Cloth lamp

By setting a protective layer with a support strip between the lamp panel and the diffuser film, the problem of difficult lamp chip repair caused by traditional foam adhesive is solved, the replacement of lamp chips and troubleshooting are simplified, and the maintainability and ease of use of the lighting layout are improved.

CN224190373UActive Publication Date: 2026-05-01GODOX PHOTO EQUIPMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GODOX PHOTO EQUIPMENT CO LTD
Filing Date
2025-05-06
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Traditional perforated foam adhesive leads to low efficiency in troubleshooting and replacing LED chips, as it is difficult for repair personnel to remove the foam adhesive and access the faulty LED chip.

Method used

A protective layer is set between the lamp board and the diffuser film. The protective layer consists of multiple support strips, and the support strips form a receiving groove. The light-emitting unit group is housed in the groove, which avoids the point-to-point isolation structure and simplifies the replacement of lamp beads and troubleshooting.

Benefits of technology

It improves the maintainability and ease of use of the lighting, simplifies the replacement of LED beads and troubleshooting, and enhances the overall maintenance efficiency of the lighting system.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224190373U_ABST
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Abstract

The utility model relates to a cloth lamp, and belongs to the technical field of photographic equipment. The cloth lamp comprises a lamp body and a protective layer, the lamp body comprises base cloth, a lamp panel and a soft light film, and the lamp panel is arranged between the base cloth and the soft light film; the lamp panel comprises a panel body and a plurality of light-emitting units, the light-emitting units are arrayed on the side, facing the soft light film, of the panel body to form multiple columns of light-emitting unit sets, each column of light-emitting unit set comprises the multiple light-emitting units arranged at intervals in the first direction, and the multiple columns of light-emitting unit sets are arranged at intervals in the second direction intersecting with the first direction. The protective layer is arranged between the lamp panel and the soft light film, the protective layer comprises a plurality of supporting strips, and the supporting strips are arranged between the adjacent light emitting unit groups; the multiple supporting strips extend in the first direction and are arranged at intervals in the second direction, so that the containing grooves for containing the light-emitting unit sets are formed between every two adjacent supporting strips, one row of light-emitting unit sets are contained in one containing groove, and the operation difficulty of replacement and troubleshooting of the lamp beads is lowered.
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Description

Lighting Technical Field

[0001] This utility model relates to the field of photographic equipment technology, and in particular to a lighting arrangement. Background Technology

[0002] A diffuser light is a flexible lighting device widely used in film and television shooting, advertising production, and studio lighting. It typically consists of a base fabric, a light panel, and a diffuser film. To prevent damage to the LEDs on the light panel, existing technologies often use perforated foam adhesive between the light panel and the diffuser film.

[0003] Traditional perforated foam adhesive typically uses a point-to-point bonding structure, meaning each LED chip has its own through-hole, with each chip surrounded and isolated by the foam adhesive. This individual isolation of each chip makes it difficult for repair personnel to access faulty chips without completely removing the foam, thus hindering troubleshooting and chip replacement efficiency. Summary of the Invention

[0004] One objective of this invention is to solve the technical problem that traditional foam adhesive layers affect the efficiency of troubleshooting and LED replacement.

[0005] To address the aforementioned technical problems, this application provides a lighting arrangement, comprising: a lamp body including a base fabric, a lamp panel, and a diffuser film, wherein the lamp panel is disposed between the base fabric and the diffuser film; the lamp panel includes a plate body and a plurality of light-emitting units disposed on the plate body, the plurality of light-emitting units being arrayed on the side of the plate body facing the diffuser film to form multiple rows of light-emitting unit groups, each row of light-emitting unit groups including a plurality of light-emitting units spaced apart along a first direction, and the multiple rows of light-emitting unit groups being spaced apart along a second direction intersecting the first direction; a protective layer disposed between the lamp panel and the diffuser film, the protective layer including a plurality of support strips, the support strips being disposed between adjacent light-emitting unit groups; the plurality of support strips extending along the first direction and spaced apart along the second direction, such that a receiving groove is formed between two adjacent support strips, and the light-emitting unit groups are received within the receiving groove.

