Lamp effect assembly of sound equipment and sound equipment

By using a light-transmitting shell and light guide mirror in the speaker, the problem of gaps between the lamp mirror and the shell is solved, achieving lighting effects while improving the speaker's sealing and aesthetic appearance.

CN224218476UActive Publication Date: 2026-05-08SHENZHEN XINYANG CHUANGZHI TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN XINYANG CHUANGZHI TECHNOLOGY CO LTD
Filing Date
2025-04-30
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

The existing speaker's lens and housing have seams in their assembly, which leads to dust getting in and a poor appearance.

Method used

The design employs a light-transmitting housing and a light guide mirror, with the light guide mirror located inside the light-transmitting housing. Light is emitted through the housing, eliminating seams and improving sealing and aesthetics.

Benefits of technology

This design achieves the goal of showcasing lighting effects while eliminating seams and improving the sound system's sealing and aesthetic appeal.

✦ Generated by Eureka AI based on patent content.

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Abstract

Some embodiments of the present application provide a sound equipment light effect assembly and a sound equipment, the sound equipment light effect assembly comprising: a light-transmitting shell configured as an outer shell of the sound equipment; the lamp panel is arranged on the inner side of the light-transmitting shell, the lamp panel is connected to the light-transmitting shell, and a lamp piece used for providing light is arranged on the lamp panel; the light guide mirror is arranged on the inner side of the light-transmitting shell and located between the light-transmitting shell and the lamp panel, the light guide mirror is connected to the lamp panel and / or the light-transmitting shell, and the light-emitting face of the light guide mirror faces the light-transmitting shell. According to the sound equipment, the lamp effect assembly and the light guide mirror are arranged between the light-transmitting shell and the lamp panel, the lamp panel is provided with the lamp part for providing light, so that the light emitted by the lamp part is emitted to the light-transmitting shell through the light-emitting surface of the light guide mirror and is emitted out through the light-transmitting shell, the light guide mirror can be located on the inner side of the light-transmitting shell while the lamp effect is achieved, and therefore splicing seams are eliminated, and the sound equipment is more attractive in appearance. The sealing performance of the sound box is improved, and the appearance of the sound box is more beautiful.
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Description

Technical Field

[0001] Some embodiments of this application relate to the field of audio technology, and in particular to an audio lighting component and an audio system. Background Technology

[0002] Soundbars, also known as "echo walls," are popular among users due to their ease of use and are considered ideal audio products for use with televisions.

[0003] To create a musical environment, speakers use lighting effects to enhance the atmosphere. Speakers typically use specially shaped light mirrors to display these effects. However, the light mirrors are assembled with the speaker's outer casing, with the mirror protruding from the casing. This creates a seam between the mirror and the casing, allowing dust to easily enter the speaker and affecting its overall appearance. Utility Model Content

[0004] In order to solve the above-mentioned technical problems, or at least partially solve the above-mentioned technical problems, some embodiments of this application provide a lighting effect component and a speaker, so as to eliminate splicing seams and improve the appearance and sealing of the speaker while displaying lighting effects.

[0005] A first aspect of some embodiments of this application provides a lighting effect component for an audio system, including:

[0006] A light-transmitting housing, wherein the light-transmitting housing is configured as the outer housing of the speaker;

[0007] A light panel is disposed inside the light-transmitting housing and connected to the light-transmitting housing. The light panel is provided with a light element for providing light.

[0008] A light guide is disposed inside the light-transmitting housing and between the light-transmitting housing and the lamp plate. The light guide is connected to the lamp plate and / or the light-transmitting housing, and the light-emitting surface of the light guide faces the light-transmitting housing.

[0009] The light guide is positioned between the light-transmitting housing and the light panel, which is equipped with light-providing components. The light emitted by these components travels through the light-emitting surface of the light guide to the light-transmitting housing and exits through it. This achieves the desired lighting effect while keeping the light guide inside the housing. This eliminates the need for mounting holes in the housing, allowing the light guide to be installed inside the housing rather than within mounting holes. This removes the seam between the light guide and the housing, improves the speaker's sealing, and enhances its aesthetic appearance.

[0010] In some embodiments, the light transmittance of the light-transmitting housing is 35%-45%.

