Large-scale lighting for beauty salons

By setting air vents on the top and bottom walls of the beauty panel light housing, combined with the airflow driven by a fan within the airflow channel, the problem of heat accumulation is solved, improving the user experience and extending the equipment's lifespan.

CN224284534UActive Publication Date: 2026-05-26DAYUE INNOVATION (SUZHOU) MEDICAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DAYUE INNOVATION (SUZHOU) MEDICAL TECH CO LTD
Filing Date
2025-06-04
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

When beauty LED strip lights are in operation, the heat buildup can cause a burning sensation, reducing the user experience and shortening the lifespan of the device.

Method used

Air vents are provided on the top and bottom walls of the housing. The lamp panel assembly and the housing enclose each other to form an airflow channel. A fan is arranged near the bottom wall to drive the airflow in the airflow channel to cool and dissipate heat from the lamp panel assembly.

Benefits of technology

Reduce heat buildup, improve user experience, reduce equipment safety risks, and extend service life.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224284534U_ABST
    Figure CN224284534U_ABST
Patent Text Reader

Abstract

This utility model relates to the field of beauty equipment technology and discloses a large beauty light panel, including at least two hinged main bodies. Each main body includes a shell, a lamp panel assembly, and a fan. The shell includes a shell wall, a top wall, and a bottom wall, forming an accommodating space between the shell wall and the top and bottom walls. Airflow ports are provided on both the top and bottom walls to connect the accommodating space with the external space. The lamp panel assembly is disposed within the accommodating space, and the lamp panel assembly and the shell enclose at least part of the structure of an airflow channel. The fan is disposed within the airflow channel and arranged adjacent to the bottom wall. The air outlet of the fan is connected to the airflow port on the bottom wall. The fan is used to drive the airflow within the airflow channel to cool and dissipate heat from the lamp panel assembly, thereby reducing heat accumulation. This not only improves the user experience but also reduces the safety risks of the equipment and extends the service life of the large beauty light panel.
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Description

Technical Field

[0001] This utility model relates to the field of beauty equipment technology, and in particular to a large beauty panel light. Background Technology

[0002] Large LED beauty panels have always been a leader among home beauty devices. They emit light of different frequencies and irradiate the human body to achieve related beauty and skincare purposes. However, due to the large number of light sources in a large LED beauty panel, the heat generated during operation cannot be ignored. On the one hand, the accumulation of heat can cause a burning sensation for the user, reducing the user experience; on the other hand, the accumulation of heat can also adversely affect the safety of the beauty device itself and shorten its lifespan. Therefore, the heat dissipation problem of large LED beauty panels cannot be ignored. Utility Model Content

[0003] The purpose of this invention is to propose a large LED light panel for beauty treatments, which solves the problem in the prior art where the heat of the large LED light panel cannot be dissipated in time, thus reducing the user experience.

[0004] To achieve this objective, the present invention adopts the following technical solution:

[0005] This utility model provides a large beauty light panel, comprising at least two hinged main bodies, each main body comprising:

[0006] The shell includes a shell wall, a top wall and a bottom wall, and an accommodating space is formed between the shell wall, the top wall and the bottom wall. An air vent is provided on the top wall and the bottom wall to connect the accommodating space with the external space.

[0007] A lamp panel assembly is disposed within the accommodating space, and the lamp panel assembly and the housing enclose at least a portion of the structure forming an airflow channel;

[0008] A fan is disposed within the airflow channel and arranged adjacent to the bottom wall. The air outlet of the fan is connected to the airflow port of the bottom wall. The fan is used to drive the airflow within the airflow channel to cool and dissipate heat from the lamp panel assembly.

[0009] This beauty panel light features airflow vents on the top and bottom walls of its housing, connecting to the housing's accommodating space. The light panel assembly is positioned within this space, forming at least a portion of the airflow channel with the housing. A fan is located within the airflow channel, adjacent to the bottom wall, with its outlet connected to the airflow vent on the bottom wall. The fan drives airflow within the channel to cool the light panel assembly, reducing heat buildup. This not only enhances the user experience but also lowers safety risks and extends the lifespan of the beauty panel light.

[0010] The fan is positioned near the bottom wall. On the one hand, the weight of the fan itself adds weight to the bottom of the beauty light panel when it is working, thereby improving the stability of the beauty light panel when it is placed. On the other hand, it can prevent the hot air from flowing out from other places when the fan is dissipating heat, which would cause a bad user experience.