[0006] In some embodiments of this application, the protective layer further includes a connecting portion that extends along the second direction and is disposed at both ends of the support strip. The connecting portion is connected to the ends of the plurality of support strips to connect the plurality of support strips into an integral structure.

[0007] In some embodiments of this application, the light panel is rectangular, the first direction is the length direction of the light panel, and the second direction is the width direction of the light panel.

[0008] In some embodiments of this application, the thickness of the support strip is greater than the height of the light-emitting unit, so that when the protective layer covers the lamp panel, the light-emitting unit is accommodated in the receiving groove and does not exceed the protective layer.

[0009] In some embodiments of this application, each of the light-emitting units includes an RGB lamp bead disposed in the center and a plurality of LED lamp beads disposed around the RGB lamp bead.

[0010] In some embodiments of this application, the lighting fixture further includes a heat-dissipating adhesive layer disposed between the base fabric and the lamp panel; both sides of the heat-dissipating adhesive layer are capable of being bonded to the base fabric and the lamp panel.

[0011] In some embodiments of this application, the protective layer is double-sided foam adhesive, the lamp board and the diffuser film are respectively bonded to opposite sides of the protective layer, and the light-emitting unit group is sealed in the receiving groove; the thickness of the protective layer is greater than the thickness of the heat-dissipating adhesive layer.

[0012] In some embodiments of this application, the lighting arrangement further includes a flexible edging that extends along the outer periphery of the lamp body and wraps around the edges of the base fabric and the diffuser film.

[0013] In some embodiments of this application, the lighting arrangement further includes a power cord module, one end of which is electrically connected to the lamp board, and the other end of which is used to be electrically connected to an external power source.

[0014] In some embodiments of this application, multiple power cord modules are provided, and the multiple power cord modules are arranged on opposite sides of the lamp body, so that when multiple lamps are spliced ​​together, the power cord modules on adjacent lamp bodies can be connected to each other.

[0015] As can be seen from the above technical solution, the beneficial effects of this utility model are as follows:

[0016] This application provides a lighting arrangement, the lamp body of which includes a base fabric, a lamp panel, and a diffuser film, with the lamp panel disposed between the base fabric and the diffuser film. The lamp panel includes a panel body and multiple light-emitting units disposed on the panel body. These multiple light-emitting units are arrayed on the side of the panel body facing the diffuser film to form multiple rows of light-emitting unit groups. A protective layer with multiple support strips is disposed between the lamp panel and the diffuser film. The support strips are located between adjacent light-emitting unit groups, forming receiving grooves between adjacent support strips, with one row of light-emitting unit groups housed within each receiving groove. In this way, the protective layer not only provides buffer protection for individual light-emitting units, but the relatively large openings in the receiving grooves on the protective layer also avoid the maintenance difficulties caused by individually covering each LED in traditional point-to-point isolation structures. This effectively simplifies the difficulty of replacing LEDs and troubleshooting, improving the maintainability and ease of use of the lighting arrangement. Attached Figure Description

[0017] Figure 1 is a three-dimensional structural diagram of the lighting arrangement in some embodiments.

[0018] Figure 2 is a three-dimensional structural diagram of the lighting arrangement in Figure 1 from another angle.

[0019] Figure 3 is a schematic diagram of the exploded structure of the lighting layout in Figure 1.

[0020] Figure 4 is a schematic diagram of the exploded structure of the lighting layout in Figure 2.

[0021] Figure 5 is a top view of the structure of the lamp panel in Figure 3.

[0022] Figure 6 is a partially enlarged structural diagram of the lamp panel in Figure 5.

[0023] Figure 7 is a top view of the protective layer for the lighting in Figure 2.

[0024] Figure 8 is a top view of the structure after the protective layer is installed on the lamp panel.

[0025] Figure 9 is a schematic diagram of the three-dimensional cross-sectional structure of the lighting arrangement in Figure 1.