[0011] The light transmittance should be selected between 35% and 45%. Too high a transmittance would make the light guide mirror easily visible from the outside of the housing, affecting aesthetics. Too low a transmittance would reduce brightness and affect lighting efficiency.

[0012] In some embodiments, the light-transmitting housing has a wave-shaped structure, and the peaks of the wave-transmitting housing are positioned away from the light guide mirror;

[0013] The light guide mirror includes multiple light guide sections, each light guide section having a light emitting surface, and the light emitting surface of each light guide section is located at the crest of the light-transmitting housing.

[0014] The light-transmitting housing has a wave-shaped structure, with peaks and troughs (the peaks are far from the light guide mirror, and the troughs are close to the light guide mirror). This gives the light-transmitting housing a wave-shaped physical appearance when the lights are off, that is, when the light guide mirror is not lit.

[0015] Moreover, the light-emitting surface of each light guide part of the light guide is located at the crest of the wave. In other words, the light guide part is closer to the crest of the wave, and the light emitted from the crest is not affected by the troughs on both sides. Thus, after the light emitted from the light guide part of the light-emitting device is emitted, the brightness of the light-transmitting housing at the crest of the wave is relatively greater than the brightness at the trough when viewed from the outer side of the light-transmitting housing. This makes the outer side of the light-transmitting housing present an alternating light effect of bright-dark-bright-dark, which, together with the wave-shaped structure of the light-transmitting housing, achieves a ripple-like light effect.

[0016] In some embodiments, a light-transmitting area is provided at the peak of the light-transmitting housing corresponding to the light-emitting surface of the light guide, and the thickness of the light-transmitting housing in the light-transmitting area is less than the thickness of the other areas.

[0017] The light-transmitting housing is thinned at the light-emitting surface corresponding to the light guide, resulting in a thinner light-transmitting area. This not only reduces light attenuation in the light-transmitting area and increases its brightness, but also allows for the formation of grooves in the light-transmitting area, facilitating the insertion of the light guide and thus reducing the size of the speaker in the thickness direction of the housing.

[0018] In some embodiments, the light-transmitting housing has a wave-shaped structure, and the peaks of the wave-transmitting housing are positioned away from the light guide mirror;

[0019] Multiple light guide mirrors are provided, and the light-emitting surface of each light guide mirror is located at the crest of the light-transmitting shell.

[0020] The light-transmitting housing has a wave-shaped structure, with peaks and troughs (the peaks are far from the light guide mirror, and the troughs are close to the light guide mirror). This gives the light-transmitting housing a wave-shaped physical appearance when the lights are off, that is, when the light guide mirror is not lit.

[0021] Moreover, the light guide lens is located at the crest of the wave, meaning that the light guide lens is closer to the crest of the wave. As a result, after the light emitted by the light component exits through the light guide lens, the brightness of the light-transmitting housing at the crest of the wave is relatively greater than that at the trough. This makes the outer surface of the light-transmitting housing present an alternating effect of bright-dark-bright-dark, which, together with the wave-shaped structure of the light-transmitting housing, achieves a ripple-like lighting effect.

[0022] In some embodiments, the light guide mirror includes a plurality of light guide portions arranged sequentially along a first direction, and the light guide portions have the light emitting surface;

[0023] The lighting effect component of the audio system also includes a light-shielding buffer. Each light-emitting surface is provided with a light-shielding buffer on both sides in the first direction, and the light-shielding buffer is pressed between the light-transmitting shell and the light guide.

[0024] The light-shielding buffer can block light in the first direction of the light-emitting surface, preventing light leakage between two adjacent light-emitting surfaces. In addition, the light-shielding buffer can also buffer vibration, preventing hard contact between the light-transmitting housing and the light guide mirror, thereby avoiding abnormal noise.

[0025] In some embodiments, the light guide mirror includes a plurality of light guide portions arranged sequentially along a first direction. Each light guide portion includes a light guide cover and a barrier surrounding the light guide cover. The light guide cover and the barrier form a cavity. The light guide cover has the light-emitting surface. A light-shielding layer is provided on the side of the barrier facing away from the cavity. The lamp is disposed in the cavity.