[0011] As a preferred embodiment of the aforementioned large-panel beauty light, the light panel assembly includes:

[0012] The lamp panel body includes a first wall and a second wall disposed opposite to each other. The lamp panel body is placed in the accommodating space. The second wall, together with the shell wall, the top wall and the bottom wall, forms at least a portion of the structure of the airflow channel.

[0013] A light source group, multiple light source groups are disposed on the first wall of the lamp panel body, and the light source group is used to emit light to the outside.

[0014] The light panel assembly includes a light panel body and a light source assembly. The light panel body supports the light source assembly, which emits light to the outside for cosmetic purposes.

[0015] As a preferred embodiment of the aforementioned large beauty light panel, the plane containing the lowest point of the airflow inlet along the direction perpendicular to the shell wall is the first plane α;

[0016] The plane containing the second wall is higher than the first plane α in a direction perpendicular to the shell wall.

[0017] The above settings ensure that the airflow in the airflow channel can communicate with the outside world through the airflow port.

[0018] As a preferred embodiment of the aforementioned large beauty LED light panel, the plane containing the highest point of the airflow inlet along the direction perpendicular to the shell wall is the second plane β;

[0019] The plane containing the second wall is higher than the second plane β in a direction perpendicular to the shell wall.

[0020] The above configuration maximizes the airflow through which the airflow channel connects to the outside world, thus ensuring the heat dissipation effect of the main body.

[0021] As a preferred embodiment of the aforementioned large beauty LED light, the shell wall is provided with multiple sets of reinforcing ribs.

[0022] The overall structural strength of the shell is ensured by adding reinforcing ribs to the shell wall.

[0023] As a preferred embodiment of the aforementioned large beauty LED light panel, the plane containing the highest point of the airflow inlet along the direction perpendicular to the shell wall is the second plane β;

[0024] At least some of the reinforcing ribs are located on a plane that is lower than the second plane β along a direction perpendicular to the shell wall.

[0025] The above settings avoid affecting airflow.

[0026] As a preferred embodiment of the aforementioned large LED light panel, the plane containing the lowest point of the airflow inlet along the direction perpendicular to the shell wall is the first plane α, and the plane containing the highest point of at least some of the reinforcing ribs along the direction perpendicular to the shell wall is not higher than the first plane α.

[0027] The above design ensures both the structural strength of the reinforcing ribs and the smooth flow of air within the airflow channels.

[0028] As a preferred embodiment of the aforementioned beauty panel light, the beauty panel light also includes a support member, which protrudes from the outer side of the bottom wall.

[0029] The main body can be raised by the support components, and the air vents at the bottom of the beauty panel light will not be blocked during use, ensuring airflow.

[0030] This utility model also provides a large beauty light panel, including a main body and a support frame, wherein the support frame is hinged to the main body and is used to support the main body, and the main body includes:

[0031] A shell includes a shell wall, a top wall, and a bottom wall, wherein an accommodating space is formed between the shell wall, the top wall, and the bottom wall, and air vents are provided on at least two of the shell wall, the top wall, and the bottom wall to connect the accommodating space with an external space;

[0032] A lamp panel assembly is disposed within the accommodating space, and the lamp panel assembly and the housing enclose at least a portion of the structure forming an airflow channel;

[0033] A fan is disposed within the airflow channel. The air outlet of the fan is connected to any one of the airflow ports of the shell wall, the top wall, and the bottom wall. The fan is used to drive the airflow within the airflow channel to cool and dissipate heat from the lamp panel assembly.

[0034] This beauty panel light has airflow ports on at least two of the shell walls, top walls, and bottom walls of the housing, which connect to the housing's accommodating space. The light panel assembly is placed within the accommodating space and forms at least part of the airflow channel structure with the housing. The air outlet of the fan in the airflow channel is connected to any one of the airflow ports on the shell walls, top walls, and bottom walls. The fan drives the airflow in the airflow channel to cool the light panel assembly, which not only improves the user experience but also reduces the safety risks of the equipment and extends the service life of the beauty panel light.

