Incandescent Lamp With an Absorption and Interference Filter
The invention relates to an incandescent lamp for producing light in a red region of the spectrum, comprising: a translucent lamp bulb ( 4 ); a spiral-wound filament enclosed by the lamp bulb, and; an interference filter ( 8 ), which is placed on the lamp bulb and which has a number of optically low refractive layers and optically highly refractive layers. According to the invention, the lamp bulb itself forms an absorption filter that absorbs unwanted light spectra. The color location shift into the red region of the spectrum ensues via the interference filter.
1 . An incandescent lamp for producing light in a red spectral region, having a transparent lamp vessel ( 4 ), an incandescent filament surrounded by the lamp vessel ( 4 ), and an interference filter ( 8 ) that is arranged on the lamp vessel ( 4 ) and has a number of optically low-index and optically high-index layers, characterized in that the lamp vessel ( 4 ) forms an absorption filter that absorbs unwanted light spectra, and the color locus displacement into the red spectral region is performed by the interference filter ( 8 ).
2 . The incandescent lamp as claimed in claim 1 , in which the absorption filter of the lamp vessel ( 4 ) is formed in such a way that violet, blue and/or green wavelength regions are absorbed by the lamp vessel ( 4 ).
3 . The incandescent lamp as claimed in claim 1 , in which the lamp vessel ( 4 ) consists of thoroughly colored and/or coated lamp glass ( 6 ).
4 . The incandescent lamp as claimed in claim 3 , in which the lamp vessel ( 4 ) is coated with a thermostable coating, in particular amber paint or a sol-gel absorption filter.
5 . The incandescent lamp as claimed in claim 3 , in which during operation the lamp glass ( 6 ) emits yellowish or amber-colored light.
6 . The incandescent lamp as claimed in claim 1 , in which the interference filter ( 8 ) is formed from a single layer stack of the optically low-index layers and optically high-index layers, and consists of two materials.
7 . The incandescent lamp as claimed in claim 6 , in which the optically low-index layers are SiO 2 layers and the optically high-index layers are Nb 2 O 5 or TiO 2 layers.
8 . The incandescent lamp as claimed in claim 6 , in which the optically low-index layers essentially have a layer thickness of 90 nm±15% and the optically high-index layers have a layer thickness of 52 nm±15% or 46 nm±15%, and are alternatingly arranged.
9 . The incandescent lamp as claimed in claim 6 , in which the layer stack is begun and terminated by an optically high-index layer with a layer thickness of 26 nm±15% and 23 nm±15%, respectively.
10 . The incandescent lamp as claimed in claim 6 , in which the layer stack is optimized in such a way that the filter edge of the interference filter ( 8 ) lies in the red spectral region, in particular in a wavelength region of 580 nm to 640 nm, preferably at 597 nm.
11 . The incandescent lamp as claimed in claim 6 , in which the layer stack has 13, 15 or 17 layers.
12 . The incandescent lamp as claimed in claim 1 , in which the interference filter ( 8 ) is arranged with a locally different layer thickness on the lamp vessel ( 4 ) as a function of the angle of incidence of the light emitted by the incandescent filament and impinging on the interference filter ( 8 ).
13 . The incandescent lamp as claimed in claim 1 , in which the lamp emits a light spectrum in accordance with the ECE standard for brake lamps, tail lamps and/or tail fog lamps.
14 . The incandescent lamp as claimed in claim 2 , in which the lamp vessel ( 4 ) consists of thoroughly colored and/or coated lamp glass ( 6 ).
15 . The incandescent lamp as claimed in claim 7 , in which the optically low-index layers essentially have a layer thickness of 90 nm±15% and the optically high-index layers have a layer thickness of 52 nm±15% or 46 nm±15%, and are alternatingly arranged.
16 . The incandescent lamp as claimed in claim 7 , in which the layer stack is optimized in such a way that the filter edge of the interference filter ( 8 ) lies in the red spectral region, in particular in a wavelength region of 580 nm to 640 nm, preferably at 597 nm.
17 . The incandescent lamp as claimed in claim 8 , in which the layer stack is optimized in such a way that the filter edge of the interference filter ( 8 ) lies in the red spectral region, in particular in a wavelength region of 580 nm to 640 nm, preferably at 597 nm.
18 . The incandescent lamp as claimed in claim 9 , in which the layer stack is optimized in such a way that the filter edge of the interference filter ( 8 ) lies in the red spectral region, in particular in a wavelength region of 580 nm to 640 nm, preferably at 597 nm.