[0026] The lamp is installed inside the cavity of the light guide section. The light emitted by the lamp is emitted from the light-emitting surface. Since a light-shielding layer is provided on the side of the enclosure away from the cavity, the light is prevented from being emitted from the enclosure. This avoids light leakage and allows as much light as possible to be emitted from the light-emitting surface, thereby improving the utilization rate of light.

[0027] In some embodiments, the light-shielding layer is a layer of black ink sprayed onto the enclosure.

[0028] A light-blocking layer is formed on the fence by spraying ink. The ink has strong adhesion, making the light-blocking layer less likely to fall off the fence.

[0029] In some embodiments, the light-transmitting housing is a black light-transmitting housing.

[0030] The light-transmitting housing is set to a black light-transmitting housing. When the light is not lit, the light-transmitting housing appears black, which can match the appearance of the black outer shell of the speaker and improve the aesthetics.

[0031] A second aspect of some embodiments of this application provides an audio system that includes a lighting effect component for the audio system provided in the first aspect.

[0032] The sound system has the beneficial effects of the aforementioned lighting components. Attached Figure Description

[0033] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.

[0034] To more clearly illustrate the technical solutions in the embodiments of this application or related technologies, the accompanying drawings used in the description of the embodiments or related technologies will be briefly introduced below. Obviously, those skilled in the art can obtain other drawings based on these drawings without creative effort.

[0035] Figure 1 This is a disassembly diagram of the lighting effect component of the audio system described in some embodiments of this application;

[0036] Figure 2 This is a schematic diagram of the light source of the lighting component of the audio system described in some embodiments of this application;

[0037] Figure 3 This is a top view schematic diagram of the light-transmitting housing described in some embodiments of this application;

[0038] Figure 4 for Figure 3 A side view of the light-transmitting housing AA in the middle;

[0039] Figure 5 for Figure 4 A magnified view of a portion of point B in the middle;

[0040] Figure 6 This is a top view schematic diagram of the lighting effect component of the audio system described in some embodiments of this application;

[0041] Figure 7 for Figure 3 A cross-sectional view of the lighting components of the sound system along the CC direction;

[0042] Figure 8 for Figure 7 A magnified view of a portion of point D in the middle;

[0043] Figure 9This is a bottom view of the light guide mirror described in some embodiments of this application;

[0044] Figure 10 for Figure 9 A cross-sectional view of the lighting components of the sound system along the EE direction;

[0045] Figure 11 for Figure 10 A magnified view of a portion of point F in the middle.

[0046] in,

[0047] 1. Translucent shell; 1a. Crest; 1b. Trough; 11. Translucent area;

[0048] 2. Light guide mirror; 21. Light guide part; 211. Light guide cover; 212. Enclosure; 21a. Cavity; 22. Connecting part;

[0049] 3. Light panel; 31. Light fixture;

[0050] 4. Light-blocking cushioning components. Detailed Implementation

[0051] To better understand the above-mentioned objectives, features, and advantages of this application, the solution of this application will be further described below. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.

[0052] Many specific details are set forth in the following description in order to provide a full understanding of this application, but this application may also be implemented in other ways different from those described herein; obviously, the embodiments in the specification are only some embodiments of this application, and not all embodiments.

[0053] like Figure 1 As shown, this application provides a lighting effect component for a speaker, mainly used to create an atmosphere by changing lighting effects with the music when the speaker is playing music.

[0054] In some embodiments, the lighting effect assembly of the speaker includes a light-transmitting housing 1, which is configured as the outer shell of the speaker. That is, the light-transmitting housing 1 is used to form an outer shell, which is at least a part of the outer shell structure of the speaker.

[0055] In some embodiments, the lighting effect assembly of the speaker includes a lamp plate 3, which is disposed inside the light-transmitting housing 1 and connected to the light-transmitting housing 1. The lamp plate 3 is provided with a lamp element 31 for providing light.

[0056] In some embodiments, the lighting effect component of the speaker includes a light guide mirror 2, which is disposed between the light-transmitting housing 1 and the lamp plate 3. The light guide mirror 2 is connected to the lamp plate 3 and / or the light-transmitting housing 1, and the light-emitting surface of the light guide mirror 2 is disposed facing the light-transmitting housing 1.

