CN219606853U - Blue sky panel light with multilayer Rayleigh scattering board - Google Patents
Blue sky panel light with multilayer Rayleigh scattering board Download PDFInfo
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- CN219606853U CN219606853U CN202320514931.8U CN202320514931U CN219606853U CN 219606853 U CN219606853 U CN 219606853U CN 202320514931 U CN202320514931 U CN 202320514931U CN 219606853 U CN219606853 U CN 219606853U
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- rayleigh scattering
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Abstract
The utility model discloses a blue sky panel lamp with a plurality of layers of Rayleigh scattering plates, and relates to the technical field of lamps. The utility model comprises the following steps: a light box; the Rayleigh scattering module is fixedly connected to the lamp box; the light source module is fixedly connected to the lamp box; the plurality of groups of titanium dioxide particles are fixedly connected in the Rayleigh scattering module, and the plurality of groups of titanium dioxide particles are uniformly distributed in the Rayleigh scattering module; the Rayleigh scattering module comprises a first Rayleigh scattering plate and a second Rayleigh scattering plate, and the first Rayleigh scattering plate is positioned right above the second Rayleigh scattering plate; the light source module is positioned between the first Rayleigh scattering plate and the second Rayleigh scattering plate; the multi-layer Rayleigh scattering plates are arranged, so that a plurality of groups of Rayleigh scattering plates can diffuse and reflect blue light rays simultaneously, and the formed blue sky effect has layering sense and three-dimensional sense and is more natural; by additionally arranging the lighting module in the lamp box, the lighting effect can be improved and the lighting intensity of the lamp can be improved when the panel lamp is used as a main lamp.
Description
Technical Field
The utility model belongs to the technical field of lamps, and particularly relates to a blue sky panel lamp with a plurality of layers of Rayleigh scattering plates.
Background
The lamp is an indispensable living article in people's daily life, and ordinary lamps and lanterns have the illuminating effect, but along with the continuous improvement of social life quality, only the lamps and lanterns that can throw light on can't satisfy daily life's demand gradually, and the ecological lamp in blue sky is a novel lamps and lanterns, and the ecological lamp in blue sky can send blue lamp light in the use, builds blue ecological effect.
However, the blue panel lamp in the prior art still has a certain defect, the layering sense is insufficient in the using process of the blue ecological lamp in the prior art, the stereoscopic sense is required to be further improved, the blue ecological lamp in the prior art can only be used as a lamp for creating atmosphere, and when the blue ecological lamp is used as a main lamp, the illumination intensity is possibly insufficient, and the lighting intensity is required to be further improved.
Disclosure of Invention
The technical problem to be solved by the present utility model is to overcome the deficiencies of the prior art and provide a blue sky panel lamp with a multi-layer rayleigh scattering plate which can overcome or at least partially solve the above problems.
In order to solve the technical problems, the utility model adopts the basic conception of the technical scheme that: a blue sky panel lamp having a multi-layered rayleigh scattering plate, comprising:
a light box;
the Rayleigh scattering module is fixedly connected to the lamp box;
the light source module is fixedly connected to the lamp box;
the titanium dioxide particles are fixedly connected in the Rayleigh scattering module, and the titanium dioxide particles are uniformly distributed in the Rayleigh scattering module;
the Rayleigh scattering module comprises a first Rayleigh scattering plate and a second Rayleigh scattering plate, and the first Rayleigh scattering plate is positioned right above the second Rayleigh scattering plate;
the light source module is positioned between the first Rayleigh scattering plate and the second Rayleigh scattering plate.
In order to further improve the blue sky effect, further, the first Rayleigh scattering plates are provided with a plurality of groups, the second Rayleigh scattering plates are positioned between two adjacent groups of first Rayleigh scattering plates, and the light source module is positioned between the adjacent first Rayleigh scattering plates and the second Rayleigh scattering plates.
Still further, the light source module includes first light source group, lens and mounting panel, mounting panel fixed connection is on the lamp house, first light source group fixed connection is on the mounting panel, first light source group is relative with the lens.
In order to provide a lighting effect when the luminaire is the primary lighting. Still further, fixedly connected with lighting module on the lamp house lateral wall.