[0035] As a preferred embodiment of the aforementioned large beauty light panel, the airflow inlets are respectively located on the shell wall and the top wall, and the air outlet of the fan is connected to the airflow inlets on the shell wall;

[0036] Alternatively, the airflow inlets are located at the bottom wall and the top wall, and the air outlet of the fan is connected to the airflow inlet on the top wall;

[0037] Alternatively, the airflow inlets are located on the shell wall and the bottom wall, and the air outlet of the fan is connected to the airflow inlets on the shell wall;

[0038] Alternatively, the shell wall, the top wall, and the bottom wall are all provided with airflow ports, and the air outlet of the fan is connected to the airflow port of the top wall.

[0039] The air inlets can be flexibly placed in different locations to meet the needs of gas flow.

[0040] As a preferred embodiment of the aforementioned beauty panel light, the beauty panel light also includes a support member, which protrudes from the outer side of the bottom wall.

[0041] The main body can be raised by the support components, and the air vents at the bottom of the beauty panel light will not be blocked during use, ensuring airflow.

[0042] The beneficial effects of this utility model are:

[0043] This utility model proposes a large beauty panel light. By setting airflow vents on the top and bottom walls of the housing, the light panel assembly can be connected to the housing's accommodating space. The light panel assembly is set within the accommodating space and forms at least part of the airflow channel structure with the housing. A fan is set within the airflow channel and arranged adjacent to the bottom wall. The fan's air outlet is connected to the airflow vent on the bottom wall. The fan can drive the airflow within the airflow channel to cool and dissipate heat from the light panel assembly, thereby reducing heat accumulation. This not only improves the user experience but also reduces the safety risks of the equipment and extends the service life of the beauty panel light.

[0044] This utility model proposes another type of large beauty panel light, which provides airflow ports on at least two of the shell wall, top wall, and bottom wall of the housing to connect the housing's accommodating space. The light panel assembly is placed within the accommodating space and forms at least a partial structure of an airflow channel with the housing. The air outlet of the fan in the airflow channel is connected to any one of the airflow ports on the shell wall, top wall, and bottom wall. The fan drives the airflow in the airflow channel to cool and dissipate heat from the light panel assembly, thereby reducing heat accumulation. This not only improves the user experience but also reduces the safety risks of the equipment and extends the service life of the large beauty panel light. Attached Figure Description

[0045] Figures 1-6 This is a structural schematic diagram of the beauty panel light from different perspectives in one embodiment of the present invention;

[0046] Figure 7 This is an exploded view of a beauty panel light according to one embodiment of the present invention;

[0047] Figure 8 This is a schematic diagram of the structure of the beauty panel light provided in one embodiment of the present invention after removing the light panel assembly;

[0048] Figure 9 This is a cross-sectional view of a large beauty light panel provided in one embodiment of this utility model;

[0049] Figure 10 yes Figure 9 Enlarged view of point B in the middle;

[0050] Figure 11 This is a schematic diagram of the structure of the beauty panel light provided in one embodiment of the present invention after removing the light panel assembly and the fan;

[0051] Figure 12 yes Figure 11 Enlarged view of point A in the middle;

[0052] Figure 13 This is a first structural schematic diagram of the display light panel assembly of the beauty panel light provided in one embodiment of the present utility model;

[0053] Figure 14 yes Figure 13 Enlarged view of point Q;

[0054] Figure 15 This is a schematic diagram of the second structure of the beauty panel light display assembly provided in one embodiment of the present invention;

[0055] Figure 16 This is a first structural schematic diagram of a large beauty panel lamp provided in another embodiment of the present invention;

[0056] Figure 17 yes Figure 16 Enlarged view of point C in the middle;

[0057] Figure 18 This is a schematic diagram of the second structure of the beauty panel light provided in another embodiment of the present invention.

[0058] In the picture:

[0059] 10. Main body; 101. Lamp panel assembly; 1010. Lamp panel body; 1011. Airflow hole; 1012. Reflector; 1013. Mounting position; 1014. Light-transmitting plate; 102. Fan; 1020. Air outlet; 103. Shell wall; 104. Top wall; 105. Bottom wall; 106. Airflow inlet; 107. Accommodation space; 1070. First channel; 1071. Second channel; 108. Reinforcing rib; 1080. Transverse reinforcing rib; 1081. Longitudinal reinforcing rib;

[0060] 11. Hinge; 12. Support component; 13. Light source assembly; 14. Bracket. Detailed Implementation

[0061] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present invention and not intended to limit it. Furthermore, it should be noted that, for ease of description, the accompanying drawings show only the parts relevant to the present invention, not the entire structure.