[0057] Understandably, the light guide mirror 2 is positioned between the light-transmitting housing 1 and the lamp plate 3. The lamp plate 3 is equipped with a light-providing element 31. The light emitted by the light element 31 is directed through the light-emitting surface of the light guide mirror 2 to the light-transmitting housing 1 and then emitted through the light-transmitting housing 1. This achieves the lighting effect while keeping the light guide mirror 2 inside the light-transmitting housing 1. This eliminates the need to create a mounting hole for the light guide mirror 2 on the housing, allowing the light guide mirror 2 to be installed inside the light-transmitting housing 1 instead of in a mounting hole. This eliminates the seam between the light guide mirror 2 and the housing, improves the sound's sealing performance, and makes the sound's appearance more aesthetically pleasing.

[0058] The light transmittance of the aforementioned light-transmitting housing 1 can be selected from 35% to 45%, meaning a transmittance greater than or equal to 35% and less than or equal to 45%. For example, values ​​such as 35%, 36%, 37%, 38%, 39%, 40%, 41%, 42%, 43%, 44%, and 45% can be selected. Other reasonable values ​​can also be chosen, which will not be listed here. A transmittance of 35% to 45% ensures that the transmittance is not too high, making the light guide mirror 2 easily visible from the outside of the light-transmitting housing 1, thus affecting aesthetics. Conversely, a transmittance that is not too low would reduce brightness and affect lighting efficiency.

[0059] It should be noted that, referring to Figure 2 Taking two lamps 31 as an example, assuming the distance between the two lamps 31 is D1 and the distance from the lamp 31 to the light-transmitting housing 1 is D2, when the two lamps 31 are lit, part of the light emitted by the two lamps 31 is reflected by the light-transmitting housing 1 to the area of ​​the two lamps 31, and is reflected again and emitted from the light-transmitting housing 1, while the other part of the light is emitted directly from the light-transmitting housing 1. Thus, when observed from the light-transmitting housing 1, the brightness of the area where each of the two lamps 31 is located and the area between the two lamps 31 need to be consistent so that the user does not observe the shadow of the lamps 31. Therefore, by selecting the light transmittance of the light-transmitting housing 1, the brightness of the area where each of the two lamps 31 is located and the area between the two lamps 31 is consistent when observed from the outside of the light-transmitting housing 1.

[0060] The light emitted by the lamp 31 has both specular reflection and diffuse reflection in the light guide mirror 2 and the area between the two lamps 31.

[0061] Therefore, the larger D1 is, the smaller the light transmittance of the light-transmitting housing 1 needs to be, and the larger D2 is, the larger the light transmittance of the light-transmitting housing 1 needs to be. Therefore, when D1 and D2 are constant, the light transmittance of the light-transmitting housing 1 needs to be adjusted. And when the light transmittance of the light-transmitting housing 1 is constant, D1 and D2 need to be adjusted.

[0062] Furthermore, the aforementioned light-transmitting housing 1 is a black light-transmitting housing. That is, when the device is not powered on, the light-transmitting housing 1 appears black, thus matching the black outer casing of the speaker and improving aesthetics. Of course, the light-transmitting housing 1 can also be chosen in other colors, such as gray.

[0063] In some embodiments, refer to Figure 1 The aforementioned lamp component 31 can be selected as an RGB LED. At this time, the lamp board 3 is a PCB board, and the RGB LED is mounted on the PCB board. The RGB LED can be controlled by the IC bus (Inter Integrated Circuit Bus) control system to light up in rhythm with the music from the speaker, thereby achieving the lighting effect.

[0064] In some embodiments, refer to Figure 1 The light-transmitting housing 1 and the lamp plate 3 are connected by screws. The lamp plate 3 has a through hole, and the light-transmitting housing 1 has a connecting post with a threaded hole. The screw passes through the through hole and connects to the threaded hole. Furthermore, the light guide mirror 2 is connected to the light-transmitting housing 1, and the light guide mirror 2 and the light-transmitting housing 1 are also connected by screws. The light guide mirror 2 has a through hole, and the light-transmitting housing 1 has a connecting post with a threaded hole. The screw passes through the through hole and connects to the threaded hole.

