Movable sunny lamp

By designing movable solar modules and blue sky modules in the clear sky lamp, combined with Rayleigh scattering plates and multi-color temperature lamp beads, the problem of unrealistic simulation effects of the clear sky lamp was solved, and the miniaturization and portability of the lamp were achieved.

CN223306808UActive Publication Date: 2025-09-05FOSHAN ELECTRICAL & LIGHTING +1
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Patent Information

Application Number
CN202422454811.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-10
Publication Date
2025-09-05
Estimated Expiration
2034-10-10

AI Technical Summary

Technical Problem

The existing clear sky lights do not simulate the sun and blue sky realistically, and the lights are large and heavy, making them inconvenient to install and transport.

Method used

A movable clear sky lamp is designed, including a shell, a blue sky module and a solar module. The light outlet, the blue sky module and the solar module are arranged in sequence from top to bottom. The first light source is movable, and the Rayleigh scattering plate is used to simulate sunlight. Combined with lamp beads and lighting modules with different color temperatures, the simulation of a natural sunny day effect is achieved.

Benefits of technology

It achieves the effect of simulating a natural sunny day, and the lamp has a compact structure, which is easy to install and transport.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN223306808U_ABST
    Figure CN223306808U_ABST
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Abstract

The utility model relates to the field of sunny lamps, in particular to a movable sunny lamp which comprises a shell, a blue sky module and a solar module, the blue sky module and the solar module are installed on the shell, a light outlet is formed in the top of the shell, and the light outlet, the blue sky module and the solar module are sequentially arranged from top to bottom. The solar module comprises a first light source arranged at the bottom of the shell, and the first light source is movably connected with the shell so that the first light source can move on the shell. The blue sky module comprises a Rayleigh scattering plate and a second light source which are arranged in the shell, and the second light source is arranged on the outer side of the Rayleigh scattering plate; the Rayleigh scattering plate is arranged between the light outlet and the first light source, so that light of the first light source irradiates the light outlet through the Rayleigh scattering plate. According to the utility model, the authenticity of clear sky and blue sky effects is strong, and the clear sky and blue sky effects at different time periods can be simulated.
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Description

Technical Field

[0001] The utility model relates to the field of clear sky lamps, in particular to a movable clear sky lamp. Background Art

[0002] Existing clear sky lamps include a housing, a first light source within the housing, a second light source located on the outer periphery of the housing, and Rayleigh scattering plates. When the first light source is turned on, it simulates sunlight; when the second light source is turned on, it shines onto the Rayleigh scattering plates around the housing, simulating a blue sky effect. Thus, the clear sky lamp can achieve the effect of natural sunlight and / or a blue sky on a sunny day.

[0003] However, the sun-simulating part and the blue sky part are set separately. If the first light source is not turned on and only the second light source is turned on, a dark side will be formed in the middle of the blue sky part, affecting the effect of the blue sky, and the blue sky effect is not ideal. If the first light source and the second light source are turned on at the same time to simulate the sun on a sunny day, the sun and the blue sky will be separated, and the natural sunny sun effect cannot be truly simulated, and the experience is not ideal. Moreover, the first light source is fixedly set on the lamp and can only simulate the sunny sun effect at a certain time of the day. It cannot present a real natural sunny sun effect that can make people feel that they are in a natural blue sky and sun environment. Finally, due to the setting of the blue sky part, the existing clear sky lamp makes the lamp larger in size, occupies a large space, and is heavy, which is not convenient for installation and transportation. Utility Model Content

[0004] The technical problem to be solved by the utility model is to provide a movable clear sky lamp, which has a strong realistic clear sky and blue sky effect and can simulate the clear sky and blue sky effects at different time periods.