[0026] Figure 10 is a side view of the cross-section of the lighting arrangement in Figure 9.

[0027] The annotations in the attached figures are explained as follows:

[0028] 100. Lighting arrangement; 10. Lamp body; 11. Base fabric; 12. Lamp board; 121. Board body; 122. Light-emitting unit; 1220. Light-emitting unit group; 1221. RGB lamp bead; 1222. LED lamp bead; 13. Soft light film; 20. Protective layer; 21. Support strip; 22. Connecting part; 23. Receiving groove; 30. Heat dissipation adhesive layer; 40. Power cord module; 50. Flexible edging. Detailed Implementation

[0029] Typical embodiments embodying the features and advantages of this utility model will be described in detail in the following description. It should be understood that this utility model can have various variations in different embodiments, all of which do not depart from the scope of this utility model, and the descriptions and illustrations therein are for illustrative purposes only and not intended to limit this utility model.

[0030] In the description of this application, it should be understood that, in the embodiments shown in the accompanying drawings, the indications of direction or positional relationships (such as up, down, left, right, front, and back, etc.) are only for the convenience of describing this application and simplifying the description, 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. These descriptions are appropriate when these elements are in the positions shown in the accompanying drawings. If the description of the positions of these elements changes, these directional indications also change accordingly.

[0031] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the stated features. In the description of this application, "a plurality of" means two or more, unless otherwise explicitly specified.

[0032] Please refer to Figures 1 to 10. This embodiment provides a lighting arrangement 100, which includes a lamp body 10 and a protective layer 20.

[0033] The lamp body 10 includes a base fabric 11, a lamp panel 12, and a diffuser film 13. The lamp panel 12 is disposed between the base fabric 11 and the diffuser film 13. The lamp panel 12 includes a plate body 121 and a plurality of light-emitting units 122 disposed on the plate body 121. The plurality of light-emitting units 122 are arrayed on the side of the plate body 121 facing the diffuser film 13 to form multiple rows of light-emitting unit groups 1220. Each row of light-emitting unit groups 1220 includes a plurality of light-emitting units 122 spaced apart along a first direction. The multiple rows of light-emitting unit groups 1220 are spaced apart along a second direction intersecting the first direction.

[0034] A protective layer 20 is disposed between the lamp panel 12 and the diffuser film 13. The protective layer 20 includes a plurality of support strips 21, which are disposed between adjacent light-emitting unit groups 1220. The plurality of support strips 21 extend along a first direction and are spaced apart along a second direction, such that a receiving groove 23 is formed between two adjacent support strips 21, and the light-emitting unit groups 1220 are accommodated in the receiving groove 23.

[0035] Specifically, the base fabric 11 is located on the backlight side of the lamp body 10, serving as structural support and light shielding. It is typically made of a fabric material with a certain degree of flexibility and structural strength to facilitate the rolling and folding of the lamp body 10. The diffuser film 13 is correspondingly positioned on the light-emitting side of the lamp body 10 to diffuse and soften the light emitted by the lamp panel 12, making the light emitted by the lamp 100 softer and more uniform, thus meeting the application requirements of film and television shooting or advertising lighting scenarios.

[0036] The lamp panel 12 includes a panel 121 and multiple light-emitting units 122. The panel 121 is located between the base fabric 11 and the diffuser film 13. The panel 121 can be a flexible circuit board that can be rolled up and folded together with the lamp arrangement 100. The light-emitting units 122 protrude from the panel 121 and are used to emit light. Multiple light-emitting units 122 are evenly spaced to form an array to improve the uniformity of light emission from the lamp arrangement 100. A protective layer 20 is installed between the lamp panel 12 and the diffuser film 13. The protective layer 20 may include multiple support strips 21 extending along a first direction. Each support strip 21 is disposed between adjacent light-emitting unit groups 1220. Adjacent support strips 21 are spaced apart to form receiving grooves 23 for accommodating light-emitting unit groups 1220. The receiving grooves 23 also extend along the first direction, so that each row of light-emitting units 122 can be embedded in the corresponding receiving groove 23.