[0065] In some embodiments, refer to Figures 1 to 8 The aforementioned light-transmitting housing 1 has a wave-shaped structure, with the wave crest 1a of the light-transmitting housing 1 positioned away from the light guide mirror 2. The light guide mirror 2 includes multiple light guide sections 21, each with a light-emitting surface. The light-emitting surface of each light guide section 21 is located at the wave crest 1a formed in the direction away from the light guide mirror 2 of the light-transmitting housing 1.

[0066] It should be noted that the aforementioned light-transmitting housing 1 is not a flat plate structure, as shown in the reference... Figure 4 The aforementioned light-transmitting housing 1 includes at least two sequentially arranged arc-shaped segments, and the middle portions of two adjacent arc-shaped segments bulge in opposite directions. Thus, the middle portion of the arc-shaped segment bulging towards the side of the light-transmitting housing 1 away from the light guide mirror 2 forms a peak 1a, while the middle portion of the arc-shaped segment bulging towards the side of the light guide mirror 2 forms a trough 1b.

[0067] Understandably, the light-transmitting housing 1 has a wave-shaped structure, so the light-transmitting housing 1 itself has a wave crest 1a and a wave trough 1b (where the wave crest 1a is far away from the light guide mirror 2 and the wave trough 1b is close to the light guide mirror 2), so that the light-transmitting housing 1 has a wave-shaped physical appearance effect when the lamp 31 is off, that is, when the light guide mirror 2 is not lit.

[0068] Furthermore, the light-emitting surface of each light guide section 21 of the light guide mirror 2 is located at the peak 1a. In other words, the light guide section 21 is closer to the peak 1a. Moreover, after the light is emitted from the peak 1a, it will not be affected by the troughs 1b on both sides. Thus, after the light from the light guide section 21 of the lamp 31 is emitted, the brightness of the light-transmitting housing 1 at the peak 1a is relatively greater than the brightness at the trough 1b when observed on the outer side of the light-transmitting housing 1. This makes the outer side of the light-transmitting housing 1 present an alternating light effect of bright-dark-bright-dark, thereby achieving a ripple-like light effect in conjunction with the wave-shaped structure of the light-transmitting housing 1.

[0069] If the light-emitting surface of the light guide 21 is located at the trough 1b, after the light is emitted through the light-transmitting housing 1, the light will shine on the peaks 1a on both sides, making the brightness difference between the peaks 1a and the troughs 1b not significant, thus the distinction between light and dark is not obvious, affecting the lighting effect observed from the outside of the light-transmitting housing 1.

[0070] For example, in one specific implementation, the light guide 21 can be configured to be crescent-shaped, so that the light-emitting surface of the light guide 21 is crescent-shaped, which allows the light guide 21 to better adapt to the shape of the light-transmitting housing 1, and makes the ripple-shaped lighting effect more refined.

[0071] Furthermore, referring to Figure 5 and Figure 8 A light-transmitting area 11 is provided at the peak 1a of the light-transmitting housing 1, corresponding to the light-emitting surface of the light guide part 21. The thickness of the light-transmitting housing 1 in the light-transmitting area 11 is less than the thickness of the other areas.

[0072] Understandably, the light-transmitting housing 1 is thinned at the light-emitting surface corresponding to the light guide 21, thus making the light-transmitting area 11 thinner. This not only helps to reduce the attenuation of light in the light-transmitting area 11 and increase the brightness of the light-transmitting area 11, but also allows the light-transmitting housing 1 to form a groove in the light-transmitting area 11, facilitating the insertion of the light guide 21, thereby helping to reduce the size of the speaker in the thickness direction of the light-transmitting housing 1.

[0073] For example, in one specific implementation, the difference between the thickness of the light-transmitting housing 1 in the light-transmitting area 11 and the thickness of the remaining areas is 0.7mm-1.3mm.

[0074] Understandably, when the difference is small, under a constant light intensity, the brightness difference between the light-transmitting area 11 and the other areas is not significant. Thus, the brightness of the light-transmitting area 11 is not noticeably different from the surrounding areas. However, under a constant light intensity, if the difference is large, the thickness of the light-transmitting area 11 will be significantly reduced, making it a structural weak point and thus easily damaged by impact. Therefore, setting the difference range to 0.7mm-1.3mm can reduce the light attenuation in the light-transmitting area 11 while ensuring the structural strength of the light-transmitting shell 1 in the light-transmitting area 11.