[0005] In order to solve the above technical problems, the utility model provides a movable clear sky lamp, comprising a shell and a blue sky module and a solar module mounted on the shell, wherein a light outlet is provided on the top of the shell, and the light outlet, the blue sky module and the solar module are arranged in sequence from top to bottom;

[0006] The solar module includes a first light source arranged at the bottom of the shell, and the first light source is movably connected to the shell so that the first light source can move on the shell; the blue sky module includes a Rayleigh scattering plate and a second light source arranged in the shell, and the second light source is arranged outside the Rayleigh scattering plate; the Rayleigh scattering plate is arranged between the light outlet and the first light source, so that light from the first light source passes through the Rayleigh scattering plate and is irradiated toward the light outlet.

[0007] As an improvement to the above-mentioned solution, the shell includes a main shell and a support frame, the light outlet is arranged at the top of the main shell, the first light source is arranged at the bottom of the main shell and is movably connected to the main shell; the support frame is arranged in the main shell, and the Rayleigh scattering plate is placed on the support frame so that the Rayleigh scattering plate covers the top of the first light source.

[0008] As an improvement of the above solution, the housing further includes a pressing frame, which is installed in the main housing through the light outlet to press the Rayleigh scattering plate onto the supporting frame.

[0009] As an improvement of the above solution, the solar module further includes a mounting plate fixedly mounted on the bottom of the main housing, the mounting plate is provided with a guide hole, the first light source is provided in the guide hole, and the first light source is movably connected to the mounting plate through the guide hole.

[0010] As an improvement of the above solution, the blue sky module further includes a light guide plate, which is arranged below the Rayleigh scattering plate, and the second light source is arranged outside the light guide plate.

[0011] As an improvement to the above solution, the solar module further includes a diffusion plate, and the diffusion plate is arranged below the light guide plate.

[0012] As an improvement to the above solution, the first light source is provided with a plurality of lamp beads with different color temperatures.

[0013] As an improvement to the above solution, the present invention further includes a lighting module mounted on a side wall of the housing, wherein the side wall of the housing is provided with a mounting hole, and the mounting hole is provided above the Rayleigh scattering plate;

[0014] The lighting module includes a mounting base and a third light source disposed in the mounting base, the mounting base is fixedly connected to the housing, and light from the third light source is irradiated into the housing and toward the light outlet through the mounting hole;

[0015] The angle formed by the third light source and the Rayleigh scattering plate is a preset angle.

[0016] As an improvement to the above solution, the preset angle is 40°-70°.

[0017] As an improvement of the above solution, the lighting module further includes a reflective cup, and the reflective cup is provided on the third light source.

[0018] The implementation of this utility model has the following beneficial effects:

[0019] The light outlet, blue sky module and sun module of the movable clear sky lamp of the utility model are arranged in sequence from top to bottom, so that the light of the first light source of the solar module is irradiated to the light outlet through the Rayleigh scattering plate, simulating the blue sky sun effect formed by the sun shining on the blue sky. It can realistically simulate the natural sunny day sun effect, making the user feel as if they are in a natural sunny day sun environment, and the feeling effect is more ideal.

[0020] At the same time, the first light source is movable on the shell. The first light source can be moved to different positions on the shell according to different time periods of the day, such as morning, noon and evening, to simulate different positions and illumination angles of the sun in the sky, and simulate the clear sky and blue sky effects at different time periods, making the natural environment effect of the sunny sun more realistic and authentic.

[0021] In addition, since the blue sky module and the solar module are both installed on the shell, and the light outlet, blue sky module and solar module are arranged in sequence from top to bottom, the lamp structure is simple and compact, making the overall lamp small in size and light in weight, making it easy to install and transport. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a front view of the movable clear sky lamp of the utility model;

[0023] Figure 2 yes Figure 1 Left view of;

[0024] Figure 3 yes Figure 1 Rear view;

[0025] Figure 4 yes Figure 1 Stereoscopic image of

[0026] Figure 5 yes Figure 1 Sectional view along line AA;

[0027] Figure 6 yes Figure 5 Enlarged view of point B. DETAILED DESCRIPTION

[0028] To make the objectives, technical solutions, and advantages of the present invention more clearly apparent, the present invention will be further described in detail below with reference to the accompanying drawings. It is hereby stated that any directional terms such as "up," "down," "left," "right," "front," "back," "inside," and "outside" that appear or will appear in this document are based solely on the accompanying drawings and are not intended to limit the present invention.

