Lighting device for vehicles
10539288 ยท 2020-01-21
Assignee
Inventors
Cpc classification
F21S43/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G03H1/0236
PHYSICS
B60Q1/2607
PERFORMING OPERATIONS; TRANSPORTING
F21S43/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G03H1/02
PHYSICS
B60Q1/0041
PERFORMING OPERATIONS; TRANSPORTING
International classification
F21S43/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60Q1/00
PERFORMING OPERATIONS; TRANSPORTING
G03H1/02
PHYSICS
G03H1/22
PHYSICS
B60Q1/26
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A lighting device for vehicles, including a housing, which is closed by a transparent cover panel and contains a holographic lamp unit having has a light source unit, and including an optical unit containing a holographic element for generating a holographic luminous surface, the holographic element being disposed between the light source unit and the cover panel, so that it may be back-lit with the aid of the light source unit, and the holographic unit has a structure such that the holographic luminous surface is disposed between the holographic element and the cover panel, forming a distance from the holographic element and the cover panel.
Claims
1. A lighting device for vehicles, the lighting device comprising: a housing that has a transparent cover panel; a holographic lamp unit including a light source unit and a holographic element for creating a holographic luminous surface, wherein the holographic element is arranged between the light source unit and the cover panel so that the holographic element is adapted to be back-lit via the light source unit, and wherein the holographic element has a structure such that the holographic luminous surface is arranged between the holographic element and the cover panel, the holographic luminous surface being spaced apart from the holographic element by a first distance and being spaced apart from the cover panel by a second distance, and wherein the holographic luminous surface is a floating, virtual luminous surface that runs substantially parallel to the holographic element.
2. The lighting device according to claim 1, wherein the holographic luminous surface emits a diffused light and is designed as a homogeneous luminous surface or as a structured luminous surface having a visible structure pattern.
3. The lighting device according to claim 1, wherein the holographic element is a volume holographic element or a surface holographic element, with the aid of which a light beam is diffracted at a defined angle and/or within a defined spectral range thereof.
4. The lighting device according to claim 1, wherein the light source unit includes at least two light sources disposed in different directions in relation to the holographic element and are activatable independently of each other for alternately generating at least two different holographic luminous surfaces that are located in a shared plane or have a depth offset with respect to each other.
5. The lighting device according to claim 4, wherein the at least two different holographic luminous surfaces are partial holographic luminous surfaces, which generate a predefined light distribution due to the overlapping thereof.
6. The lighting device according to claim 4, wherein the at least two different holographic luminous surfaces are full holographic luminous surfaces, which are each used to generate a separate light distribution.
7. The lighting device according to claim 1, wherein a separate lamp unit is arranged in a main radiation direction of the holographic element for generating another light distribution, and wherein the light source unit of the holographic lamp unit is arranged on a side of the separate lamp unit so that light emitted by the light source unit of the holographic lamp unit and light emitted by the separate lamp unit directly strike the holographic element.
8. The lighting device according to claim 7, wherein a light source of the separate lamp unit is provided within a reflector and wherein the light source unit is positioned outside of the reflector.
9. The lighting device according to claim 1, wherein at least two holographic lamp units are provided, so that at least two holographic luminous surfaces are arranged next to each other in a horizontal and/or vertical direction and/or in an overlapping manner.
10. The lighting device according to claim 1, wherein the holographic element of the holographic lamp unit is structured such that the holographic luminous surface runs in a polygonal manner for forming a three-dimensional luminous surface.
11. The lighting device according to claim 1, wherein the holographic element extends on a single plane.
12. The lighting device according to claim 1, further comprising a lens that is positioned between the light source unit and the holographic element.
13. The lighting device according to claim 1, wherein the holographic luminous surface is spaced apart from an entirety of the holographic element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus, are not limitive of the present invention, and wherein:
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DETAILED DESCRIPTION
(9) A lighting device according to the invention is used to generate signal functions, for example a turn-signal, tail light, brake light, navigation light or daytime running light function. It may be used in the rear or front area of the vehicle or as another lamp.
(10) According to an embodiment of the lighting device according to
(11) Holographic lamp unit 2 includes a light source unit 4, which has a light source 4, and a holographic element 5, which is disposed on a carrier 6.