Further, the lighting module comprises a second light source group and a light guide plate, wherein the light guide plate is fixedly connected to the lamp box, and the second light source group is fixedly connected to the side wall of the lamp box.
Furthermore, one side of the light guide plate is fixedly connected with a reflecting film, and the other side of the light guide plate is fixedly connected with a diffusion film.
In order to prevent light of the lighting module from diffusing onto the rayleigh scattering plate. Still further, fixedly connected with light barrier in the lamp house.
In order to ensure the formation effect of the blue sky, further, the titanium dioxide particles are nano titanium dioxide particles, and the particle diameter of the titanium dioxide particles is 5-50nm.
Preferably, the mounting plate is any one of an aluminum substrate, a glass fiber board or a phenolic PCB paper substrate.
In order to ensure that light can irradiate on the upper and lower Rayleigh scattering plates, the light emergent angle of the lens is 30-60 degrees.
After the technical scheme is adopted, compared with the prior art, the utility model has the following beneficial effects: according to the utility model, the multi-layer Rayleigh scattering plates are arranged, so that a plurality of groups of Rayleigh scattering plates can simultaneously diffuse and reflect blue light, the formed blue sky effect has layering and stereoscopic impression, and the blue sky effect is more natural.
According to the utility model, the lighting module is additionally arranged in the lamp box, so that the lighting effect can be improved and the lighting intensity of the lamp can be improved when the panel lamp is used as a main lamp.
The following describes the embodiments of the present utility model in further detail with reference to the accompanying drawings.
Drawings
The accompanying drawings, which are included to provide a further understanding of the utility model and are incorporated in and constitute a part of this specification, illustrate embodiments of the utility model and together with the description serve to explain the utility model. It is evident that the drawings in the following description are only examples, from which other drawings can be obtained by a person skilled in the art without the inventive effort.
In the drawings:
fig. 1 is a working schematic diagram of a blue sky panel lamp with a double-layer rayleigh scattering plate according to the present utility model;
fig. 2 is a schematic structural diagram of a blue sky panel lamp with a double-layer rayleigh scattering plate according to the present utility model;
fig. 3 is a schematic structural diagram of a blue sky panel lamp with a multi-layer rayleigh scattering plate according to the present utility model;
fig. 4 is a schematic diagram of a connection structure of a light barrier and a lamp box in a blue sky panel lamp with a multi-layer rayleigh scattering plate according to the present utility model.
In the figure: 1. a Rayleigh scattering system; 101. a first Rayleigh heat spreader; 102. a second Rayleigh scattering plate; 2. a first light source module; 201. a mounting plate; 202. a first light source group; 203. a lens; 3. a light box; 4. light rays; 5. titanium dioxide particles; 6. a light barrier; 7. a lighting module; 701. a diffusion film; 702. a light guide plate; 703. a reflective film; 704. and a second light source group.
It should be noted that these drawings and the written description are not intended to limit the scope of the inventive concept in any way, but to illustrate the inventive concept to those skilled in the art by referring to the specific embodiments.
Detailed Description
For the purpose of making the objects, technical solutions and advantages of the embodiments of the present utility model more apparent, the technical solutions in the embodiments will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present utility model, and the following embodiments are used to illustrate the present utility model, but are not intended to limit the scope of the present utility model.
Example 1:
referring to fig. 1-2, a blue sky panel lamp having a multi-layered rayleigh scattering plate, comprising:
a lamp box 3;
the Rayleigh scattering module 1 is fixedly connected to the lamp box 3;
the light source module 2 is fixedly connected to the lamp box 3;
the plurality of groups of titanium dioxide particles 5 are fixedly connected in the Rayleigh scattering module 1, and the plurality of groups of titanium dioxide particles 5 are uniformly distributed in the Rayleigh scattering module 1;
the rayleigh scattering module 1 comprises a first rayleigh scattering plate 101 and a second rayleigh scattering plate 102, wherein the first rayleigh scattering plate 101 is positioned right above the second rayleigh scattering plate 102;
the light source module 2 is located between the first and second rayleigh scattering plates 101 and 102.
The light source module 2 comprises a first light source group 202, a lens 203 and a mounting plate 201, wherein the mounting plate 201 is fixedly connected to the lamp box 3, the first light source group 202 is fixedly connected to the mounting plate 201, and the first light source group 202 is opposite to the lens 203.
