Led tube for retrofitting in a fluorescent tube lighting fixture
US-2016327216-A1 · Nov 10, 2016 · US
US9992840B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9992840-B2 |
| Application number | US-201615158946-A |
| Country | US |
| Kind code | B2 |
| Filing date | May 19, 2016 |
| Priority date | Nov 22, 2013 |
| Publication date | Jun 5, 2018 |
| Grant date | Jun 5, 2018 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
A light source is provided that includes at least two semiconductor light-emitting elements that emit light of different color, a light guide, an electronic control unit, and a light sensor. The light emitted by the elements is injected, at least partially, into the light guide and exits laterally from the light guide. The brightness of the elements can be adjusted by the electronic control unit. The light sensor is arranged to receive the light injected by the elements and laterally exiting from the light guide. The electronic control unit accumulates sensor signals from the light sensor over an integration time interval and compares the accumulated signals with a target value or range to determine a difference, changes a brightness of the elements in response to the difference, and changes the integration time interval in response to the difference or to a change in the target value.
Opening claim text (preview).
What is claimed is: 1. A light source, comprising: at least two semiconductor light-emitting elements, the semiconductor light-emitting elements emitting light of different color; a light guide into which the light is, at least partially, injected, the light guide being configured so that the light exits laterally from the light guide, the light guide having a longitudinal extension and an end face; a light sensor arranged to receive the light injected by the semiconductor light-emitting elements into the light guide and laterally exiting therefrom, wherein the light sensor is spaced along the longitudinal extension by a distance of between the light sensor and the end face; and an electronic control unit configured to accumulate sensor signals from the light sensor over an integration time interval of the brightness, determine a difference by comparing the accumulated signals with a target value or target range, change the brightness of the semiconductor light-emitting elements in response to the difference, and change the integration time interval in response to either the difference or a change in the target value or target range; wherein the electronic control unit is configured to change the integration time interval in response to the change in the target value or target range by shortening the integration time interval and subsequently re-extending the integration time interval stepwise or continuously. 2. A light source, comprising: at least two semiconductor light-emitting elements, the semiconductor light-emitting elements emitting light of different color; a light guide into which the light is, at least partially, injected, the light guide being configured so that the light exits laterally from the light guide, the light guide having a longitudinal extension and an end face; a light sensor arranged to receive the light injected by the semiconductor light-emitting elements into the light guide and laterally exiting therefrom, wherein the light sensor is spaced along the longitudinal extension by a distance of between the light sensor and the end face; and an electronic control unit configured to accumulate sensor signals from the light sensor over an integration time interval of the brightness, determine a difference by comparing the accumulated signals with a target value or target range, change the brightness of the semiconductor light-emitting elements in response to the difference, and change the integration time interval in response to either the difference or a change in the target value or target range; wherein the electronic control unit is configured to change the integration time interval in response to the difference by setting a shorter integration time interval in case of a greater difference than in a case of a smaller difference. 3. The light source as in claim 1 , wherein the electronic control unit is configured to set the integration time interval to a value from a range between 10 milliseconds and 5 seconds. 4. A light source, comprising: at least two semiconductor light-emitting elements, the semiconductor light-emitting elements emitting light of different color; a light guide into which the light is, at least partially, injected, the light guide being configured so that the light exits laterally from the light guide, the light guide having a longitudinal extension and an end face; a light sensor arranged to receive the light injected by the semiconductor light-emitting elements into the light guide and laterally exiting therefrom, wherein the light sensor is spaced along the longitudinal extension by a distance of between the light sensor and the end face; and an electronic control unit configured to accumulate sensor signals from the light sensor over an integration time interval of the brightness, determine a difference by comparing the accumulated signals with a target value or target range, change the brightness of the semiconductor light-emitting elements in response to the difference, and change the integration time interval in response to either the difference or a change in the target value or target range; wherein the electronic control unit is configured to respond to the change in the target value or target range by first adjusting the brightness based on stored values and by subsequently adjusting a color location based on the difference between the sensor signals and the target value or target range. 5. The light source as in claim 1 , further comprising a reflective element arranged to reflect part of the light laterally emitted from the guide light, wherein the light sensor is arranged to receive the light laterally emitted from the guide light and passing through the reflective element. 6. The light source as in claim 5 , wherein the reflective element is a reflective layer that extends around a portion of a circumference of the light guide. 7. The light source as in claim 6 , wherein the reflective element is a silicone coating with embedded light-scattering particles, the light-scattering particles having a refractive index of greater than two. 8. The light source as in claim 6 , wherein the reflective element passes less than 20% of light incident on the reflective element. 9. The light source as in claim 6 , wherein the reflective element is at least partially diffusely reflective so as to scatter the light conducted in the light guide in such a manner that the light scattered and thereby diffusely reflected exits laterally from the light guide. 10. The light source as in claim 1 , wherein the distance corresponds to at least twice a transverse dimension of the light guide. 11. The light source as in claim 1 , wherein the semiconductor light-emitting elements comprise a four-color LED array including at least one red emitting LED, at least one green or yellow emitting LED, at least one blue emitting LED, and at least one white light emitting LED. 12. The light source as in claim 1 , wherein the light sensor has a plurality of sensor areas with different dichroic filters and an aperture stop limiting an angular range of the light laterally emitted from the light guide and incident on the sensor areas to less than 90°. 13. The light source as in claim 1 , wherein the light guide has two end faces at opposite ends thereof, and wherein, for each end face of the two end faces, the at least two semiconductor light-emitting elements are arranged so that the light emitted therefrom is injected into the light guide through the respective end face. 14. The light source as in claim 13 , wherein the light sensor comprises a first light sensor and a second light sensor, wherein the first and second light sensors are is associated with a respective one of the two end faces so that the first and second light sensors receive a greater proportion of the light injected into the end face the light sensor is associated with, and wherein the electronic control unit is configured to control the two semiconductor light-emitting elements at each of the end faces independently from each other and on the basis of the sensor signals of the light sensor associated with the respective end face. 15. The light source as in claim 6 , wherein the semiconductor light-emitting elements have light-emitting areas with a center of gravity on the end face that is offset relative to a center of the end face in a direction away from the reflective layer. 16. The light source as in claim 1 , further comprising a light mixer and a light deflector, the two semiconductor light-emitting elements at least partially injecting light into the light mixer, wherein the light mixer has a longitud
the sensor sensing the operating status of the lighting device, e.g. to detect failure of a light source or to provide feedback to the device · CPC title
using optical feedback · CPC title
characterised by coatings · CPC title
with an elongated shape to cooperate with linear light sources · CPC title
by timing means · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.