[0075] The aforementioned difference can be selected as 0.7mm, 0.8mm, 0.9mm, 1.0mm, 1.1mm, 1.2mm, 1.3mm, etc. The endpoint values ​​of 0.7mm and 1.3mm in the above difference range can be obtained through experiments, such as detecting the brightness difference between the light-transmitting area 11 and other areas under different difference values, and conducting collision experiments under different difference values ​​to detect the structural strength of the light-transmitting area 11 under different difference values.

[0076] Of course, the thickness difference mentioned above can also be set to other values ​​according to actual needs, which will not be listed here.

[0077] In addition, it should be noted that the light guide mirror 2 also includes a connecting part 22 connecting two adjacent light guide parts 21. That is to say, the light guide mirror 2 can be configured as an integrated structure consisting of multiple light guide parts 21 and at least one connecting part 22, which can reduce the number of parts and reduce the assembly difficulty.

[0078] The light guide mirror 2 can be injection molded from a mixture of white translucent material and a light diffuser, and black ink can be sprayed or a light-shielding film can be pasted on the side of the connecting part facing the light-transmitting housing 1 to prevent the connecting part 22 from transmitting light and affecting the lighting effect.

[0079] Of course, the connecting part 22 and the light guide part 21 can also be set separately and connected to each other to form a light guide mirror 2. In this case, the connecting part 22 can be connected to the light guide part 21 by means of bonding, screwing, etc. Furthermore, the connecting part 22 can prevent light transmission by spraying black ink or pasting a light-shielding film on the side facing the light-transmitting housing 1. Alternatively, the material of the connecting part 22 can be chosen to be opaque, in which case it is not necessary to spray black ink or paste a light-shielding film layer.

[0080] In some embodiments, the light-transmitting housing has a wave-shaped structure, with the crest of the light-transmitting housing positioned away from the light guide mirror. Multiple light guide mirrors are provided, with the light-emitting surface of each light guide mirror located at the crest of the light-transmitting housing.

[0081] It should be noted that the above-mentioned light-transmitting shell is not a flat structure. The above-mentioned light-transmitting shell 1 includes at least two arc-shaped segments arranged in sequence, and the middle part of the two adjacent arc-shaped segments protrudes in opposite directions. Thus, the middle part of the arc-shaped segment protruding away from the light guide mirror forms a peak, while the middle part of the arc-shaped segment protruding closer to the light guide mirror forms a trough.

[0082] Understandably, the light-transmitting housing has a wave-shaped structure, so the light-transmitting housing itself has crests and troughs (where the crests are far away from the light guide mirror and the troughs are close to the light guide mirror), thus giving the light-transmitting housing a wave-shaped physical appearance when the light is off, that is, when the light guide mirror is not lit.

[0083] Moreover, the light guide lens is located at the crest of the wave, meaning that the light guide lens is closer to the crest of the wave. As a result, after the light emitted by the light component exits through the light guide lens, the brightness of the light-transmitting housing at the crest of the wave is relatively greater than that at the trough. This makes the outer surface of the light-transmitting housing present an alternating effect of bright-dark-bright-dark, which, together with the wave-shaped structure of the light-transmitting housing, achieves a ripple-like lighting effect.

[0084] Understandably, the number of light guide mirrors is set to multiple, with each light guide mirror located between the lamp plate and the light-transmitting housing, and each light guide mirror corresponding to one side peak of the light-transmitting housing.

[0085] In some embodiments, refer to Figures 6 to 8 The light guide mirror 2 includes a plurality of light guide parts 21 arranged sequentially along a first direction, and each light guide part 21 has a light emitting surface.

[0086] The first direction can be the height direction of the speaker, or the length or width direction of the speaker. In this embodiment, the first direction is the height direction of the speaker.

[0087] The lighting effect component of the speaker also includes a light-shielding buffer 4. Each light-emitting surface has a light-shielding buffer 4 on both sides in the first direction, and the light-shielding buffer 4 presses against the light-transmitting housing 1 and the light guide 21.