[0037] The protective layer 20, formed by multiple support strips 21, creates a continuous and relatively flat structure that supports the even unfolding of the diffuser film 13, preventing localized depressions or wrinkles and improving the overall diffused light effect. Furthermore, since the support strips 21 of the protective layer 20 do not individually cover each LED chip, but rather separate each row of light-emitting unit groups 1220 as a whole, when an LED chip is damaged, maintenance personnel only need to lift the diffuser film 13 and quickly locate and replace the faulty chip through the larger opening of the receiving slot 23. This avoids the technical problems associated with troubleshooting and chip replacement caused by traditional foam adhesive layers.

[0038] Please refer to Figures 5 to 8. In some embodiments, the lamp panel 12 is rectangular, with the first direction being the length direction of the lamp panel 12 and the second direction being the width direction of the lamp panel 12.

[0039] Specifically, as shown in Figure 5, the lamp panel 12 is a rectangular plate, and multiple light-emitting units 122 are arranged laterally at intervals along the length of the plate body 121 to form a row of light-emitting unit groups 1220. The multiple rows of light-emitting unit groups 1220 are arranged at intervals along the width of the plate body 121, so that the multiple light-emitting units 122 are arranged in a rectangular array.

[0040] Accordingly, as shown in Figures 7 and 8, the multiple support strips 21 of the protective layer 20 also extend along the length direction of the plate 121, and adjacent support strips 21 are spaced apart along the width direction of the plate 121, so that a receiving groove 23 extending along the length direction is formed between adjacent support strips 21. One receiving groove 23 can correspond to a row of horizontally arranged light-emitting unit groups 1220, and multiple rows of light-emitting unit groups 1220 spaced apart along the width direction can be accommodated in the receiving grooves 23 spaced apart along the width direction.

[0041] Of course, in some other embodiments, the lamp panel 12 can also be circular or other polygonal shapes. The light-emitting units 122 arrayed on the panel 121 can also be a circular array. That is, the first direction is the circumferential direction, and the second direction is the circumferential radial direction. In this case, the multiple support strips 21 on the protective layer 20 also extend in the circumferential direction and are arranged radially at intervals to form multiple concentric ring structures.

[0042] Please refer to Figures 7 and 8. In some embodiments, the protective layer 20 further includes a connecting portion 22, which extends along the second direction and is disposed at both ends of the support strip 21. The connecting portion 22 is connected to the ends of the plurality of support strips 21 to connect the plurality of support strips 21 into an integral structure.

[0043] Specifically, there are two connecting parts 22, which are strip-shaped structures that extend along the width of the lamp panel 12. The two connecting parts 22 are located at both ends of the plurality of support strips 21 to connect the ends of the plurality of support strips 21 to form an integrated grid frame structure.

[0044] The integrated protective layer 20 effectively simplifies the assembly process of the lighting fixture 100, requiring only the integrated protective layer 20 to be placed over the lamp panel 12 for installation. This is particularly suitable for large-sized flexible lighting fixtures 100. Furthermore, the connecting part 22 connects multiple support bars 21 to form a grid frame, which not only improves the overall stability and structural strength of the protective layer 20, preventing individual support bars 21 from shifting, warping, or falling off during installation, but also maintains the accurate correspondence between the light-emitting unit group 1220 and the support bars 21.

[0045] Please refer to Figure 6. In some embodiments, each light-emitting unit 122 includes an RGB lamp bead 1221 disposed in the center and a plurality of LED lamp beads 1222 disposed around the RGB lamp bead 1221.

[0046] Specifically, each light-emitting unit 122 consists of a centrally located RGB LED bead 1221 and four surrounding LED beads 1222. The RGB LED bead 1221 is a red, green, and blue three-color adjustable light source with full-color switching capability, providing a color-adjustable base light source for the lighting arrangement 100 to meet the flexible color adjustment needs of different scenarios. The four surrounding LED beads 1222 can be monochromatic light sources, such as cool white LED beads and / or warm white LED beads, responsible for intensity and color temperature control, to provide high-brightness, stable color temperature supplementary light, resulting in better overall lighting effects and significantly improving the quality of the soft light effect.

