The present invention relates to an application of organic light emitting diodes (OLEDs), and more particularly to an OLED lighting module and a lighting apparatus and an interactive light wall using the same.
Organic light emitting diodes (OLEDs) are self-illuminating, high in brightness, and suitable for production of display panels flatter than liquid crystal displays (LCDs). Therefore, OLEDs have gained increasingly strong attention from the industries. Among the current directions of technological development, OLEDs have been most commonly used in production of flexible flat display panels. In addition to display technologies, research and application of OLEDs have gradually shifted to lighting technologies in recent years due to its improving lighting efficiency. Taking advantage of its low driving voltage, high energy saving efficiency, fast reactivity, lightweight, low thickness, and simple structure, OLED has become the choice of lighting of the next generation. It is expected that OLED will take over the current mainstream lighting products.
However, due to its low production yield and high unit cost at early stages, extensive application of OLEDs on general lighting products has not been successful. Only by utilizing its diverse color emission and integrating it into intelligent lighting systems to increase its added value can advantages of OLED lighting products be accepted by the industries.
Therefore, the present invention provides a creative alternative application of OLED technology.
An embodiment of the present invention provides an OLED lighting module comprised of a sensing unit, a signal source filtering unit, and an OLED unit. The signal sensing unit generates a sensing signal according to a sensed environmental status. The signal source filtering unit is electrically coupled to a plurality of color input sources and provides an output assembly, wherein each of the color input sources provides a color input signal with color light different from those provided by other color input sources; in addition, the signal source filtering unit receives the aforementioned sensing signal and determines whether to provide the output assembly according to the sensing signal. The OLED unit is comprised of a plurality of lighting circuits, each of which provides color light different from those provided by other lighting circuits when activated. The OLED unit is electrically coupled to the signal source filtering unit to receive the output assembly, and controls activation of each of the lighting circuits according to the output assembly, so as to provide a corresponding final color light.
Another embodiment of the present invention provides an OLED lighting apparatus comprised of a substrate and a plurality of OLED lighting modules. The OLED lighting modules are set on the substrate, and each of the OLED lighting modules are comprised of a signal sensing unit, a signal source filtering unit, and an OLED unit. The signal sensing unit generates a sensing signal according to the sensed environmental status. The signal source filtering unit is electrically coupled to a plurality of color input sources and provides an output assembly, wherein each of the color input sources provides a color input signal with color light different from those provided by other color input sources; in addition, the signal source filtering unit receives the aforementioned sensing signal and determines whether to provide the output assembly according to the sensing signal. The OLED unit is comprised of a plurality of lighting circuits, each of which provides color light different from those provided by other lighting circuits when activated. The OLED unit is electrically coupled to the signal source filtering unit to receive the output assembly, and controls activation of each of the lighting circuits according to the output assembly, so as to provide a corresponding final color light. Furthermore, the output assembly provided by the signal source filtering unit in each of the OLED lighting modules is comprised of at least of one of the color input sources in the signal source filtering unit, and all of the final color lights provided by the OLED lighting module are comprised of at least two colors.
Yet another embodiment of the present invention provides an interactive OLED color light wall, which is comprised of a plurality of OLED lighting apparatuses, each of which is comprised of a substrate and a plurality of OLED lighting modules. The OLED lighting modules are set on the substrate, and each of the OLED lighting modules is comprised of a signal sensing unit, a signal source filtering unit, and an OLED unit. The signal sensing unit generates a sensing signal according to the sensed environmental status. The signal source filtering unit is electrically coupled to a plurality of color input sources and provides an output assembly, wherein each of the color input sources provides a color input signal with color light different from those provided by other color input sources. The signal source filtering unit receives the sensing signal and determines whether to provide the output assembly according to the sensing signal. The OLED unit is comprised of a plurality of lighting circuits, each of which provides color light different from those provided by other lighting circuits when activated. The OLED unit is electrically coupled to the signal source filtering unit to receive the output assembly, and controls activation of each of the lighting circuits according to the output assembly, so as to provide a corresponding final color light. Furthermore, the final color light provided by the OLED lighting module in each of the OLED lighting apparatus comprises at least two colors.
As the present invention combines OLED with various types of sensors, providing interactions over the outside environment or human movements can be achieved. Additionally, since OLED is operable under a broad range of temperature and is easy to manufacture, the present invention can be extensively used in decorations of interior and exterior walls as well as window frames, on which the external patterns could alternate upon interacting with the surrounding environment, so as to achieve the beautification of the living environment.
For making the above and other purposes, features and benefits become more readily apparent to those ordinarily skilled in the art, the preferred embodiments and the detailed descriptions with accompanying drawings will be put forward in the following descriptions.