[0088] Understandably, the light-shielding buffer 4 can block light in the first direction of the light-emitting surface, preventing light leakage between two adjacent light-emitting surfaces. Moreover, the light-shielding buffer 4 can also buffer vibration, preventing hard contact between the light-transmitting housing 1 and the light guide mirror 2, thereby avoiding abnormal noise.

[0089] For example, in one specific implementation, the light-shielding buffer 4 can be selected as black EVA (Ethylene-Vinyl Acetate Copolymer) cotton, or it can be selected as a black rubber pad or other structures that can play a buffering and light-shielding role.

[0090] In some embodiments, refer to Figures 9 to 11 The light guide mirror 2 includes a plurality of light guide parts 21 arranged sequentially along a first direction. Each light guide part 21 includes a light guide cover 211 surrounding a cavity 21a and a barrier 212 surrounding the light guide cover 211. The light guide part 21 covers the lamp element 31. The light guide cover 211 has a light-emitting surface, and the barrier 212 has a light-shielding layer (not shown in the figure) on one side away from the cavity 21a.

[0091] Understandably, the light guide mirror 2 includes multiple light guide sections 21. Each light guide section 21 is formed by a light guide cover 211 and a barrier 212 to form a cover-like structure. The light guide section 21 covers the lamp element 31. The barrier 212 has a light-shielding layer on one side away from the cavity 21a. The light guide cover 211 has a light-emitting surface. In this way, the light emitted by the lamp element 31 can only be emitted through the light-emitting surface on the light guide cover 211, which can prevent light crosstalk between adjacent light guide sections 21. Moreover, each light-emitting surface can be used with the lamp element 31 to present different color light effects. For example, multiple light guide sections 21 can present at least two colors, so that the lighting effect component of the speaker can present different lighting effect patterns.

[0092] It should be noted that the light panel 3 is provided with multiple light groups corresponding to multiple light guides 21. Each light group includes multiple light elements 31. Each light guide 21 is covered by multiple light elements 31 of a light group. In this way, while avoiding light leakage between two adjacent light guides 21, the brightness is improved, thereby ensuring that a clear light effect pattern can be formed.

[0093] Furthermore, the aforementioned light-shielding layer is a black ink layer formed by spraying onto the enclosure 212.

[0094] Understandably, the light-shielding layer can be formed in various ways. It can be a black ink layer formed by spraying black ink, which has strong adhesion, resulting in a stable structure that is not easily detached from the enclosure 212. Alternatively, it can be a pasted light-shielding film layer, or other methods such as printing, which will not be listed here.

[0095] In some embodiments, refer to Figures 1 to 11 The lighting components of the speaker include a light-transmitting housing 1, which is constructed as the outer shell of the speaker. That is, the light-transmitting housing 1 is used to form an outer shell, which is at least a part of the outer shell structure of the speaker.

[0096] The lighting effect component of the speaker also includes a light panel 3, which is located inside the light-transmitting housing 1 and connected to the light-transmitting housing 1. The light panel 3 is provided with a light element 31 for providing light.

[0097] The lighting effect component of the speaker also includes a light guide mirror 2, which is disposed between the light-transmitting housing 1 and the light panel 3. The light guide mirror 2 is connected to the light-transmitting housing 1, and the light-emitting surface of the light guide mirror 2 faces the light-transmitting housing 1.

[0098] The light transmittance of the aforementioned light-transmitting housing 1 is 35%-45%, and the aforementioned light-transmitting housing 1 is a black light-transmitting housing. The aforementioned lamp element 31 is an RGB lamp bead.

[0099] The aforementioned light-transmitting housing 1 has a wave-shaped structure. The light guide mirror 2 includes multiple light guide sections 21, each with a light-emitting surface. The light-emitting surface of each light guide section 21 is located at the crest of the wave in the light-transmitting housing 1. A light-transmitting region 11 is provided at the crest of the wave in the light-transmitting housing 1 corresponding to the light-emitting surface of the light guide section 21. The thickness of the light-transmitting housing 1 in the light-transmitting region 11 is less than the thickness of the other regions.