[0062] In the description of this utility model, unless otherwise explicitly specified and limited, the terms "connected," "linked," and "fixed" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0063] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.

[0064] In the description of this embodiment, the terms "upper," "lower," "right," etc., refer to the orientation or positional relationship shown in the accompanying drawings. They are used only for ease of description and simplification of operation, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, the terms "first" and "second" are only used for distinction in description and have no special meaning.

[0065] like Figures 1-10 As shown, this embodiment provides a large beauty light panel, including at least two hinged main bodies 10. In this embodiment, the large beauty light panel includes three main bodies 10, with adjacent main bodies 10 hinged together by hinges 11, thereby enabling the large beauty light panel to be folded. In other embodiments, the large beauty light panel may also include two main bodies 10, four main bodies 10, or more main bodies 10, which is not specifically limited here.

[0066] Specifically, taking one of the main bodies 10 as an example, the main body 10 includes a housing, a lamp panel assembly 101, and a fan 102. The housing includes a housing wall 103, a top wall 104, and a bottom wall 105. A receiving space 107 is formed between the housing wall 103, the top wall 104, and the bottom wall 105. Airflow ports 106 are provided on both the top wall 104 and the bottom wall 105, allowing the receiving space 107 to connect with the external space, thus enabling the lamp panel assembly 101 to form an airflow channel after assembly. The lamp panel assembly 101 is disposed within the receiving space 107 to form a relatively sealed receiving space 107. The lamp panel assembly 101 and the housing enclose at least a portion of the structure forming the airflow channel. The fan 102 is disposed within the airflow channel and is located adjacent to the bottom wall 105 (see [reference]). Figure 8 The air outlet of the fan 102 is connected to the air outlet 106 of the bottom wall 105. The fan 102 is used to drive the airflow in the airflow channel to cool and dissipate heat on the lamp panel assembly 101, reducing heat accumulation and thus solving the heat dissipation problem of the beauty panel light, thereby improving the user experience and extending the service life of the beauty panel light.

[0067] Specifically, such as Figure 7 and Figure 8As shown, the housing includes a shell wall 103, a top wall 104, and a bottom wall 105. The bottom wall 105 and the top wall 104 protrude from the shell wall 103 (the bottom wall 105 and the top wall 104 are located on the same side of the shell wall 103), thereby forming an accommodating space 107 with the shell wall 103. The lamp panel assembly 101 includes a lamp panel body 1010 and a light source group 13. The lamp panel body 1010 has a first wall and a second wall (the first wall is the upper surface wall of the lamp panel body, and the second wall is the lower surface wall of the lamp panel body). Multiple light source groups 13 are arranged on the first wall of the lamp panel body 1010. When the lamp panel assembly 101 is assembled in the accommodating space 107, the second wall will... The fan 102 covers the accommodating space 107 and encloses the accommodating space 107 to form a relatively sealed space as an airflow channel. The fan 102 is arranged in the airflow channel and adjacent to the bottom wall 105. The air outlet of the fan 102 is connected to the airflow port 106 on the bottom wall 105. On the one hand, due to the weight of the fan 102 itself, the beauty panel light can be made to increase the weight of the bottom when it is working, thereby improving the stability of the beauty panel light when it is placed. On the other hand, placing the fan 102 at the bottom wall 105 can prevent the hot air from flowing out from other places when the fan 102 is dissipating heat, which would bring a bad user experience.

[0068] Optionally, the air outlets 106 on the bottom wall 105 are arranged along the extension direction of the bottom wall 105, while the air outlets 106 on the top wall 104 are arranged along the extension direction of the top wall 104. Each air outlet 106 has multiple through holes arranged at intervals (the through holes can be waist-shaped holes, square holes, round holes, etc., which will not be described in detail here). On the one hand, this can improve the airflow throughput, and on the other hand, it can ensure the supporting strength and aesthetics of the shell.

[0069] Furthermore, the number and specific location of the air vents 106 can be adjusted according to the actual size of the main body 10, as long as they meet the basic heat dissipation conditions of the main body 10.

