Radiation Apparatus for the Radiation of Human Skin
20200030626 · 2020-01-30
Assignee
Inventors
Cpc classification
A61N2005/0642
HUMAN NECESSITIES
A61N2005/0615
HUMAN NECESSITIES
A61N2005/0639
HUMAN NECESSITIES
International classification
Abstract
A radiation device is for the radiation of human skin, preferably the face of a user, in particular at least with radiation in the red light range, with a source of radiation and a filtering device for filtering the radiation emitted by the source of radiation. The filtering device is configured in such a way that the radiation device emits radiation in a wavelength range from 280 to 400 nm and beyond that radiation in a wavelength range of 600 to 700 nm, and that the radiation device emits at least zonally radiation in a wavelength range of a visible color shade of the visible light spectrum and filters further radiation of the visible light spectrum.
Claims
1. A radiation device for the radiation of human skin, preferably the face of a user, in particular at least with radiation in the red light range, with a source of radiation and a filtering device for filtering the radiation emitted by the source of radiation, wherein the filtering device is configured in such a way that the radiation device emits radiation in a wavelength range from 280 to 400 nm and beyond that radiation in a wavelength range of 600 to 700 nm, and that the radiation device emits at least zonally radiation in a wavelength range of a visible color shade of the visible light spectrum and filters further radiation of the visible light spectrum.
2. The radiation device according to claim 1, wherein the filtering device is able to filter radiation with a wavelength below 280 nm.
3. The radiation device according to claim 1, wherein the filter device comprises at least one filter disk, and in particular wherein the filter disk comprises a first coating.
4. The radiation device according to claim 1, wherein the first coating is arranged on the front side of the filter disk facing the source of radiation, and in particular wherein the first coating is provided as a layer across the entire surface.
5. The radiation device according to claim 1, wherein the filter disk, in particular the first coating, is designed so that radiation is transmitted in at least one of a wavelength range from UV radiation in a wavelength range from 280 to 400 nm, radiation in the red light range in a wavelength range from 600 to 700 nm, and radiation with a wavelength of greater than 700 nm, in particular wherein the transmittance is greater than or equal to 50%.
6. The radiation device according to claim 1, wherein the filter device, in particular the filter disk, absorbs UV radiation in the UV-C range, in particular wherein the degree of absorption is greater than 0.5.
7. The radiation device according to claim 1, wherein the filter disk, in particular the first coating, is designed so that UV-B radiation in a wavelength range from 280 to 320 nm is transmitted with a transmittance of less than or equal to 50%.
8. The radiation device according to claim 1, wherein the filter disk, in particular the first coating, is designed so that UV radiation in a wavelength range from 320 to 400 nm is transmitted with a transmittance of greater than or equal to 40%.
9. The radiation device according to claim 1, wherein the filter disk, in particular the first coating, is designed so that radiation in the blue light range in a wavelength range from 400 to 480 nm is transmitted with a transmittance of greater than or equal to 20%.
10. The radiation device according to claim 1, wherein the filter disk comprises a second coating, in particular wherein the second coating is arranged on the first coating and is, in particular, firmly bonded to the first coating.
11. The radiation device according to claim 1, wherein the second coating is formed as a partially formed layer, in particular an intermittent layer.
12. The radiation device according to claim 1, wherein the second coating is designed to filter the radiation wherein radiation in at least one wavelength range of a visible color shade of the visible light spectrum, in particular in at least one of the green light, red light, and yellow light range, is transmitted.
13. The radiation device according to claim 1, wherein the second coating is designed so that at least one of UV radiation in a wavelength range from 100 to 400 nm and radiation in the blue light range in a wavelength range between 400 and 480 nm is transmitted with a transmittance of less than or equal to 20%.
14. The radiation device according to claim 1, wherein the second coating is designed so that at least one of radiation in the red light range and in a wavelength range from 600 to 700 nm and radiation in a wavelength range of greater than 700 nm is transmitted with a transmittance of greater than or equal to 50%.
15. The radiation device according to claim 1, wherein the second coating is designed so that UV radiation in a wavelength range from 320 to 400 nm is transmitted with a transmittance of greater than or equal to 40%.
16. The radiation device according to claim 1, wherein at least one reflector device comprising a reflector and wherein the source of radiation is arranged in the area of the reflector.
17. The radiation device according to claim 1, wherein the filtering device comprises a slanted filter mirror that reflects radiation in at least one of a wavelength range from 280 to 400 nm, and radiation in the red light range with a wavelength from 600 to 700 nm, and radiation in the wavelength range above 700 nm, in particular wherein the filter mirror otherwise at least one of transmits and absorbs.
18. A radiation device according to claim 1, wherein the reflector device reflects radiation in at least one of the wavelength range from 100 to 480 nm, and in a wavelength range from 600 to 700 nm, and in the wavelength range of greater than 700 nm, in particular wherein the reflector device otherwise at least one of transmits and absorbs.
19. The radiation device according to claim 1, wherein the filter device comprises at least one fluorescing layer, in particular wherein the fluorescing layer emits under radiation in the red light range in a wavelength range from 600 to 700 nm.
