 91, and a guide groove for receiving the convex edge is concavely provided at the bottom of the main body 20; or a convex edge protrudes along the circumference of the main body 20 at the bottom of the main body 20, and a guide groove for receiving the convex edge is concavely provided on the base body 91 of the base 90, etc. It can be specifically set according to actual needs, as long as the main body 20 and the base 90 can be docked and the main body 20 can rotate relative to the base 90, and it is not limited here.

[0074] In some embodiments of the present application, the base 90 includes a frustum 94. The frustum 94 protrudes from the base body 91. The limiting shaft 93 is arranged on the frustum 94. The radial dimension of the frustum 94 is larger than the notch dimension of the limiting portion 264 and smaller than the radial dimension of the base body 91. When the main body 20 is installed on the base 90, the bottom end face of the main body 20 is close to or directly contacts the upper surface of the frustum 94.

[0075] When the bottom end face of the main body 20 directly contacts the upper surface of the frustum 94, the frustum 94 can effectively reduce the contact area between the main body 20 and the base 90. When the main body 20 rotates relative to the base 90, the friction between the base 90 and the main body 20 can be effectively reduced, which is more conducive to the rotation of the main body 20.

[0076] In some embodiments, the base body 91 of the base 90 may be provided with a plurality of weight-reducing holes 911 at intervals along its circumferential direction. The setting of the weight-reducing holes 911 can reduce the weight of the overall electronic control atmosphere lamp 100, making it convenient for users to carry.

[0077] The electronic control atmosphere lamp 100 further includes a controller (not shown in the figure). The controller can be electrically connected to the light source assembly 30 and the driving assembly 40. The controller can be used to control the opening and closing of the light source assembly 30, the color of the light emitted by the light source assembly 30, and the rotation frequency or rotation angle of the driving assembly 40, etc., to meet the usage requirements of users. The controller can be a control module provided on the cover body 10 or the base 90, or a remote controller that can remotely control the light source assembly 30 and the driving assembly 40, etc.

[0078] If the driving assembly 40 continuously rotates under the control of the controller, the main body 20 will also keep rotating under the drive of the motor housing 42, so that the light source assembly 30 can be aligned with different first lenses 11 in sequence. The light emitted by the light source assembly 30 passes through each first lens 11 in sequence, forming a dynamically changing optical effect and bringing a richer visual experience to users.

[0079] For the electronic control atmosphere lamp 100 in this application, it includes a cover body 10, a main body 20, a light source assembly 30, and a driving assembly 40. The cover body 10 includes a plurality of first lenses 11 that are sequentially enclosed and connected, and the structures of the first lenses 11 are different from each other. The light source assembly 30 is arranged on the main body 20, and its light-emitting surface can face any one of the first lenses 11 on the cover body 10. The light emitted by the light source assembly 30 can pass through the corresponding first lens 11 to produce corresponding optical effects. The driving assembly 40 can drive the main body 20 to rotate relative to the cover body 10, so that the light can pass through the first lenses 11 with different structures to form different optical effects. Therefore, using the electronic control atmosphere lamp 100 of the present utility model can provide different lighting atmosphere effects for users and bring different visual experiences to users. In addition, if the main body 20 continuously rotates, a dynamically changing projection light effect can also be generated, further enriching the user experience. Therefore, using the electronic control atmosphere lamp 100 of the present utility model can meet the usage requirements of users in different scenarios.

[0080] The above embodiments are only illustrative examples of the structure. The structures in each embodiment are not fixedly combined structures. Without structural conflicts, the structures in multiple embodiments can be arbitrarily combined and used.

[0081] Although the present utility model has been described with reference to several exemplary embodiments, it should be understood that the terms used are illustrative and exemplary, rather than restrictive. Since the present utility model can be embodied in many forms without departing from the spirit or essence of the utility model, it should be understood that the above-described embodiments are not limited to any of the foregoing details, but should be broadly construed within the spirit and scope defined by the appended claims. Therefore, all variations and modifications falling within the scope of the claims or their equivalents should be covered by the appended claims.

Claims

1. An electronically controlled atmosphere light, characterized in that, include: The cover body includes a plurality of first lenses that are sequentially connected and enclosed, and the structures of the first lenses are different from each other; a main body, the main body being rotatably disposed inside the cover; a light source assembly, disposed on the main body, wherein a light emitting surface of the light source assembly can be opposite to any one of the first lenses on the cover, so that light emitted by the light source assembly passes through the corresponding first lens to produce a corresponding optical effect; A driving assembly is disposed inside the cover and fixedly connected to the main body. The driving assembly can drive the main body to rotate relative to the cover, so that light can pass through each of the first lenses to form different optical effects.

2. The electronically controlled ambient light according to claim 1, wherein The driving component is a motor, the housing of which is fixed inside the main body; the rotating shaft of the motor is tightly connected to the cover, so that the main body can rotate relative to the cover.

3. The electronically controlled ambient light according to claim 2, wherein The cover body includes a top plate and an extension portion protruding from the inner wall of the top plate. Each of the first lenses is installed on the side of the top plate. A receiving groove is provided on the extension portion, and the end of the rotating shaft is clamped and fixed in the receiving groove.

4. The electronically controlled ambient light according to claim 2, wherein The main body includes a shell and a partition, the partition is fixedly arranged inside the shell, and the shell of the motor is fixedly arranged on the partition; The main body includes at least one connecting column, which is protruded from the partition and has a connecting hole. The motor also includes at least one lug, which is protruded from the outer wall of the shell and has a through hole. The electrically controlled atmosphere lamp also includes a connecting piece, which is passed through the corresponding through hole and the connecting hole, so that the shell is fixed on the partition.

5. The electronically controlled ambient light according to claim 1, wherein The electrically controlled atmosphere lamp includes a battery and a heat sink. The battery is arranged inside the main body, and the heat sink is arranged on the side of the light source assembly facing away from the light emitting surface. The battery is electrically connected to the light source assembly and the driving assembly, and the battery is used to power the light source assembly and the driving assembly.

6. The electronically controlled ambient light according to claim 1, wherein The electrically controlled atmosphere lamp includes a base, the bottom of the cover is fixed on the base, and the main body is rotatably arranged on the base; a limiting portion is provided at the bottom of the main body; a limiting shaft is protruded from the base, and the limiting shaft is accommodated in the limiting portion.

7. The electronically controlled ambient light according to claim 1, characterized in that, A light-transmitting window is provided on the side wall of the main body. When the main body rotates relative to the cover body, the light-transmitting window can be opposite to any one of the first lenses. The light-emitting surface of the light source assembly is opposite to the light-transmitting window, so that the light emitted by the light source assembly can pass through the light-transmitting window and be incident on the first lens of the cover body.

8. The electronically controlled ambient light according to claim 7, wherein The area of the light-transmitting window is not larger than the area of each of the first lenses.

9. The electronically controlled ambient light according to claim 7, wherein, The electrically controlled atmosphere lamp includes a second lens, which is mounted on the light-transmitting window. The light emitted by the light source assembly passes through the second lens and the first lens in sequence before being emitted.

10. The electronically controlled ambient light according to claim 9, characterized in that, The first lens is a plane lens, a lens, a color filter or a logo film; the second lens is a plane lens, a lens, a color filter or a logo film.