[0070] Optionally, such as Figures 9 to 12 As shown, the plane containing the lowest point of the airflow outlet 106 along the direction perpendicular to the shell wall 103 is the first plane α, and the plane containing the highest point of the airflow outlet 106 along the direction perpendicular to the shell wall 103 is the second plane β. Wherein, the direction perpendicular to the shell wall 103 is... Figure 10 The direction indicated by the Z-axis arrow.

[0071] Furthermore, the relative position of the second wall of the lamp panel assembly 101 and the shell wall 103 can affect the size of the airflow channel. Therefore, the plane containing the second wall needs to be higher than the first plane α in a direction perpendicular to the shell wall 103, so as to ensure that the airflow in the airflow channel can communicate with the outside through the airflow port 106.

[0072] Preferably, the plane containing the second wall is higher than the second plane β in a direction perpendicular to the shell wall 103. In this way, the airflow through the air outlet 106 is maximized, thereby ensuring the heat dissipation effect of the main body 10.

[0073] like Figure 11 and Figure 12 As shown, multiple sets of reinforcing ribs 108 are arranged on the shell wall 103 of the beauty light panel to ensure the overall structural strength of the shell.

[0074] Optionally, at least some of the reinforcing ribs 108 are located on a plane with their highest point in a direction perpendicular to the shell wall 103 that is lower than the second plane β, thereby avoiding affecting the flow of air.

[0075] Preferably, at least some of the reinforcing ribs 108 are located in a plane at their highest point along a direction perpendicular to the shell wall 103, which is not higher than the first plane α. This ensures both the structural strength of the reinforcing ribs 108 and the airflow within the airflow channel.

[0076] Specifically, the reinforcing rib 108 includes a transverse reinforcing rib 1080 (extending parallel to the bottom wall 105 or top wall 104) and a longitudinal reinforcing rib 1081 (extending from the top wall 104 to the bottom wall 105). The transverse reinforcing rib 1080 and the longitudinal reinforcing rib 1081 are arranged on the shell wall 103 to improve the overall strength of the shell wall 103. Since the direction of the longitudinal reinforcing rib 1081 is from the top wall 104 to the bottom wall 105, and the airflow ports 106 are distributed at the top wall 104 and the bottom wall 105, if the longitudinal reinforcing rib 1081 has no transverse component (if the longitudinal reinforcing rib 1081 has a transverse component, it indicates that the reinforcing rib 108 is obliquely arranged, such as diagonally), it will not affect the airflow. The height of the transverse reinforcing rib 1080 in the direction perpendicular to the shell wall 103 is lower than that of the second plane β. If its height exceeds that of the second plane β, it will affect the airflow. Therefore, the height of the transverse reinforcing rib 1080 needs to be limited. In this application, the height of the transverse reinforcing rib 1080 in the direction perpendicular to the shell wall 103 is lower than that of the first plane α. This design ensures both the structural strength of the reinforcing rib 108 and the airflow in the airflow channel.

[0077] Of course, it is also feasible to make the height of the lateral component of the transverse stiffener 1080 or the longitudinal stiffener 1081 in the direction perpendicular to the shell wall 103 higher than the second plane β, but to open holes or grooves on the stiffener 108 so that the airflow can pass through the holes or grooves. This will not be described in detail here, and can be adjusted according to the actual design requirements.

[0078] Optionally, such as Figures 13-15As shown, an airflow hole 1011 can also be provided on the lamp panel body 1010. The airflow hole 1011 penetrates the first wall and the second wall to connect the airflow channel. This can not only dissipate heat from the lamp panel body 1010, but also dissipate heat from the light source group 13 located on the first wall, thereby further improving the heat dissipation effect.

[0079] Specifically, the accommodating space 107 can be further divided according to the specific position of the lamp panel assembly 101 within the accommodating space 107, such as... Figure 10 As shown, when the lamp panel body 1010 is arranged in the accommodating space 107, the accommodating space 107 can be divided into two areas, namely the first channel 1070 and the second channel 1071. The light source group 13 is arranged on the first wall and located in the first channel 1070. An air flow hole 1011 is provided on the lamp panel body 1010 to connect the first channel 1070 and the second channel 1071. The fan 102 can be set in the first channel 1070 or the second channel 1071.