[0047] Multiple LEDs on each light-emitting unit 122 are housed in a receiving slot 23 with a large opening. When an LED on a light-emitting unit 122 is damaged and needs to be replaced, the user only needs to peel off the diffuser film 13 without tearing off the protective layer 20 to inspect and replace the LED. This significantly improves the maintainability of the lighting arrangement 100 and the efficiency of subsequent maintenance.

[0048] Please refer to Figure 9. In some embodiments, the thickness of the support strip 21 is greater than the height of the light-emitting unit 122. When the protective layer 20 covers the lamp panel 12, the light-emitting unit 122 is accommodated in the receiving groove 23 and does not exceed the protective layer 20.

[0049] Specifically, the thickness of the support strip 21 is greater than the overall height of the light-emitting unit 122 on the lamp board 12, that is, the thickness of the protective layer 20 is greater than the height of the lamp bead protruding from the board 121. This ensures that when the protective layer 20 completely covers the lamp board 12, the lamp bead can be completely accommodated inside the receiving groove 23 formed by the support strip 21, and will not protrude above the surface of the protective layer 20. This allows the protective layer 20 to act as a buffer and isolation when the diffuser film 13 is under pressure, effectively preventing external forces from being directly applied to the surface of the lamp bead, thereby effectively reducing problems such as lamp bead deformation and damage caused by local impact or squeezing during transportation or operation.

[0050] Please refer to Figures 3, 4 and 10. In some embodiments, the lamp 100 further includes a heat dissipation adhesive layer 30, which is disposed between the base fabric 11 and the lamp panel 12; both sides of the heat dissipation adhesive layer 30 can be bonded to the base fabric 11 and the lamp panel 12.

[0051] The heat-dissipating adhesive layer 30 can be a flexible sheet structure with good adhesion on both sides, allowing it to adhere tightly to the surfaces of the base fabric 11 and the lamp panel 12, respectively. The heat-dissipating adhesive layer 30 primarily improves the heat conduction efficiency of the lamp panel 12 during operation, reducing localized temperature rise caused by continuous light emission, thereby ensuring the stable operation of the light-emitting unit 122. After the light-emitting unit 122 generates heat, the heat can be transferred vertically from the lamp panel 12 to the heat-dissipating adhesive layer 30 for heat dissipation, preventing heat accumulation inside the lamp panel 12 or around the light-emitting unit 122.

[0052] Please refer to Figures 3 and 4. In some embodiments, the protective layer 20 is double-sided foam adhesive. The lamp board 12 and the diffuser film 13 are respectively bonded to the opposite sides of the protective layer 20 and the light-emitting unit group 1220 is sealed in the receiving groove 23. The thickness of the protective layer 20 is greater than the thickness of the heat dissipation adhesive layer 30.

[0053] Specifically, the protective layer 20, disposed between the lamp panel 12 and the diffuser film 13, primarily serves to provide structural buffer protection for the light-emitting units 122 on the lamp panel 12. The heat-dissipating adhesive layer 30, disposed between the base fabric 11 and the lamp panel 12, primarily functions to achieve effective heat conduction and dispersion. Its requirement for buffer protection is relatively low. The thickness of the protective layer 20 is designed to be greater than that of the heat-dissipating adhesive layer 30, thereby achieving better heat dissipation while ensuring buffer protection for the lamp arrangement 100.

[0054] In some embodiments, both the protective layer 20 and the heat dissipation adhesive layer 30 can be made of double-sided foam adhesive material. Double-sided foam adhesive is a functional composite material that combines foam material with adhesive. It has good cushioning protection capability and a certain thermal conductivity, and can take into account both cushioning protection and thermal conductivity performance. It is especially suitable for the structural requirements of flexible lighting 100.

[0055] In some embodiments, the protective layer 20 can be a 1.5mm thick grooved double-sided foam adhesive, and the heat dissipation adhesive layer 30 can be a 0.5mm thick plate-shaped double-sided foam adhesive, so that the overall thickness of the lighting 100 is moderate, making it easy for the user to roll up, and keeping it flat after the lighting 100 is unfolded.

