FLEXIBLE SURFACE AREA LIGHT, IN PARTICULAR FOR USE IN A PIECE OF CLOTHING
20180087765 · 2018-03-29
Inventors
- Hansjürgen Horter (Oberboihingen, DE)
- Stefan Loy (Denkendorf, DE)
- Sebastian Stoll (Stuttgart, DE)
- Paul HOFMANN (Illertissen, DE)
Cpc classification
F21V7/0016
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V5/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V33/0008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2109/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2105/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21V33/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a surface area light (10), in particular for use in a piece of clothing (30). The surface area light (10) according to the invention has a cover layer (11) having a light emission area (12). A reflection layer (13) having a reflection area (14) is arranged on the side opposite the cover layer (11). A first scattering layer (15) made of a textile material, preferably a textile fabric, directly adjoins the cover layer (11). The textile fabric can be connected to the cover layer in a laminar manner or can be in contact thereto. Light sources (16) are arranged at a distance from each other in a longitudinal direction L in one or more rows. The light sources (16) have a light emission side (17) which faces the reflection layer (13). A spacer means (19) secures a minimum distance between the light sources (16) and the reflection layer (13). The light emitted from the light sources (16) is reflected on the reflection layer (13) to the cover layer (11). The optical path within the surface area light (10) can thus be enlarged without enlarging the thickness of the surface area light (10) at a right angle to the light emission area (12).
Claims
1-15. (canceled)
16. A flexible panel light for use in an article of clothing, comprising: a light-emitting surface which is present on a cover layer; a reflection layer which is arranged on the side opposite the cover layer; at least one diffusion layer of a textile material arranged between the cover layer and the reflection layer; a plurality of light sources that are arranged between the reflection layer and the cover layer and that radiate light away from the cover layer toward the reflection layer; and a spacer element that is arranged between the light sources and the reflection layer and that ensures a predetermined spacing between the light sources and the reflective layer.
17. A flexible panel light according to claim 16, wherein the light sources are embodied as point-like or hemispherically emitting light sources.
18. A flexible panel light according to claim 16, wherein the plurality of light sources are formed by semiconductor light sources.
19. A flexible panel light according to claim 16, wherein the spacer element comprises at least one casting element covering a light emitting side of one or more light sources.
20. A flexible panel light according to claim 19, wherein each light source includes a casting element.
21. A flexible panel light according to claim 19, wherein an area-measured textile fabric material is contained as a diffusion material in the casting element.
22. A flexible panel light according to claim 16, wherein the at least one diffusion layer comprises a first diffusion layer which adjoins the cover layer.
23. A flexible panel light according to claim 16, wherein the spacer element comprises a second diffusion layer between the light sources and the reflection layer.
24. A flexible panel light according to claim 23, wherein at least one of the first diffusion layer and the second diffusion layer consists of a textile material.
25. A flexible panel light according to claim 23, wherein at least one of the first diffusion layer and the second diffusion layer has at least one area-measured textile fabric.
26. A flexible panel light according to claim 24, wherein the textile material of the at least one of the first diffusion layer and second diffusion layer consists of at least one of a fleece material, a woven fabric and a knitted fabric.
27. A flexible panel light according to claim 26, wherein the textile material is embodied as a three-dimensional textile fabric.
28. A flexible panel light according to claim 24, wherein the textile material is a warp knitted fabric or weft knitted fabric.
29. A flexible panel light according to claim 16, wherein the plurality of light sources are not rigidly connected to one another.
30. An article of clothing comprising: a flexible panel light comprising: a light-emitting surface which is present on a cover layer; a reflection layer which is arranged on the side opposite the cover layer; at least one diffusion layer of a textile material arranged between the cover layer and the reflection layer; a plurality of light sources that are arranged between the reflection layer and the cover layer and that radiate the light away from the cover layer toward the reflection layer; and a spacer element that is arranged between the light sources and the reflection layer and that ensures a predetermined spacing between the light sources and the reflective layer.