The titanium dioxide particles 5 are nano titanium dioxide particles 5, and the particle diameter of the titanium dioxide particles 5 is 5-50nm.
The light exit angle of the lens 203 is 30 ° -60 °.
Referring to fig. 1-2, in use, the first light source group 202 in the light source module 2 is turned on, the first light source group 202 emits light 4, a part of the emitted light 4 irradiates the rayleigh scattering module 1, and when the emitted light 4 encounters the titanium dioxide particles 5 in the first rayleigh scattering plate 101 or the second rayleigh scattering plate 102, blue light is more likely to scatter due to smaller particles of the titanium dioxide 5, which is far smaller than the wavelength of blue light in the light 4 emitted by the first light source group 202, and the blue light is reflected in the whole lamp box 3, thereby creating blue sky vision.
Example 2:
referring to fig. 3, a blue sky panel lamp having a multi-layered rayleigh scattering plate is substantially the same as embodiment 1, and further: the first rayleigh scattering plates 101 are provided with a plurality of groups, the second rayleigh scattering plates 102 are positioned between two adjacent groups of first rayleigh scattering plates 101, and the light source module 2 is positioned between the adjacent first rayleigh scattering plates 101 and second rayleigh scattering plates 102.
Referring to fig. 1 to 3, in the use process, through the arrangement of the first rayleigh scattering plates 101 and the second rayleigh scattering plates 102, a deeper blue sky visual effect can be formed, and the formed blue sky effect is more layered.
The thickness of the lamp box 3 can be 1-3cm, and the lamp box 3 can be square, can be used as a lamp for illumination, can be embedded into household appliances and can be used as an atmosphere lamp.
Example 3:
referring to fig. 4, a blue sky panel lamp having a multi-layered rayleigh scattering plate is substantially the same as example 2, and further: the side wall of the lamp box 3 is fixedly connected with a lighting module 7.
The lighting module 7 comprises a second light source group 704 and a light guide plate 702, wherein the light guide plate 702 is fixedly connected to the lamp box 3, and the second light source group 704 is fixedly connected to the side wall of the lamp box 3.
One side of the light guide plate 702 is fixedly connected with a reflective film 703, and the other side of the light guide plate 702 is fixedly connected with a diffusion film 701.
The light box 3 is fixedly connected with a light barrier 6.
The surface of the light barrier 6 is coated with a black light-absorbing material, which is black ink.
The inner wall of the lamp box 3 is coated with black light absorbing material which is black paint.
Referring to fig. 1 to 4, in use, when the panel light of the present utility model is used as a main lighting fixture, light is irradiated through the second light source group 704 in the lighting module 7, and reflected by the reflective film 703, and the reflected light is refracted by the light guide plate 701, thereby emitting illumination light.
By the aid of the arranged illumination module 7, white illumination light can still be emitted when the panel lamp is used as a main illumination lamp, and normal illumination is not affected.
Example 4:
referring to fig. 4, a blue sky panel lamp having a multi-layered rayleigh scattering plate is substantially the same as example 3 except that: black flannelette is stuck on the inner wall of the lamp box 3.
Example 5:
referring to fig. 4, a blue sky panel lamp having a multi-layered rayleigh scattering plate is basically the same as embodiment 3 except that black plastic is sprayed on the inner wall of the lamp box 3.
Example 6:
referring to fig. 1 to 4, a blue sky panel lamp having a multi-layered rayleigh scattering plate is substantially the same as that of embodiment 2, and further, the concentration of the titanium dioxide particles 5 is 0.0001 to 0.05%, the concentration of the titanium dioxide particles 5 can be adjusted according to the desired blue sky effect, and the concentrations of the titanium dioxide particles 5 with different concentrations can provide the rayleigh scattering module 1 with different levels of light scattering capability.
Example 7:
referring to fig. 1 to 4, a blue sky panel lamp having a multi-layered rayleigh scattering plate is substantially the same as that of embodiment 3, and further, in use, lighting modules 7 may be installed at both sides or around the lamp box, thereby improving lighting intensity.
According to the utility model, the multi-layer Rayleigh scattering plates are arranged, so that a plurality of groups of Rayleigh scattering plates can simultaneously diffuse and reflect blue light, the formed blue sky effect has layering and stereoscopic impression, and the blue sky effect is more natural.