The present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
The present invention will now be described more specifically with reference to the following embodiments. It is to be noted that the following descriptions of preferred embodiments of this invention are presented herein for purpose of illustration and description only. It is not intended to be exhaustive or to be limited to the precise form disclosed.
Referring now to
The following figures explain the circuit structures of each of the OLED lighting apparatus. Referring now to
In the embodiment illustrated in
In this embodiment, the signal sensing unit 202 is adopted to sense the status of the outside environment. For example, the signal sensing unit 202 can sense the presence of any object around the signal sensing unit 202; that is, in other words, the signal sensing unit 202 is designed to detect the presence of any object in areas within the detectable range of the signal sensing unit 202. If no object were detected around the signal sensing unit 202, the signal sensing unit 202 would generate a sensing signal SS containing a first content; in contrast, if one or more objects were detected, the signal sensing unit 202 would generate a sensing signal SS containing a second content. To meet the operational requirements of the following circuits, the signal sensing unit 202 must generate the sensing signals SS with distinctive contents for presence and absence of objects; that is, the aforementioned first content must be distinguished from the second content. For example, the first content may be a low electric potential that lasts for a certain duration of time, while the second content being a high electric potential lasting for a certain duration of time; or, the first content may be a wave assembly representing the value of 0, while the second content being a wave assembly representing the value of 1. As a number of different content assemblies may be suitable for this operation, all possible examples are thus not provided herein.
Additionally, the signal sensing unit 202 may be comprised of signal sensing elements of any type. For example, image sensors, sound wave sensors, heat sensors, or pressure sensors may be chosen according to different requirements on sensing distances or subjects, so as to detect the current status of lighting, sound, temperature, or all sorts of pressure, respectively. Therefore, the sensing signals with different contents may be provided based on whether the distribution of light, volume of sound, or temperature of the environment or pressure administered to the environment meets the predetermined contents. Furthermore, the OLED lighting modules 200-230 may utilize signal sensing units comprised of the same signal sensing element. On the other hand, signal sensing elements not entirely identical to each other may also be used to comprise signal sensing units in different OLED lighting modules 200-230 for more diversified alterations.
The sensing signal SS generated by aforementioned signal sensing unit 202 would be provided to the signal source filtering unit 204, which is electrically coupled to the aforementioned color input sources R, G and B, and provides an output assembly CS to the OLIED unit 206. In this embodiment, signal source filtering unit 204 would determine whether to provide the output assembly CS to the OLED unit 206 according to the received sensing signal SS.
For those with ordinary skills in the art to gain a deeper understanding of the signal source filtering unit 204, illustrations will be referred to in the followings for more detailed descriptions on the signal source filtering unit 204.
Referring now to
In another embodiment illustrated in
In the two embodiments mentioned above, the mechanism through which color input signals S1, S2, and S3 are chosen to obtain output assembly CS may be implemented by software, hardware, or firmware; and the timing of judgment may be preset, determined by random numbers, or freely adjustable. For example, how each signal source filtering unit 204a or 204b must choose among the color input signals S1, S2, and S3 to obtain the output assembly CS may be determined by preset software according to a prerecorded table.
Referring now to
Referring again to
To increase the diversity of color emission in actual implementation, OLED units in each OLED lighting module can be designed to provide final color lights that are not entirely identical to each other; that is, at least two final color lights can be designed to provide by a plurality of OLED units in the OLED lighting modules. For example, in an OLED lighting module, some OLED units can be designed to emit a final red, some emits a final purple (red+blue), while some emits a final light blue (blue+green).
Moreover, for energy conversation purposes, sensing signals generated by the signal sensing unit can be encoded to deactivate the corresponding OLED unit when the sensed environmental status is in default; on the contrary, when the environment sensed by the signal sensing unit is not in a default status, the generated sensing signals can be encoded to allow the corresponding signal source filtering unit to provide the aforementioned output assembly, so as to activate the corresponding OLED unit and thus provide a corresponding final color light for a certain duration of time. However, if considering from a decoration or lighting perspective, sensing signals generated by the signal sensing unit can be encoded to let the corresponding OLED unit provide a final white light when the sensed environmental status is in default; and allow the OLED unit to provide a corresponding final color light other than white when the environment sensed by the signal sensing unit is not in a default status.
In summary, the aforementioned embodiments combine OLED with various types of sensors, providing interactions over the outside environment or human movements. Additionally, since OLED is operable under a broad range of temperature and is easy to manufacture, the present invention can be extensively used in decorations of interior and exterior walls as well as window frames, on which the external patterns could alternate upon interacting with the surrounding environment, so as to achieve the beautification of the living environment.
While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.
Number | Date | Country | Kind |
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103116006 | May 2014 | TW | national |