Description
[0023] Advantageous embodiments of the invention are obvious from the dependent claims, the description below, and the drawings. In the following, preferred embodiments are explained in detail with reference to the accompanying drawings. The drawings show:
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033] On its side opposite cover layer 11, panel light 10 has a reflection layer 13 with a reflection surface 14, Reflection surface 14 faces cover layer 11. No light can escape through reflection layer 13. The light incident on the reflecting surface 14 is totally reflected.
[0034] On the side of cover layer 11, which is opposite the light-emitting surface 12, a first diffusion layer 15, which consists of a textile material, optionally adjoins. First diffusion layer 15 is formed by a textile fabric or comprises at least one textile fabric. A textile fabric can be formed from a fleece material, a woven fabric a weft knitted fabric or a warp knitted fabric. By means of the fibers or threads of the textile fabric of the first diffusion layer, the light is refracted and/or reflected and/or diffrected, as a result of which a diffusion and a generally good two-dimensional light emission with small differences in brightness within light-emitting surface 12 can be achieved. In the first embodiment, the diffusion effect is illustrated schematically by way of example in
[0035] Multiple illuminants 16 are arranged between the cover layer 11 and the reflection layer 13 and, for example, between the first diffusion layer 15 and the reflection layer 13. Each illuminant 16 has a light emitting side 17, which faces reflection surface 14. The light emerging at light emitting side 17 of the illuminants 16 is therefore emitted toward the reflection surface 14 and is reflected there toward the cover layer 11 or light-emitting surface 12 respectively.
[0036] A transverse direction and a longitudinal direction L span a plane, which is aligned parallel to light-emitting surface 12 and/or to the reflection surface 14 and/or is oriented at a right angle to the optical axes of illuminants 16.
[0037] Illuminants 16 are preferably embodied by semiconductor illuminants, in particular light-emitting diodes or light-emitting diode chips. Illuminants 16 can be arranged on a common flexible carrier 18, for example, a textile strip. Illuminants 16 are electrically connected in series and/or parallel to one another and/or individually to a current or voltage source, respectively. For this purpose, they are connected to flexible electrical conductors, which can be integrated into carrier 18. Carrier 18 is optional and can also be omitted.
[0038] The illuminants 16 can form separately controllable groups. The illuminants 16 of each controllable group can then be arranged spatially at the intended locations in the panel light, for example in order to form characters, symbols, letters, in each case a segment of a 7-segment display, etc.
[0039] A spacer means 19 is present between the illuminants 16 and reflection layer 13. The spacer means 19 ensures that a minimum distance is maintained between light emitting side 17 of the illuminants 16 and the reflecting surface 14 even if the panel light is elastically deformed.
[0040] In the first design embodiment according to
[0041] Second diffusion layer 20 consists for example of textile material, analogous to first diffusion layer 15, and in the case of a preferred embodiment, is formed by a textile fabric or contains at least one such a textile fabric. The diffusion effect can be further improved by means of this second diffusion layer 20. Illuminants 16 are arranged in the area between two diffusion layers 19, 20 and can be held due to at least one of the two diffusion layers 19, 20 deforms elastically and illuminants 16 are thereby held by force-fit.
[0042] Instead of the second diffusion layer 20, a transparent, non-diffusing layer or another suitable spacer means 19 could also be used.
[0043] The light path from light-emitting side 17 of illuminants 16 to light-emitting surface 12 is increased by the fact that the light from illuminants 16 is not emitted directly to light-emitting surface 12 but instead oppositely to the reflecting surface 14. The light initially passes through the distance defined by spacer means 19 to reflection surface 14, is totally reflected there, passes through the distance specified by spacer means 19 again, then passes through the first diffusion layer 15, passes through the cover layer 11 and exits at the light-emitting surface 12 of the cover layer 11. When the spacer means 19 is also formed by a diffusion layer (second diffusion layer 20), the light passes along the whole distance up to cover layer 13 through a diffusing layer, namely the first diffusion layer 15 and the second diffusion layer 20. The diffusion and, consequently, the uniform light emission with minimal differences in brightness within light-emitting surface 12 is further optimized in this way. For the eye of an observer, a very uniform luminous effect is produced at light-emitting surface 12 of panel light 10.
