WHITE LED LIGHTING DEVICE AND A LIGHTING APPLIANCE
20180274756 ยท 2018-09-27
Assignee
Inventors
- Robin Jousse (La Chapelle Saint Mesmin, FR)
- Cecilia Valteau (Ligny le Ribault, FR)
- Lionel Comte (La Chapelle Saint Mesmin, FR)
Cpc classification
F21V23/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V9/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S10/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V14/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V9/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S10/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V9/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V9/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V33/0068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21V9/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V14/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An LED lighting device (6) having an LED (8) emitting white light and optical filter means (12) suitable for filtering the white light emitted by the LED (8). The optical filter means comprise at least two optical filters (12) that have different transmission coefficients and that are positionable to filter the light emitted by the LED (8) individually. The lighting device (6) includes a power supply unit (10) suitable for delivering different power supply currents to the LED (8) depending on whether one or the other of the optical filters (12) is positioned to filter the light from the LED (8), so as to modify the color temperature of the light emitted by the LED (8).
Claims
1. An LED lighting device (6) having an LED (8) emitting white light and optical filter means (12) suitable for filtering said white light emitted by the LED (8), the device being characterized in that said optical filter means comprise at least two optical filters (12) that have different transmission coefficients and that are positionable to filter said light emitted by the LED (8) individually, and in that the lighting device (6) includes a power supply unit (10) suitable for delivering different power supply currents to said LED (8) depending on whether one or the other of the optical filters (12) is positioned to filter said light from the LED (8), so as to modify the color temperature of the light emitted by the LED (8).
2. The lighting device (6) according to claim 1, wherein at least one optical filter (12) is suitable for attenuating a red component of the light emitted by the LED (8).
3. The lighting device (6) according to claim 2, wherein at least one optical filter (12) is suitable for attenuating a blue component of the light emitted by the LED (8) at a wavelength lying in the range 400 nm to 480 nm.
4. The lighting device (6) according to claim 3, having a plurality of consecutive optical filters (12) having progressive transmission coefficients for attenuating the blue component.
5. The lighting device (6) according to claim 4, wherein the attenuation difference between two consecutive optical filters (12) is at least 15%.
6. The lighting device (6) according to claim 5, having a plurality of identical LEDs (8), each emitting white light.
7. The lighting device (6) according to claim 6, wherein each LED (8) is associated with a set of optical filters (12) having different transmission coefficients, the sets of optical filters (12) being identical from one LED (8) to another.
8. The lighting device (6) according to claim 7, wherein said optical filters (12) are arranged on a rotary disk (11).
9. The lighting device (6) according to claim 8, wherein said filters (12) are arranged at the periphery (11A) of said rotary disk (11).
10. A lighting appliance (1) for an operating theater, the appliance being characterized in that it includes at least one lighting device (6) according to claim 1.
11. The lighting device (6) according to claim 1, wherein at least one optical filter (12) is suitable for attenuating a blue component of the light emitted by the LED (8) at a wavelength lying in the range 400 nm to 480 nm.
12. The lighting device (6) according to claim 11, having a plurality of consecutive optical filters (12) having progressive transmission coefficients for attenuating the blue component.
13. The lighting device (6) according to claim 12, wherein the attenuation difference between two consecutive optical filters (12) is at least 15%.
14. The lighting device (6) according to claim 1, having a plurality of identical LEDs (8), each emitting white light.
15. The lighting device (6) according to claim 14, wherein each LED (8) is associated with a set of optical filters (12) having different transmission coefficients, the sets of optical filters (12) being identical from one LED (8) to another.
16. The lighting device (6) according to claim 1, wherein said optical filters (12) are arranged on a rotary disk (11).
17. The lighting device (6) according to claim 16, wherein said filters (12) are arranged at the periphery (11A) of said rotary disk (11).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The present invention can be better understood and other advantages appear on reading the detailed description of an embodiment taken by way of non-limiting example and shown in the accompanying drawings, in which:
[0031]
[0032]
[0033]
[0034]
[0035]
DESCRIPTION OF EMBODIMENTS
[0036]
[0037] The lighting appliance 1 is of the type that is suspended from the ceiling of the operating theater in known manner, and it comprises a hinged suspension arm 3 carrying an overhead light 4.
[0038] As can be seen in
[0039] Advantageously, the lighting devices 6 have LEDs 8 arranged to emit white light, and preferably each lighting outlet 5 has only one white LED 8. By way of example, the LED 8 emits white light with a color temperature of 5000 K.
[0040]
[0041] As can be seen in
[0042]
[0043] Advantageously, the optical filter means comprise, for each LED 8, a plurality of optical filters 12, three optical filters 12 in this example, that are arranged consecutively and that have transmission coefficients that are different and preferably progressive, which filters are positioned to filter individually the light emitted by each LED 8 so as to obtain different colors of white, i.e. so as to obtain a variable color temperature or variable chromatic coordinates.
[0044] More precisely, the lighting device 6 has a support 11 for supporting the optical filters 12 that are mounted to pivot about an axis A in such a manner that the optical filters 12 and the LEDs 8 are movable relative to one another. The support 11 in this example is in the form of a disk, with the optical filters 12 being arranged at the periphery 11A of the disk 11 and being aligned on a circle centered on the axis A, and the LEDs 8 are arranged at the four corners of a square that is inscribed in the circle formed by the optical filters 12 such that, when the disk 11 turns about the axis A, the optical filters 12 occupy successive positions in which they are in axial alignment with the LEDs 8 so that the white light emitted by those LEDs 8 passes through them. It can thus readily be understood that for each position of the disk 11 about the axis A, each LED 8 is in axial alignment with an optical filter 12, which consequently has the white light emitted by that LED 8 passing therethrough.