[0080] For example, such as Figure 10 As shown, when the fan 102 is installed in the second channel 1071, its operation drives the airflow within the second channel 1071 to dissipate heat from the lamp panel body 1010. Since the first channel 1070 is connected to the second channel 1071 via the airflow hole 1011, the airflow within the first channel 1070 enters the second channel 1071 through the airflow hole 1011, thus also dissipating heat from the light source assembly 13 within the first channel 1070. Similarly, when the fan 102 is installed in the first channel 1070, its operation drives the airflow within the first channel 1070 to dissipate heat from the light source assembly 13. Because the second channel 1071 is connected to the first channel 1070 via the airflow hole 1011, the airflow within the second channel 1071 also enters the first channel 1070 through the airflow hole 1011, thereby also dissipating heat from the second channel 1071 and ultimately dissipating heat from the lamp panel body 1010.

[0081] like Figure 13 and Figure 14 As shown, the light source group 13 is arranged in an array on the lamp panel body 1010 (or can be understood as arranged in an array on the first wall). It can be a rectangular array or a ring array, etc. The air flow holes 1011 are arranged at the interval between two adjacent rows of light source groups 13. Each light source group 13 has multiple sub-light sources, and each sub-light source can emit any light among red, yellow, blue and green.

[0082] Specifically, taking a rectangular array as an example, the light source groups 13 in two adjacent columns are staggered, and the airflow holes 1011 are arranged at the staggered intervals. By staggering the light source groups 13 in two adjacent columns, the aperture of the airflow holes 1011 can be increased, thereby enhancing the airflow capacity of the airflow holes 1011. In addition, to further improve the heat dissipation effect of the airflow holes 1011 on the light source groups 13, the airflow holes 1011 should be arranged close to the light source groups 13, thereby maximizing the heat dissipation effect of the airflow holes 1011 on the light source groups 13. Furthermore, there should be as many airflow holes 1011 as possible to ensure the airflow effect.

[0083] Preferably, such as Figure 14 As shown, the airflow holes 1011 are arranged on equidistant lines of the same row of light source groups 13, so that the distance from the airflow holes 1011 to the adjacent light source groups 13 is the same. Figure 14 The distance from the central air passage 1011 to the adjacent light source group 13 is d. This simplifies the manufacturing process and meets the heat dissipation requirements of the air passage 1011 for the two adjacent light source groups 13.

[0084] Of course, the air flow holes 1011 do not have to be set on equidistant lines. As long as each light source group 13 is provided with air flow holes 1011 nearby, the heat dissipation requirements can be met. There are no further restrictions here.

[0085] like Figure 7 , Figure 10 As shown, a reflector 1012 and a light-transmitting plate 1014 are provided on the upper layer of the lamp panel body 1010. The reflector 1012 and / or the light-transmitting plate 1014 can also seal the upper part of the first channel 1070, so that the first channel 1070 can form a complete airflow channel.

[0086] In addition, the reflector 1012 has multiple recessed mounting positions 1013. Specifically, these are multiple mounting positions 1013 recessed from the reflector 1012 toward the lamp panel body 1010. Each mounting position 1013 corresponds to the mounting of a light source group 13. This ensures that when the reflector 1012 is mounted on the lamp panel body 1010, all light source groups 13 can be mounted within the mounting positions 1013. On the one hand, this allows the light from each light source group 13 to be reflected by the reflector 1012. On the other hand, it avoids mutual interference between the light source groups 13, thereby improving the working efficiency of the beauty panel light.

[0087] Furthermore, the reflector 1012 is continuous and integral in the non-installation position. Since the air passages 1011 are arranged at the intervals of the light source group 13, the reflector 1012 can hide or cover these air passages 1011 when it is assembled onto the lamp panel body 1010. On the one hand, this can improve the overall aesthetics of the beauty panel light, and on the other hand, it can ensure the structural strength of the reflector 1012.

[0088] Optionally, the light-transmitting plate 1014 is laid on the outside of the reflector 1012 to prevent the user's skin from directly contacting the light source group 13, thereby protecting both the user and the electronic equipment.

[0089] The beauty panel light housing also includes a support member 12 and function buttons. The support member 12 protrudes from the outer side of the bottom wall 105, while the function buttons are located on the top wall 104 or the side wall of the housing. The support member 12 elevates the main body 10, preventing the airflow vent 106 at the bottom wall 105 from being blocked during use, thus ensuring airflow. The placement of the function buttons on the top wall 104 or side wall facilitates user operation, enhancing the user experience.