(12) Light source 4 may be designed as an LED light source or as a laser light source (laser diode) or as a separate semiconductor-based light source. Light source 4 is obliquely offset at an acute angle with respect to vertically running holographic element 5. Holographic element 5 is designed as a holographic, optical element, which belongs to the class of diffractive optical elements. Compared to conventional, refractive optical elements, diffractive optical elements are characterized by much smaller optical structures, which diffract the light within a limited spectral and/or angle range. The diffractive optical elements may be designed as grating, lens or mirror beam splitters and/or as a combination thereof.
(13) Holographic element 5 is designed as a volume holographic element, for example in the form of an emulsion or a film. Holographic element 5 is connected to planar carrier 6 by gluing or by welding and/or ultrasonic welding. Alternatively, holographic element 5 may also be preformed by means of deep-drawing, so that it is overmolded in an injection-molding die as an inserted part, using a transparent material which forms planar and transparent carrier 6. Carrier 6 is designed to be transparent, for example as a lens cover. In the present exemplary embodiment, holographic element 5 is disposed behind planar carrier 6 in main radiation direction H of the lighting device. Planar carrier 6 is fastened, for example, to a holder 7 of housing 1. Volume holographic element 5 may be designed as a transmission-type volume holographic element or as a reflection-type volume holographic element.
(14) Holographic element 5 is disposed in an area between light source 4 and cover panel 3. Holographic element 5 is thus situated such that it may be back-lit by light source 4.
(15) Alternatively, holographic element 5 may be designed as a surface holographic element.
(16) Holographic element 5 has a structure such that a holographic luminous surface 8 is disposed between holographic element 5 and cover panel 3 at a distance a from holographic element 5 and at a distance b from cover panel 3. Holographic luminous surface 8 thus forms a more or less floating, virtual luminous surface. Holographic luminous surface 8 induces a diffused emission of a light beam L1 generated by light source 4. The viewer thus perceives holographic luminous surface 8 as a uniformly, homogeneously illuminated surface.
(17) In the present exemplary embodiment, holographic luminous surface 8 is disposed level with and in parallel to holographic element 5 and essentially with respect to cover panel 3. Alternatively, holographic luminous surface 8 may also be disposed at an angle to holographic element 5 or cover panel 3.
(18) Alternatively, holographic element 5 may have a structure such that holographic luminous surface 8 is designed as a structured luminous surface having a visible structure pattern.
(19) According to an embodiment of the lighting device according to
(20) According to an embodiment of holographic lamp unit 2 according to
(21) Light beam L1 emitted by first light source 4 strikes holographic element 5 so that holographic luminous surface 8 is used as the first partial holographic luminous surface. Light beam L1 emitted by second light source 4 causes a second partial holographic luminous surface 8 to be produced in holographic element 5, which generate the predefined light distribution, namely a brake light distribution, together with first partial holographic luminous surface 8. If only first light source 4 is activated, the luminance is less, so that a relatively weaker tail light distribution is generated. It is assumed that both light sources 4, 4 emit a red light color.
(22) According to an embodiment of the invention, holographic element 5 may also be structured in such a way that holographic luminous surfaces 8, 8 are each used as full holographic luminous surfaces to generate separate light distributions. For example, if only first light source 4 is activated, first holographic luminous surface 8 may be used to generate the tail light function. If only second light source 4 is activated, second holographic luminous surface 8 may be used to generate a turn-signal function. This presupposes that second light source 4 emits light L of a yellow light color.
(23) Light sources 4, 4 may thus be activatable independently of each other for alternately generating the at least two different holographic luminous surfaces 8, 8, which are located in a shared plane or have a depth offset with respect to each other. The depth offset preferably runs in the main radiation direction, holographic luminous surfaces 8, 8 being offset in parallel to each other or run non-parallel to each other at an acute angle.
(24) The invention thus facilitates the space-saving generation of different light distributions using a single holographic element 5.
(25) According to an embodiment of the invention according to
(26) According to an embodiment of the invention according to
(27) According to an embodiment of the invention different holographic lamp units 2 may also be disposed next to each other, so that multiple light functions may be generated.
(28) According to an of the invention, holographic lamp units 2 may also be disposed next to each other in the vertical direction or, in addition, possibly with adjacent holographic luminous surfaces 8 overlapping each other.
(29) According to an embodiment of the invention according to
(30) According to an embodiment of the invention according to
(31) It is understood that the aforementioned features may each be used alone or in arbitrary multiple combinations. The exemplary embodiments described are not to be understood as a conclusive enumeration but instead serve as examples for describing the invention.
(32) The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are to be included within the scope of the following claims.