[0029] See also Figure 1-6 The utility model discloses a movable clear sky lamp, comprising a shell 1 and a blue sky module and a solar module installed on the shell 1. A light outlet 11 is provided on the top of the shell 1. The light outlet 11, the blue sky module and the solar module are arranged in sequence from top to bottom.

[0030] The solar module includes a first light source 2 arranged at the bottom of the shell 1, and the first light source 2 is movably connected to the shell 1 so that the first light source 2 can move on the shell 1; the blue sky module includes a Rayleigh scattering plate 4 and a second light source 3 arranged in the shell 1, and the second light source 3 is arranged outside the Rayleigh scattering plate 4; the Rayleigh scattering plate 4 is arranged between the light outlet 11 and the first light source 2, so that the light from the first light source 2 passes through the Rayleigh scattering plate 4 to irradiate the light outlet 11.

[0031] The light outlet, blue sky module and sun module of the movable clear sky lamp of the utility model are arranged in sequence from top to bottom, so that the light of the first light source of the solar module is irradiated to the light outlet through the Rayleigh scattering plate, simulating the blue sky sun effect formed by the sun shining on the blue sky. It can realistically simulate the natural sunny day sun effect, making the user feel as if they are in a natural sunny day sun environment, and the feeling effect is more ideal.

[0032] At the same time, the first light source is movable on the shell. The first light source can be moved to different positions on the shell according to different time periods of the day, such as morning, noon and evening, to simulate different positions and illumination angles of the sun in the sky, and simulate the clear sky and blue sky effects at different time periods, making the natural environment effect of the sunny sun more realistic and authentic.

[0033] In addition, since the blue sky module and the solar module are both installed on the shell, and the light outlet, blue sky module and solar module are arranged in sequence from top to bottom, the lamp structure is simple and compact, making the overall lamp small in size and light in weight, making it easy to install and transport.

[0034] Specifically, such as Figure 2-6 As shown, the shell 1 includes a main shell 12 and a support frame 13, the light outlet 11 is arranged at the top of the main shell 12, the first light source 2 is arranged at the bottom of the main shell 12 and is movably connected to the main shell 12; the support frame 13 is arranged in the main shell 12, and the Rayleigh scattering plate 4 is placed on the support frame 13 so that the Rayleigh scattering plate 4 covers the top of the first light source 2.

[0035] The main housing has an opening at the top, which serves as a light outlet. The bottom of the main housing has a baseplate, on which a first light source is mounted. A support frame is placed. The support frame is hollow and extends through both end faces. A Rayleigh scattering plate is placed on the support frame, supporting the Rayleigh scattering plate. The Rayleigh scattering plate is positioned above the first light source, and light from the first light source passes through the Rayleigh scattering plate and illuminates the light outlet, simulating the effect of sunlight shining on the earth under a blue sky. The Rayleigh scattering plate is doped with nanoparticles. A second light source illuminates the Rayleigh scattering plate from the side, causing the incident light to Rayleigh scatter, creating the effect of a blue sky. The second light source 3 is mounted on the inner wall of the main housing 12, with its light-emitting surface facing the side of the Rayleigh scattering plate 4.

[0036] Preferably, if Figure 3-6 As shown, the housing 1 further includes a pressing frame 14, which is installed in the main housing 12 through the light outlet 11 to press the Rayleigh scatter plate 4 against the support frame 13. The pressing frame acts on the Rayleigh scatter plate from above, pressing the Rayleigh scatter plate against the support frame, thereby fixing the Rayleigh scatter plate above the first light source.