[0090] Example 2:

[0091] This embodiment provides a large beauty panel light. The large beauty panel light in this embodiment is a flat panel light, while the large beauty panel light in Embodiment 1 is a folding type.

[0092] like Figures 16-18 As shown, the large beauty panel light includes a main body 10 and a support 14. The support 14 is hinged to the main body 10 and supports the main body 10. The main body 10 includes a housing, a light panel assembly 101, and a fan 102. The housing includes a shell wall 103, a top wall 104, and a bottom wall 105. An accommodating space 107 is formed between the shell wall 103, the top wall 104, and the bottom wall 105. At least two of the shell wall 103, the top wall 104, and the bottom wall 105 are provided with airflow ports 10. 6. To connect the accommodating space 107 with the external space; the lamp panel assembly 101 is disposed in the accommodating space 107, and the lamp panel assembly 101 and the housing enclose at least part of the structure of the airflow channel; the fan 102 is disposed in the airflow channel, and the air outlet of the fan 102 is connected to any air outlet 106 of the housing wall 103, the top wall 104 and the bottom wall 105. The fan 102 is used to drive the airflow in the airflow channel to cool and dissipate heat from the lamp panel assembly 101.

[0093] The beauty panel light has air vents 106 on at least two of the shell walls 103, top wall 104, and bottom wall 105 of the housing, which can connect to the housing's accommodating space 107. The light panel assembly 101 is disposed in the accommodating space 107 and forms at least part of the airflow channel with the housing. The air outlet 1020 of the fan 102 in the airflow channel is connected to any one of the air vents 106 on the shell walls 103, top wall 104, and bottom wall 105. The fan 102 can drive the airflow in the airflow channel to cool the light panel assembly 101, thereby extending the service life of the beauty panel light and improving the user experience.

[0094] Unlike folding beauty panel lights, flat panel lights do not require folding, thus allowing for more flexible placement of the airflow inlets 106.

[0095] like Figures 16 to 18 As shown, the airflow port 106 can be arranged at any two of the shell wall 103, top wall 104, and bottom wall 105, or at all three locations. For example, the airflow port 106 can be arranged at the shell wall 103 and top wall 104, while the fan 102 can be arranged near the top wall 104, and the air outlet 1020 can be connected to the airflow port 106 of the shell wall 103, so that the airflow flows in from the airflow port 106 at the top wall 104 and flows out from the airflow port 106 at the shell wall 103, thereby achieving heat dissipation for the lamp panel assembly 101 and the light source group 13 (depending on whether heat dissipation holes are provided on the lamp panel assembly 101; in the embodiments of this solution, airflow holes 1011 are provided, so heat dissipation for the light source group 13 is possible).

[0096] For example, the air outlet 106 can be located at the bottom wall 105 and the top wall 104 respectively. The air outlet of the fan 102 can be connected to the air outlet 106 of the top wall 104. At this time, the airflow flows in from the air outlet 106 of the bottom wall 105 and flows out from the air outlet 106 of the top wall 104, thereby achieving heat dissipation for the lamp panel assembly 101 and the light source group 13.

[0097] For example, airflow ports 106 are provided on the shell wall 103, top wall 104 and bottom wall 105. The air outlet of the fan 102 can be connected to the airflow port 106 of the top wall 104. At this time, the airflow can enter from the airflow ports 106 of the bottom wall 105 and the shell wall 103 and flow out from the airflow port 106 of the top wall 104, thereby realizing heat dissipation of the lamp panel assembly 101 and the light source group 13.

[0098] Similarly, the housing of the beauty panel light also includes a support member 12 and function buttons. The support member 12 protrudes from the outer side of the bottom wall 105, while the function buttons are located on the top wall 104 or the side wall of the housing. The support member 12 elevates the main body 10, preventing the airflow vent 106 at the bottom wall 105 from being blocked during use, thus ensuring airflow. The placement of the function buttons on the top wall 104 or side wall facilitates user operation, enhancing the user experience.

[0099] The internal structure of the flat panel beauty panel light can be referred to the folding panel light in Embodiment 1, and will not be described again here. It can be understood that the flat panel panel light can be understood as a folding panel light with 10 main bodies.