[0100] The light guides 21 of the light guide mirror 2 are arranged sequentially along the first direction. The lighting effect assembly of the sound system also includes a light-shielding buffer 4. Each light-emitting surface is provided with a light-shielding buffer 4 on both sides in the first direction, and the light-shielding buffer 4 is pressed between the light-transmitting housing 1 and the light guide 21.

[0101] The light guide portion 21 includes a light guide cover 211 surrounding the cavity 21a and a barrier 212 surrounding the light guide cover 211. The light guide portion 21 covers the lamp element 31. The light guide cover 211 has a light-emitting surface, and the barrier 212 has a light-shielding layer on one side away from the cavity 21a.

[0102] The aforementioned light-shielding layer is either a black ink layer sprayed onto the fence or a light-shielding film layer pasted onto the fence.

[0103] This application also provides an audio system, including the lighting effect component of the audio system in the above embodiments. The audio system further includes a speaker (not shown in the figures), wherein, in one case, the light-transmitting housing 1 can be the outer peripheral housing of the audio system, in which case the speaker is located within the space enclosed by the light-transmitting housing 1. In another case, the light-transmitting housing 1 can also be connected to the outer peripheral housing of the audio system, enclosing a space for accommodating the speaker.

[0104] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0105] The above description is merely a specific embodiment of this application, enabling those skilled in the art to understand or implement this application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this application. Therefore, this application is not to be limited to the embodiments described herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A lighting effect component for an audio system, characterized in that, include: A light-transmitting housing, wherein the light-transmitting housing is configured as the outer housing of the speaker; A light panel is disposed inside the light-transmitting housing and connected to the light-transmitting housing. The light panel is provided with a light element for providing light. A light guide is disposed inside the light-transmitting housing and between the light-transmitting housing and the lamp plate. The light guide is connected to the lamp plate and / or the light-transmitting housing, and the light-emitting surface of the light guide faces the light-transmitting housing.

2. The lighting effect component for the sound system according to claim 1, characterized in that, The light transmittance of the light-transmitting shell is 35%-45%.

3. The lighting effect component for the sound system according to claim 1, characterized in that, The light-transmitting housing has a wave-shaped structure, and the peaks of the wave are set away from the light guide mirror. The light guide mirror includes multiple light guide sections, each light guide section having a light emitting surface, and the light emitting surface of each light guide section is located at the crest of the light-transmitting housing.

4. The lighting effect component for the sound system according to claim 3, characterized in that, The light-transmitting shell has a light-transmitting area at the crest corresponding to the light-emitting surface of the light guide, and the thickness of the light-transmitting shell in the light-transmitting area is less than the thickness of the other areas.

5. The lighting effect component for an audio system according to claim 1, characterized in that, The light-transmitting housing has a wave-shaped structure, and the peaks of the wave are set away from the light guide mirror. Multiple light guide mirrors are provided, and the light-emitting surface of each light guide mirror is located at the crest of the light-transmitting shell.

6. The lighting effect component for an audio system according to claim 1, characterized in that, The light guide mirror includes a plurality of light guide portions arranged sequentially along a first direction, and each light guide portion has the light emitting surface; The lighting effect component of the audio system also includes a light-shielding buffer. Each light-emitting surface is provided with a light-shielding buffer on both sides in the first direction, and the light-shielding buffer is pressed between the light-transmitting shell and the light guide.

7. The lighting effect component for an audio system according to claim 1, characterized in that, The light guide mirror includes a plurality of light guide parts arranged sequentially along a first direction. Each light guide part includes a light guide cover and a barrier surrounding the light guide cover. The light guide cover and the barrier form a cavity. The light guide cover has the light-emitting surface. A light-shielding layer is provided on the side of the barrier facing away from the cavity. The lamp is placed inside the cavity.

8. The lighting effect component for an audio system according to claim 7, characterized in that, The light-shielding layer is a black ink layer sprayed onto the fence, or a light-shielding film layer pasted onto the fence.

9. The lighting effect component for an audio system according to claim 1, characterized in that, The light-transmitting housing is a black light-transmitting housing.

10. A sound system, characterized in that, Includes the lighting effect component of the sound system as described in any one of claims 1-9.