[0056] Referring to Figure 2, in some embodiments, the lamp 100 further includes a flexible edging 50 that extends along the outer periphery of the lamp body 10 and wraps around the edges of the base fabric 11 and the diffuser film 13.

[0057] The flexible edging 50 wraps around the perimeter of the lamp body 10, covering the exposed edges of the base fabric 11 and the diffuser film 13, thus creating a closed structure at the boundaries of the lamp body 10 and preventing exposed fabric edges. Furthermore, the flexible edging 50 can be made of materials with a certain degree of flexibility and abrasion resistance, such as nylon cloth, TPU strips, or fiber-covered fabric. Its flexibility allows it to adapt to the overall bendable and rollable structure requirements of the lamp 100, while the abrasion-resistant material provides a stable connection structure and protective effect, thereby improving the abrasion resistance of the lamp 100.

[0058] By binding the edges, not only is the overall appearance of the BuDeng100 improved, but the structural durability is also enhanced. Especially in repeated use scenarios such as multiple bending, handling, unfolding and storage, it effectively avoids material tearing or delamination.

[0059] Please refer to Figures 1 to 4. In some embodiments, the lighting 100 also includes a power cord module 40, one end of which is electrically connected to the lamp panel 12, and the other end of which is used to be electrically connected to an external power source.

[0060] Specifically, the power cord module 40 is located on the side of the base fabric 11 of the light fixture 100 facing away from the lamp panel 12, and partially extends beyond the outer edge of the lamp body 10 to ensure that the light fixture 100 can be easily and quickly connected to an external power source. The length of the power cord module 40 is designed according to actual needs to ensure that the light fixture 100 can be easily connected to a power source in different usage scenarios. The power cord module 40 can transmit power to the lamp panel 12 to ensure that the lamp panel 12 works normally; the end of the power cord module 40 extending out of the lamp body 10 is used for electrical connection to an external power source, which can be a common socket, battery pack, or other compatible power system.

[0061] Please refer to Figures 3 and 4. In some embodiments, multiple power cord modules 40 are provided, and the multiple power cord modules 40 are arranged on opposite sides of the lamp body 10, so that when multiple lamp bodies 10 are spliced ​​together, the power cord modules 40 on adjacent lamp bodies 10 can be connected to each other.

[0062] Specifically, two power cord modules 40 can be configured, and the two power cord modules 40 can be arranged along the length of the lamp body 10. That is, the two power cord modules 40 are respectively arranged at both ends of the length of the lamp body 10. When multiple lamps 100 are spliced ​​together, the power cord modules 40 between adjacent lamp bodies 10 can be connected to each other to achieve smooth power transmission, enabling multiple lamps 100 to work smoothly and reducing the number of external power interfaces.

[0063] In some other embodiments, the power cord module 40 can also be disposed at both ends of the lamp body 10 in the width direction, so that when the lamps 100 are arranged side by side in the width direction, adjacent lamp bodies 10 can also be quickly connected. It is conceivable that the power cord module 40 can also be set to four, and the four power cord modules 40 can be disposed at both ends of the length direction and both ends of the width direction of the lamp body 10, so that when the lamps 100 are arranged side by side in the length and width directions, the power cord module 40 on one lamp 100 can be connected to the power cord module 40 on another lamp 100.

[0064] In summary, this application provides a lighting arrangement 100. The lamp body 10 of the lighting arrangement 100 includes a base fabric 11, a lamp panel 12, and a diffuser film 13. The lamp panel 12 is disposed between the base fabric 11 and the diffuser film 13. The lamp panel 12 includes a plate body 121 and a plurality of light-emitting units 122 disposed on the plate body 121. The plurality of light-emitting units 122 are arrayed on the side of the plate body 121 facing the diffuser film 13 to form multiple rows of light-emitting unit groups 1220. A protective layer 20 with a plurality of support strips 21 is disposed between the lamp panel 12 and the diffuser film 13. A receiving groove 23 for accommodating the light-emitting unit groups 1220 is formed between adjacent support strips 21, so that each row of light-emitting unit groups 1220 is entirely accommodated in the receiving groove 23. At this time, the protective layer 20 not only provides buffer protection for the light-emitting unit 122, but also avoids the maintenance difficulties caused by individually wrapping each LED in the traditional point-to-point isolation structure. It simplifies the replacement of LEDs and the difficulty of troubleshooting, and improves the maintainability and ease of use of the whole lamp.