[0037] Preferably, if Figure 3 、 5 As shown, the solar module also includes a mounting plate 5 fixedly mounted on the bottom of the main shell 12. The mounting plate 5 is provided with a guide hole 51. The first light source 2 is provided in the guide hole 51, and the first light source 2 is movably connected to the mounting plate 5 through the guide hole 51. The mounting plate is fixedly connected to the bottom plate of the main shell, and the first light source can move along the guide hole, so that the first light source can move back and forth at the bottom of the main shell, simulating the movement of the sun in an orbit. The first light source is provided with a number of lamp beads with different color temperatures, such as red light beads, green light beads, and blue light beads. The first light source can be moved to different positions of the shell according to different time periods in the morning, noon, and afternoon, and the corresponding color temperature lamp beads are turned on accordingly, simulating the effects of sunlight at different time periods, presenting a natural effect of alternating morning, noon, and afternoon, solving the problem of the singleness of the sunlight effect, and greatly enhancing the user experience.

[0038] It should be noted that the first light source can be driven, but is not limited to, by the user moving it to a desired position before installation; by connecting and driving it via a transmission mechanism such as a gear or chain, and adjusting the light source position after installation via a knob or handle; or by controlling the light source position via a motor. In other words, existing driving methods can be used to drive the first light source, as long as the first light source can move back and forth along the guide hole. The specific structure will not be described in detail here.

[0039] Preferably, if Figure 5-6 As shown, the blue sky module also includes a light guide plate 6, which is positioned below the Rayleigh scatter plate 4. The second light source 3 is positioned outside the light guide plate 6. The light output surface of the second light source, located on the inner sidewall of the main housing, faces the side of the light guide plate. Light incident on the light guide plate is evenly reflected and refracted toward the Rayleigh scatter plate, where it is processed and then emitted. The light is refracted by the light guide plate and evenly illuminated by the Rayleigh scatter plate, creating a uniform blue sky effect.

[0040] More preferably, if Figure 5-6As shown, the solar module also includes a diffuser plate 7, which is disposed below the light guide plate 6. Specifically, the Rayleigh scatterer plate 4, light guide plate 6, and diffuser plate 7 are sequentially arranged on the support frame 13 from top to bottom. Light from the first light source passes through the diffuser plate, light guide plate, and Rayleigh scatterer plate in sequence, and is emitted toward the light outlet. The provision of the diffuser plate makes the light emitted by the first light source more uniform, resulting in a more realistic sunlight illumination effect.

[0041] It should be noted that a glass lampshade is provided on the first light source, and the first light source achieves a light scattering effect on the first light source through the glass lampshade, so that the light is refracted and reflected in the glass, thereby changing the direction of the light and forming a certain halo to simulate the real sunlight effect.

[0042] Further, if Figure 3-6 As shown, the present invention also includes a lighting module mounted on the side wall of the shell 1, and the side wall of the shell 1 is provided with a mounting hole 15, and the mounting hole 15 is provided above the Rayleigh scattering plate 4; the lighting module includes a mounting base 8 and a third light source 9 provided in the mounting base 8, the mounting base 8 and the shell 1 are fixedly connected, and the light of the third light source 9 is irradiated into the shell 1 and toward the light outlet 11 through the mounting hole 15; the angle formed by the third light source 9 and the Rayleigh scattering plate 4 is a preset angle α.

[0043] Specifically, the mounting base 8 is fixedly connected to the main housing 12 so that the third light source 9 is fixedly mounted on the main housing 12, and the third light source 9 is arranged corresponding to the mounting hole 15, so that the light from the third light source 9 is irradiated into the main housing 12 through the mounting hole, and can be emitted from the light outlet after converging with the light from the first light source and the second light source. The third light source includes a light source board and lamp beads arranged on the light source board. The angle formed by the third light source and the Rayleigh scattering plate is a preset angle, which means that the angle between the plane where the light source board of the third light source is located and the plane where the Rayleigh scattering plate is located is a preset angle. The light from the third light source converges and intersects with the light from the first light source and the second light source under the limitation of the preset angle, and finally irradiates the wall. When observed directly with the human eye, the human eye feels the comfortable square light spot of the sun incident from the window, which simulates the effect of the sun shining into the room from outside the window.