20. The radiation device according to claim 1, wherein the fluorescing layer is designed as a partial layer, in particular wherein the fluorescing layer is arranged on the back side of the filter disk facing away from the source of radiation.
21. The radiation device according to claim 1, wherein the filter disk comprises a second coating, in particular second coating is arranged on the back side of the filter disk, turned away from the radiation source.
22. The radiation device according to claim 1, wherein radiation with a wavelength of greater 700 nm is transmitted, in particular wherein the second coating otherwise at least one of reflects and absorbs.
23. The radiation device according to claim 1, wherein the fluorescing layer is designed as a partial layer, in particular wherein the fluorescing layer is bonded to the first coating
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0066] Further features, advantages, and application possibilities of the present invention are provided in the following description of exemplary embodiments shown in the drawing and the drawing itself. All described and/or illustrated features form, by themselves or in any combination, the object of the present invention, regardless of their summary in the claims and their dependencies.
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DETAILED DESCRIPTION OF THE DRAWINGS
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[0082] A filtering device 3 with a filter disk 4, arranged on a reflector device 10, is located in the facial area 16 of the top part 19 of the radiation device 1.
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[0084] What is not shown is that in the substructure 17 as well at least one source of radiation 2 with the corresponding filtering device 3 is provided.
[0085] According to the embodiment shown in
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[0088] Furthermore, the first coating 5 is designed so that radiation in the red light range, i.e., radiation with a wavelength of greater than 600 to 700 nm, is transmitted and/or radiated with a transmittance of approximately 95%5%. Furthermore, radiation with wavelengths of greater than 700 nm is transmitted and preferably not filtered so that the transmittance for radiation with a wavelength of over 700 nm may also amount to 95%5%.
[0089] Furthermore, it may also be provided that the first coating 5 is designed so that UV radiation in a wavelength range from 280 to 400 nm and/or radiation in the red light range in a wavelength range between 600 and 700 nm, preferably from 600 to 650 nm, and/or radiation with a wavelength of greater than 700 nm is transmitted. The transmittance here may be greater than or equal to 50%, and even more preferably between 85% and 95%.
[0090] As demonstrated above,
[0091] Furthermore, the filter disk 4, in particular the first coating 5, may be designed so that UV radiation in a wavelength range from 320 to 400 nm is transmitted with a transmittance of greater than or equal to 40%, preferably between 50 and 70%.
[0092] Furthermore, the conduct illustrated in
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[0094] In the embodiment shown in
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[0096] The second coating 7 shown in
[0097] The second coating 7 is designed for the filtering of radiation, whereby radiation in at least one wavelength range of a visible color shade of the visible light spectrum is transmitted. As the visible color shade, radiation in the green light wavelength range, red light wavelength range and/or yellow light wavelength range may be provided. The green light range is provided in particular at a wavelength from 490 to 560 nm, the yellow light range from 560 to 590 nm, and the red light range from 600 to 700 nm, preferably from 630 to 700 nm. Furthermore, the second coating 7 may transmit radiation with a wavelength of greater than 700 nm, in particular whereby otherwise the second coating 7 reflects and/or absorbs.
[0098] Through those areas of the filter disk 4 that only comprise the first coating 5, the entire radiation device 1 may therefore transmit the filtered radiation via the first coating 5. In those areas in which additionally or alternatively to the first coating 5 the second coating 7 is provided, the radiation is filtered on the one hand by the first coating 5 and on the other by the second coating 7 so that the second coating 7 overlaps the first coating 5.
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[0100] The transmission of the second coating 7 shown in
[0101] The transmission behavior of an alternative second coating 7 is shown in
[0102] Furthermore, both second coatings 7 shown in
[0103] Furthermore, the second coating 7 may be designed so that radiation in the red light range in a wavelength range from 600 to 700 nm is transmitted at a transmittance of greater than or equal to 50%. In the embodiment shown in
[0104] In another embodiment of the second coating 7, shown in
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[0106] Alternatively or additionally to a first coating 5 and a second coating 7, the filtering device 3 may comprise a slanted filter mirror 13, as shown in
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[0108] What is not shown is that the reflector 9 comprises the first and/or second coating 5, 7 so that only the desired wavelength ranges of the radiation are reflected. What is not shown either is that the reflector device 10 may comprise a reflection means that is designed so that the radiation emitted by the source of radiation 2 at least essentially hits the reflector 9 entirely.
[0109] What is not shown is that the filtering device 3, preferably the filter disk 4, comprises at least one fluorescing layer. The fluorescing layer can, under radiation, preferably UV radiation in a wavelength range from 280 to 400 nm, emit radiation in the red light range in a wavelength range from 600 to 700 nm. The fluorescing layer may, in particular, be designed as a partial layer. The fluorescing layer may be arranged on the back side 8 of the filter disk 4, facing away from the source of radiation 2. The fluorescing layer may, in particular, be firmly bonded to the first coating 5.
[0110] The source of radiation 2 provided may be a radiation lamp, in particular a high-pressure and/or maximum-pressure gas discharge lamp.
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