[0065] Although the present invention has been described with reference to several typical embodiments, it should be understood that the terminology used is descriptive and exemplary, and not restrictive. Since the present invention can be embodied in many forms without departing from the spirit or essence of the invention, it should be understood that the above embodiments are not limited to any of the foregoing details, but should be interpreted broadly within the spirit and scope defined by the appended claims. Therefore, all variations and modifications falling within the scope of the claims or their equivalents should be covered by the appended claims.

Claims

1. A lighting arrangement, characterized in that, include: A lamp body includes a base fabric, a lamp panel, and a diffuser film. The lamp panel is disposed between the base fabric and the diffuser film. The lamp panel includes a plate body and a plurality of light-emitting units disposed on the plate body. The plurality of light-emitting units are arrayed on the side of the plate body facing the diffuser film to form multiple rows of light-emitting unit groups. Each row of light-emitting unit groups includes a plurality of light-emitting units spaced apart along a first direction. The multiple rows of light-emitting unit groups are spaced apart along a second direction intersecting the first direction. A protective layer is disposed between the lamp panel and the diffuser film. The protective layer includes a plurality of support strips. The support strips are disposed between adjacent light-emitting unit groups. The plurality of support strips extend along the first direction and are spaced apart along the second direction, such that a receiving groove is formed between two adjacent support strips, and the light-emitting unit groups are received in the receiving groove.

2. The lighting arrangement according to claim 1, characterized in that, The protective layer further includes a connecting portion that extends along the second direction and is disposed at both ends of the support strip. The connecting portion is connected to the ends of the plurality of support strips to connect the plurality of support strips into an integral structure.

3. The lighting arrangement according to claim 1, characterized in that, The light panel is rectangular, the first direction is the length direction of the light panel, and the second direction is the width direction of the light panel.

4. The lighting arrangement according to claim 1, characterized in that, The thickness of the support strip is greater than the height of the light-emitting unit, so that when the protective layer covers the lamp panel, the light-emitting unit is housed in the receiving groove and does not exceed the protective layer.

5. The lighting arrangement according to claim 1, characterized in that, Each of the light-emitting units includes an RGB LED bead located in the center and multiple LED beads arranged around the RGB LED bead.

6. The lighting arrangement according to claim 1, characterized in that, The lighting fixture also includes a heat-dissipating adhesive layer, which is disposed between the base fabric and the lamp panel; both sides of the heat-dissipating adhesive layer can be bonded to the base fabric and the lamp panel.

7. The lighting arrangement according to claim 6, characterized in that, The protective layer is double-sided foam adhesive. The lamp board and the diffuser film are respectively bonded to the opposite sides of the protective layer, and the light-emitting unit group is sealed in the receiving groove. The thickness of the protective layer is greater than the thickness of the heat dissipation adhesive layer.

8. The lighting arrangement according to claim 1, characterized in that, The lighting fixture also includes a flexible edging that extends along the outer periphery of the lamp body and wraps around the edges of the base fabric and the diffuser film.

9. The lighting arrangement according to claim 1, characterized in that, The lighting arrangement also includes a power cord module, one end of which is electrically connected to the lamp panel, and the other end of which is used to connect to an external power source.

10. The lighting arrangement according to claim 9, characterized in that, The power cord module is provided in multiple units, and the multiple power cord modules are arranged on opposite sides of the lamp body, so that when the multiple lamps are spliced ​​together, the power cord modules on adjacent lamp bodies can be connected to each other.