[0044] Preferably, the preset angle α is 40°-70°. More preferably, the preset angle α is 45°-65°. More preferably, the preset angle α is 50°-60°. Even more preferably, the preset angle α is 55°. This preset angle helps the lighting module create a more realistic square light spot effect, providing a better user experience.

[0045] More preferably, if Figure 4 、 6As shown, the lighting module also includes a reflector 10, which is positioned above the third light source 9. Light from the third light source is reflected by the reflector and directed toward the light outlet. This reflector, model GR20A-ZS6T-4545 from Zhongshan Keyi Optical Co., Ltd., facilitates the formation of a square light spot. This reflector can be constructed using existing technology and will not be described in detail here. The combination of the reflector and the preset angle creates a square light spot effect when sunlight enters through the window. In addition to the reflector, a lens can also be used.

[0046] In summary, the utility model provides a movable clear sky lamp, which has a highly realistic clear sky and blue sky effect and can simulate the clear sky and blue sky effects at different time periods.

[0047] The above is a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present invention. These improvements and modifications are also considered to be within the scope of protection of the present invention.

Claims

1. A movable clear sky light, characterized in that: It includes a shell and a blue sky module and a solar module installed on the shell. The top of the shell is provided with a light outlet. The light outlet, the blue sky module and the solar module are arranged in sequence from top to bottom. The solar module includes a first light source arranged at the bottom of the shell, and the first light source is movably connected to the shell so that the first light source can move on the shell; the blue sky module includes a Rayleigh scattering plate and a second light source arranged in the shell, and the second light source is arranged outside the Rayleigh scattering plate; the Rayleigh scattering plate is arranged between the light outlet and the first light source, so that light from the first light source passes through the Rayleigh scattering plate and is irradiated toward the light outlet.

2. The movable clear sky light according to claim 1, wherein: The shell includes a main shell and a support frame, the light outlet is arranged at the top of the main shell, the first light source is arranged at the bottom of the main shell and is movably connected to the main shell; the support frame is arranged in the main shell, and the Rayleigh scattering plate is placed on the support frame so that the Rayleigh scattering plate covers the top of the first light source.

3. The movable clear sky light according to claim 2, characterized in that: The housing further comprises a pressing frame, which is installed in the main housing through the light outlet to press the Rayleigh scattering plate onto the supporting frame.

4. The movable clear sky light according to claim 2, wherein: The solar module further comprises a mounting plate fixedly mounted on the bottom of the main housing. The mounting plate is provided with a guide hole. The first light source is arranged in the guide hole, and the first light source is movably connected to the mounting plate through the guide hole.

5. The movable clear sky light according to claim 1, wherein: The blue sky module further includes a light guide plate, which is arranged below the Rayleigh scattering plate, and the second light source is arranged outside the light guide plate.

6. The movable clear sky light according to claim 5, characterized in that: The solar module further includes a diffusion plate, which is arranged below the light guide plate.

7. The movable clear sky light according to claim 1, wherein: The first light source is provided with a plurality of lamp beads with different color temperatures.

8. The movable clear sky light according to claim 1, wherein: Also included is a lighting module mounted on a side wall of the housing, wherein the side wall of the housing is provided with a mounting hole, and the mounting hole is provided above the Rayleigh scattering plate; The lighting module includes a mounting base and a third light source disposed in the mounting base, the mounting base is fixedly connected to the housing, and light from the third light source is irradiated into the housing and toward the light outlet through the mounting hole; The angle formed by the third light source and the Rayleigh scattering plate is a preset angle.

9. The movable clear sky light according to claim 8, wherein: The preset angle is 40°-70°.

10. The movable clear sky light according to claim 8, wherein: The lighting module further includes a reflective cup, which is arranged on the third light source.