In the description provided herein, numerous specific details are set forth. However, it is understood that embodiments of the utility model may be practiced without these specific details. In some instances, well-known methods, structures and techniques have not been shown in detail in order not to obscure an understanding of this description.
The foregoing description is only illustrative of the preferred embodiment of the present utility model, and is not to be construed as limiting the utility model, but is to be construed as limiting the utility model to any and all simple modifications, equivalent variations and adaptations of the embodiments described above, which are within the scope of the utility model, may be made by those skilled in the art without departing from the scope of the utility model.
Claims (7)
1. A blue sky panel lamp having a plurality of rayleigh scattering panels, comprising:
a light box (3);
the Rayleigh scattering module (1) is fixedly connected to the lamp box (3);
the light source module (2) is fixedly connected to the lamp box (3);
the plurality of groups of titanium dioxide particles (5) are fixedly connected in the Rayleigh scattering module (1), and the plurality of groups of titanium dioxide particles (5) are uniformly distributed in the Rayleigh scattering module (1);
the Rayleigh scattering module (1) comprises a first Rayleigh scattering plate (101) and a second Rayleigh scattering plate (102), wherein the first Rayleigh scattering plate (101) is positioned right above the second Rayleigh scattering plate (102);
the light source module (2) is positioned between the first Rayleigh scattering plate (101) and the second Rayleigh scattering plate (102).
2. A blue sky panel lamp having a multi-layer rayleigh scattering panel according to claim 1, wherein: the first Rayleigh scattering plates (101) are provided with a plurality of groups, the second Rayleigh scattering plates (102) are positioned between two adjacent groups of first Rayleigh scattering plates (101), and the light source module (2) is positioned between the adjacent first Rayleigh scattering plates (101) and the second Rayleigh scattering plates (102).
3. A blue sky panel lamp having a multi-layered rayleigh scattering panel according to claim 2, wherein: the light source module (2) comprises a first light source group (202), a lens (203) and a mounting plate (201), wherein the mounting plate (201) is fixedly connected to the lamp box (3), the first light source group (202) is fixedly connected to the mounting plate (201), and the first light source group (202) is opposite to the lens (203).
4. A blue sky panel lamp having a plurality of rayleigh scattering panels according to claim 3, wherein: the side wall of the lamp box (3) is fixedly connected with a lighting module (7).
5. A blue sky panel lamp having a plurality of rayleigh scattering panels according to claim 4, wherein: the lighting module (7) comprises a second light source group (704) and a light guide plate (702), wherein the light guide plate (702) is fixedly connected to the lamp box (3), and the second light source group (704) is fixedly connected to the side wall of the lamp box (3).
6. A blue sky panel lamp having a plurality of rayleigh scattering panels according to claim 5, wherein: one side of the light guide plate (702) is fixedly connected with a reflecting film (703), and the other side of the light guide plate (702) is fixedly connected with a diffusion film (701).
7. The blue sky panel lamp with the multi-layer Rayleigh scattering plate according to claim 5, wherein a light blocking plate (6) is fixedly connected in the lamp box (3).
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202320514931.8U CN219606853U (en) | 2023-03-16 | 2023-03-16 | Blue sky panel light with multilayer Rayleigh scattering board |
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| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202320514931.8U CN219606853U (en) | 2023-03-16 | 2023-03-16 | Blue sky panel light with multilayer Rayleigh scattering board |
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| CN219606853U true CN219606853U (en) | 2023-08-29 |
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| Application Number | Title | Priority Date | Filing Date |
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| CN202320514931.8U Active CN219606853U (en) | 2023-03-16 | 2023-03-16 | Blue sky panel light with multilayer Rayleigh scattering board |
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Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN116447546A (en) * | 2023-03-16 | 2023-07-18 | 千奥星科南京生物科技有限公司 | Blue sky panel light with multilayer Rayleigh scattering board |
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2023
- 2023-03-16 CN CN202320514931.8U patent/CN219606853U/en active Active
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN116447546A (en) * | 2023-03-16 | 2023-07-18 | 千奥星科南京生物科技有限公司 | Blue sky panel light with multilayer Rayleigh scattering board |
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