The present invention relates to LED structures and, more particularly, to active blue light leakage preventing LED structures.
The earth is more and more consumed and damaged by people when the progress of living keeps advancing. Hence comes the need for the everlasting existence of the earth with the increasing demands for energy saving and environmental protection solution. Out of those demands, light-emitting diodes (LEDs) advantageously feature small physical volume, high brightness, low power consumption, and ease of use and replacement and become the most rapidly growing application.
Wherein the life span or life limit of LED, known as L70, is commonly defined as the light emitted by a LED reduces to about 70% of its stable emission value. However, in actual applications, the luminous efficiency of most white light LEDs will reduce even before L70 is reached due to the heat generated that the absorption and transformation of the fluorescent material decrease accordingly. The reduction in luminous efficiency then generates more heat. With such cycling mutual effect of heat and efficiency reduction keep going on and on, massive blue light is then inevitably leaked.
On the other hand, with the increasing usage of LEDs, more and more researches and papers about the destructive effect of blue light to human eyes are published to warn that irreversible damages will occur while human eyes are exposed to blue light for more than certain amount or for certain duration.
In view of the above, it has been a common goal and progress of the LED industries and the lighting industries to create a practical, effective and easy-to-use lighting LED structure that can rapidly, accurately and actively detect abnormal status and turn off the white light LED before massive heat is generated and great amount of blue light is emitted, and thus the protection of human eyes and life quality are thus desirably achieved, while at the same time informing the user the need of replacement of lighting device.
The present invention discloses active blue light leakage preventing LED structures. Each of the structure includes a circuit board, at least one blue light LED die, a photo detector and a wavelength transformation layer, wherein the electric circuit on the circuit board receives detection signal from the photo detector and turns off the said at least one blue light LED accordingly. With the implementation of the present invention, the active blue light leakage preventing LED structure turns off the white light LED when it reaches its usage life span limit thus avoiding the damage to human from the massive release of blue light.
The present invention provides an active blue light leakage preventing LED structure, comprising: a circuit board, comprising an upper surface; at least one blue light LED die, provided on the said upper surface and electrically connected to the said circuit board; a photo detector, provided on the said upper surface and electrically connected to the said circuit board, detecting a back scattering light of a wavelength transformation layer which results from the said blue light LED die and generating a detection signal; and a wavelength transformation layer, provided on the said upper surface, covering the said blue light LED die and the said photo detector; wherein the circuit of the said circuit board detects the said detection signal and turns off the said blue light LED die accordingly.
The present invention further provides an active blue light leakage preventing LED structure, comprising: a circuit board, comprising an upper surface; at least one blue light LED die, provided on the said upper surface and electrically connected to the said circuit board; a photo detector, provided on the said upper surface and electrically connected to the said circuit board, detecting a back scattering light of a wavelength transformation layer which results from the said blue light LED die and generating a detection signal; and a wavelength transformation layer, provided and covering a light emitting surface of the said blue light LED die; wherein the circuit of the said circuit board detects the said detection signal and turns off the said blue light LED die accordingly.
Implementation of the present invention at least involves the following inventive steps:
The features and advantages of the present invention are detailed hereinafter with reference to the preferred embodiments. The detailed description is intended to enable a person skilled in the art to gain insight into the technical contents disclosed herein and implement the present invention accordingly. In particular, a person skilled in the art can easily understand the objects and advantages of the present invention by referring to the disclosure of the specification, the claims, and the accompanying drawings.
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Further, the phosphor powder layer used as the wavelength transformation layer 40 can be a yellow color phosphor powder layer, a red-green mixed color phosphor powder layer, or an orange-green mixed color phosphor powder layer.
The aforesaid back scattering light received by the photo detector 30 is a portion of the blue light emitted by the blue light LED die 20 and reflected by the wavelength transformation layer 40 toward the photo detector 30. When the detected back scattering light reduces to a value below a predetermined threshold after a period of time of usage, the active blue light leakage preventing LED structure 100 is about to radiate large amount of blue light, wherein the temperature of the wavelength transformation layer 40 is greatly raised thus reduces enormously the light mixing function to leak massive quantity of blue light.