[0100] Obviously, the above embodiments of this utility model are merely examples for clearly illustrating the present utility model, and are not intended to limit the implementation of the present utility model. Those skilled in the art can make various obvious changes, readjustments, and substitutions without departing from the protection scope of this utility model. It is neither necessary nor possible to exhaustively describe all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the protection scope of the claims of this utility model.

Claims

1. A large beauty panel light, characterized in that: It includes at least two hinged bodies, each body comprising: The shell includes a shell wall, a top wall and a bottom wall, and an accommodating space is formed between the shell wall, the top wall and the bottom wall. An air vent is provided on the top wall and the bottom wall to connect the accommodating space with the external space. A lamp panel assembly is disposed within the accommodating space, and the lamp panel assembly and the housing enclose at least a portion of the structure forming an airflow channel; A fan is disposed within the airflow channel and arranged adjacent to the bottom wall. The air outlet of the fan is connected to the airflow port of the bottom wall. The fan is used to drive the airflow within the airflow channel to cool and dissipate heat from the lamp panel assembly.

2. The beauty panel light according to claim 1, characterized in that, The lamp panel assembly includes: The lamp panel body includes a first wall and a second wall disposed opposite to each other. The lamp panel body is placed in the accommodating space. The second wall, together with the shell wall, the top wall and the bottom wall, forms at least a portion of the structure of the airflow channel. A light source group, multiple light source groups are disposed on the first wall of the lamp panel body, and the light source group is used to emit light to the outside.

3. The beauty panel light according to claim 2, characterized in that, The plane containing the lowest point of the airflow inlet along the direction perpendicular to the shell wall is the first plane α; The plane containing the second wall is higher than the first plane α in a direction perpendicular to the shell wall.

4. The beauty panel light according to claim 2 or 3, characterized in that, The plane containing the highest point of the airflow inlet along the direction perpendicular to the shell wall is the second plane β; The plane containing the second wall is higher than the second plane β in a direction perpendicular to the shell wall.

5. The beauty panel light according to claim 1, characterized in that, The shell wall is provided with multiple sets of reinforcing ribs.

6. The beauty panel light according to claim 5, characterized in that, The plane containing the highest point of the airflow inlet along the direction perpendicular to the shell wall is the second plane β; At least some of the reinforcing ribs are located on a plane that is lower than the second plane β along a direction perpendicular to the shell wall.

7. The beauty panel light according to claim 5 or 6, characterized in that, The plane containing the lowest point of the airflow inlet along the direction perpendicular to the shell wall is the first plane α, and the plane containing the highest point of at least some of the reinforcing ribs along the direction perpendicular to the shell wall is not higher than the first plane α.

8. The beauty panel light according to claim 1, characterized in that, The beauty panel light also includes a support member, which protrudes from the outer side of the bottom wall.

9. A large beauty panel light, characterized in that: The system includes a main body and a support frame, the support frame being hinged to the main body and used to support the main body. The main body includes: A shell includes a shell wall, a top wall, and a bottom wall, wherein an accommodating space is formed between the shell wall, the top wall, and the bottom wall, and air vents are provided on at least two of the shell wall, the top wall, and the bottom wall to connect the accommodating space with an external space; A lamp panel assembly is disposed within the accommodating space, and the lamp panel assembly and the housing enclose at least a portion of the structure forming an airflow channel; A fan is disposed within the airflow channel. The air outlet of the fan is connected to any one of the airflow ports of the shell wall, the top wall, and the bottom wall. The fan is used to drive the airflow within the airflow channel to cool and dissipate heat from the lamp panel assembly.

10. The large beauty light panel according to claim 9, characterized in that, The airflow inlets are located on the shell wall and the top wall, and the air outlet of the fan is connected to the airflow inlets on the shell wall. Alternatively, the airflow inlets are located at the bottom wall and the top wall, and the air outlet of the fan is connected to the airflow inlet on the top wall; Alternatively, the airflow inlets are located on the shell wall and the bottom wall, and the air outlet of the fan is connected to the airflow inlets on the shell wall; Alternatively, the shell wall, the top wall, and the bottom wall are all provided with airflow ports, and the air outlet of the fan is connected to the airflow port of the top wall.

11. The large beauty light panel according to claim 9, characterized in that, The beauty panel light also includes a support member, which protrudes from the outer side of the bottom wall.