[0044]
[0045] The reflection surface 14 of the reflection layer 13 abuts against the casting bodies 25, The reflection layer 13 is so to speak supported on the casting bodies 25. In order to achieve sufficient support, the illuminants 16 with casting bodies 25 can also be arranged in multiple rows, which are spaced apart in the transverse direction Q and extend in the longitudinal direction L, or otherwise arranged in a plane spanned by the longitudinal direction L and transverse direction Q. In the illustrated embodiments, the illuminants 16 are arranged in longitudinal direction L only in one row with a distance from one another. In all embodiments, several such rows could also be arranged on a common carrier 18 or on different carriers 18.
[0046] In order to achieve sufficient support in the embodiment according to
[0047] It is also possible to embody the spacer means 19 by a combination of a layer, in particular a second diffusion layer 20, and of multiple casting bodies 25. Thereby in a modification of the embodiment of
[0048]
[0049] In
[0050]
[0051] A voltage or current supply for illuminants 16 can be integrated into a pocket of clothing article 30. If light sources 16 are formed by semiconductor illuminants, in particular light-emitting diodes, one or more series resistors may be required for operating the illuminants in order to be able to operate illuminants 16 with a voltage source, such as an accumulator or a battery. The at least one series resistor can be arranged directly to the respective illuminant 16 and/or on carrier 18. In this case, it is also possible to use a series resistor for several illuminants 16.
[0052] In all design embodiments, the first diffusion layer 15 and/or second diffusion layer 16 can be formed as an area-measured textile fabric or comprise such. For example, a woven fabric and/or weft knitted fabric and/or warp knitted fabric and/or a fleece fabric can be used as textile fabric material. The woven fabric can be realized, for example, as a three-dimensional woven fabric with several woven fabric layers, the fabric layers being connected with each other by means of pile yarns. Each diffusion layer 15, 20 can also have multiple textile fabrics, for example also fabrics of different types, such as a woven fabric in combination with a knitted fabric.
[0053] The reflective layer 13 as well as the first diffusion layer 15 and, if present, the second diffusion layer 19, as well as cover layer 11, are flexible and can be bent in the case of the forces, which usually occur during the wearing of an article of clothing 30. As a result, an adaptation of clothing 30 to the body shape or body posture is also ensured where the panel light 10 is integrated into the article of clothing 30. In this way, the movement of the person wearing the article of clothing 30 is not or only slightly affected.
[0054] The invention relates to a panel light 10, in particular for use in an article of clothing 30. The panel light 10 has a cover layer 11 with a light-emitting surface 12. A reflection layer 13 with a reflection surface 14 is arranged on the side opposite cover layer 11. A first diffusion layer 15 of a textile material, preferably a textile fabric, directly adjoins the cover layer 11. The textile fabric can be in planar connection to the cover layer or in planar abutment against it. In a longitudinal direction L, the illuminants 16 are arranged at a distance from one another in one or more rows. The illuminants 16 have a light-emitting side 17, which faces reflection layer 13. A spacer means 19 ensures a minimum distance between the illuminants 16 and the reflection layer 13. The light emitted by the illuminants 16 is reflected on reflection layer 13 towards cover layer 11. As a result, the light path within the panel light 10 can be increased without increasing the thickness of panel light 10 at a right angle to light-emitting surface 12.
REFERENCE LIST
[0055] 10 Panel light
11 Cover layer
12 Light-emitting surface
13 Reflection layer
14 Reflection surface
15 first diffusion layer
16 Illuminant
[0056] 17 Light-emitting side
18 Carrier
[0057] 19 Spacer means
20 second diffusion layer
25 Casting body
26 first axis
27 second axis
30 Article of clothing
31 Front side
32 Back side
L Longitudinal direction
Q Transverse direction