With the implementation of the photo detector 30 on the upper surface 11 of the circuit board 10, the back scattering light inside the active blue light leakage preventing LED structure 100 can always be detected, thus, the photo detector 30 actively generates a detection signal for the electrical circuit on the circuit board 10 to turn off the blue light LED die 20 accordingly, preventing unnecessary damage to users.
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Wherein the said packaging lens 50 or the said wavelength transformation layer 40 can be glued on the upper surface 11 of the circuit board 10 with a gasket.
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In this embodiment, the features and the relationships of the circuit board 10, the blue light LED die 20 and the photo detector 30 of the active blue light leakage preventing LED structure 200 are the same as in the embodiment of the active blue light leakage preventing LED structure 100 that requires no further descriptions.
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Moreover, with the implementation of the photo detector 30 on the upper surface 11 of the circuit board 10, the active blue light leakage preventing LED structure 200 is also capable of detecting the back scattering light of the wavelength transformation layer which results from the blue light LED die 20 inside. When the blue light LED die 20 reaches its usage life span limit, the detected back scattering blue light reduces to a value below a predetermined threshold after a period of time of usage and the active blue light leakage preventing LED structure 100 is about to radiate large amount of blue light, wherein the temperature of the wavelength transformation layer 40 is greatly raised thus reduces enormously the light mixing function to leak massive quantity of blue light, the photo detector 30 actively generates a detection signal for the electrical circuit on the circuit board 10 to turn off the blue light LED die 20 accordingly, thus preventing unnecessary damage to an user.
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The active blue light leakage preventing LED structure 210 according to this embodiment may further include a packaging lens 50, wherein the packaging lens 50 is fixedly provided on the upper surface of the circuit board 10 and covers the wavelength conversion layer 40, the blue LED die 20, and the photodetector 30 to form a complete LED package structure.
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In this embodiment, the foregoing characteristic curves are used to solve the problem of excessive blue light leakage caused by the aging of the wavelength conversion layer 40. More specifically, active blue light leakage prevention can be achieved by detecting the blue light leakage value dynamically and controlling the electric power supplied to the blue LED die 20 accordingly.
The definitions, structural details, functions, and connecting relationships of the circuit board 10, the blue LED die 20, and the wavelength conversion layer 40 are identical to those disclosed for the first embodiment and therefore will not be stated repeatedly.
The power source 60 is electrically connected to the blue LED die 20 through a switch 90 and serves mainly to provide the electric power needed by the blue LED die 20 during operation.
The photodetector 30 is fixedly provided on the upper surface of the circuit board 10 and is electrically connected to the circuit board 10. The photodetector 30 serves mainly to detect the backscattering light value of the light generated by the wavelength conversion layer 40 reacting with the light emitted by the blue LED die 20. The photodetector 30 dynamically generates a detection signal that includes the backscattering light value.
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These active blue light leakage preventing LED structures may further include a packaging lens 50 fixedly provided on the upper surface of the circuit board 10 and covering the wavelength conversion layer 40, the blue LED die 20, and the thermal sensor 80 to from a complete LED package structure.
The definitions, structural details, functions, and connecting relationships of the circuit board 10, the blue LED die 20, and the wavelength conversion layer 40 are identical to those disclosed for the first embodiment and therefore will not be stated repeatedly.
The power source 60 is electrically connected to the blue LED die 20 and serves mainly to provide the electric power needed by the blue LED die 20 during operation.
The thermal sensor 80 is provided adjacent to the blue LED die 20. When the temperature of the blue LED die 20 rises during operation, the wavelength conversion layer loses its intended effect gradually, and the amount of blue light leaking out increases as a result. The thermal sensor 80, therefore, is configured to reduce or turn off power supply from the power source 60 to the blue LED die 20 when detecting a rise in the temperature of the blue LED die 20, thereby preventing blue light from leaking out.
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The embodiments described above are intended only to demonstrate the technical concept and features of the present invention so as to enable a person skilled in the art to understand and implement the contents disclosed herein. It is understood that the disclosed embodiments are not to limit the scope of the present invention. Therefore, all equivalent changes or modifications based on the concept of the present invention should be encompassed by the appended claims.
Number | Date | Country | Kind |
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TW105107096 | Mar 2016 | TW | national |
Number | Date | Country | |
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Parent | 15167455 | May 2016 | US |
Child | 15980166 | US |