[0045] In addition, the LEDs 8 are powered electrically by an electrical power supply unit 10 (represented diagrammatically in this example solely for one lighting outlet 5), arranged to power each LED 8 with different and variable current levels depending on which one of the optical filters 12 is positioned in front of the LED 8 to filter its light. The power supply unit 10 may be in the form of a single power supply for all of the LEDs 8 of the lighting device 6, or it may be in the form of a plurality of power supplies respectively associated with each of the LEDs 8.
[0046] Advantageously, each time the disk 11 turns about the axis A in order to align the LEDs 8 with one specific type of optical filter 12, the power supply unit adjusts the currents passing through the LEDs 8 so as to conserve substantially constant light flux leaving the lighting device 6, i.e. so as to conserve substantially constant visual illumination in the lighting field, regardless of the type of filter that is placed in front of the LEDs 8. The term substantially constant is used to mean that the light flux is identical to within 5% on each change of optical filter 12.
[0047] For each position of the disk 11 about the axis A, the four LEDs 8 are preferably aligned with respective optical filters 12 of the same type, such that the lighting device 6 presents uniform light flux. For this purpose, provision may be made for the spacing between two successive LEDs 8, referenced E in
[0048] The optical filters 12 are preferably specified in such a manner that the minimum and maximum color temperatures obtained after attenuating the blue peak lie in the range that is authorized by the standard IEC 60601-2-41. In particular, the color temperatures that are commonly encountered in operating theaters should be selected.
[0049] By way of particular example, the disk 11 carries a total of twelve optical filters 12 arranged in four identical sets, each associated with one respective LED and each comprising three optical filters 12 of types that are different and progressive, thereby enabling three color temperatures to be obtained that are different and progressive.
[0050] The term progressive is used to mean that the optical filters 12 are selected so as to establish a transmission difference between two successive types of optical filter in a given set of optical filters 12, with this transmission difference preferably being at least 15%. By way of example, within a set of three optical filters associated with a LED 8, the first optical filter 12 thus has a first transmission coefficient that does not modify the color temperature and that enables a maximum color temperature to be obtained, 5000 K in this example, the second optical filter 12 has a second transmission coefficient that enables an intermediate color temperature to be obtained, 4500 K in this example, and the third optical filter 12 has a third transmission coefficient that enables a minimum color temperature to be obtained, 3900 K in this example.
[0051]
[0052] As can be seen in
[0053]
[0054] Finally,
[0055] More precisely, the second optical filter 12B has a transmission coefficient equal to 83%?2% for wavelengths lying in the range 400 nm to 480 nm, and then a transmission coefficient that increases with increasing wavelength from 83% up to 97%?2% for wavelengths lying in the range 480 nm to 620 nm. The third filter 12C has a transmission coefficient equal to 64%?2% for wavelengths lying in the range 400 nm to 480 nm, and then a transmission coefficient that increases with increasing wavelength form 64% up to 97%?2% for wavelengths lying in the range 480 nm to 620 nm. These second and third optical filters 12B and 12C thus enable the color temperature of the light emitted by the LED 8 to be modified, each of them reducing the color temperature by 600 K, while also limiting the production of heat. Thus, the optical filter means 12 enable the color temperature of the light emitted by the LED 8 to be modified.
[0056] Depending on the application, the optical filters 12 may be made of glass or of plastics material. The optical filters 12 are preferably fabricated by depositing thin films under a vacuum or by a sol-gel technique, onto a transparent substrate.
[0057] The disk 11 carrying the optical filters 12 may advantageously be turned by a motor 13 controlled by a control unit 14 shown in
[0058] The LEDs 8 of the lighting outlets 5 are preferably substantially identical to one another so as to avoid any differences in light flux and/or spectrum in the visible range from one lighting outlet 5 to another. In particular, it is preferable for the LEDs 8 to be selected so that they come from the same supplier, e.g. having the same type of phosphorous-based component, the same package, the same electronic chip, and requiring the same type of power supply. White LEDs 8 should be selected that have a high color rendering index, lying in the range 85 to 100, preferably lying in the range 90 to 100, or indeed in the range 95 to 100, and a color temperature lying in the range 3000 K to 6700 K in order to comply with the standards in force concerning lighting in medical situations.
[0059] Naturally, the present invention is not limited to the above description of a single embodiment thereof, and it may be subjected to various modifications without thereby going beyond the ambit of the invention.
[0060] For example, it is naturally possible to have some other number of optical filters 12 associated with each LED in the lighting device 6. It is also possible to have some other number of LEDs 8 and of lighting outlets 5 in the lighting device 6. Finally, some other number of lighting devices 6 may be provided in each overhead light 4. The cross-shape for the light 4 is given purely by way of example.
[0061] By way of example, it is possible to use a LED that emits white light at a low color temperature, e.g. 3000 K. Under such circumstances, the optical filters 12 should be selected so as to be capable of increasing the color temperature of the light, e.g. by attenuating red components of the light in the range 600 nm to 700 nm.
[0062] Provision may also be made to use other types of optical filter, e.g. that attenuate ultraviolet components of the light.