1. Field of the Invention
The present invention relates to a light source device, especially to a light guide device having a touch function.
2. Description of the Related Art
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However, as the touch-operable light source device of prior art uses the top surface of the transparent cover 40 as a touch surface, the output light of the touch-operable light source device cannot be made more uniform in intensity after passing through the transparent cover 40. Besides, the implementation of the round shaped copper layer 20 not only increases the cost, but severely reduces the routing space of the printed circuit board 10.
To solve the foregoing problems, a novel touch-operable light source device is needed.
One objective of the present invention is to disclose a touch-operable light source device, which is capable of providing a touch-operable light source by utilizing a light guide structure.
Another objective of the present invention is to disclose a touch-operable light source device, which is capable of directly using a surface of a light guide structure as a touch surface, without the need of using an additional touch module.
Another objective of the present invention is to disclose a touch-operable light source device, which is capable of providing separate touch-operable light sources in separate regions of a light guide structure respectively.
Still another objective of the present invention is to disclose a touch-operable light source device, which is capable of providing separate touch-operable light sources in separate regions of predetermined shapes of a light guide structure respectively.
To attain the foregoing objectives, a light guide device having touch function is proposed, including:
In one embodiment, the control circuit further includes a light source driver circuit coupled with the light source unit.
In one embodiment, the control circuit further includes a microprocessor coupled with the light source driver circuit and the touch detection unit for outputting a control signal to the light source driver circuit to control a light emitting status of the light source unit in response to a touch detection result from the touch detection unit.
In one embodiment, the touch detection unit detects the touch event by performing a capacitive touch detection procedure selected from a group consisting of a self-capacitive touch detection procedure and a mutual-capacitive touch detection procedure.
In one embodiment, the light output face of the light guide plate has an embossed figure.
In one embodiment, the light guide device having touch function further includes a liquid crystal layer above the light guide plate.
In one embodiment, the light guide device having touch function further includes a photo sensing unit.
To attain the foregoing objectives, another light guide device having touch function is proposed, including:
In one embodiment, the control circuit further includes a light source driver circuit and a microprocessor, the light source driver circuit being coupled with the first light source unit and the second light source unit, and the microprocessor being coupled with the light source driver circuit and the touch detection unit for outputting a control signal to the light source driver circuit to control a light emitting status of the first light source unit and/or a light emitting status of the second light source unit in response to a touch detection result from the touch detection unit.
To attain the foregoing objectives, still another light guide device having touch function is proposed, including:
In one embodiment, the light guide plate has a disk shape.
In one embodiment, the light guide plate further has a plurality of slots dividing the light output face into a plurality of light output zones.
To make it easier for our examiner to understand the objective of the invention, its structure, innovative features, and performance, we use preferred embodiments together with the accompanying drawings for the detailed description of the invention.
The present invention will be described in more detail hereinafter with reference to the accompanying drawings that show the preferred embodiments of the invention.
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The reflective plate 100 has one or more conductive areas, which can be implemented by aluminum, stainless steel, PET (polyethylene terephthalate) coated with a conductive glue, etc.
The light source unit 110 can include at least one LED (light emitting diode) and has a light output side.
The light guide plate 120 is located above the reflective plate 100 and has a light input side and a light output face, wherein the light input side is adjacent to the light output side of the light source unit 110, and the light output face is used to output light and serves as a touch surface.
The control circuit 130 includes a light source driver circuit 131, a touch detection unit 132, and a microprocessor 133, wherein, the light source driver circuit 131 is coupled electrically with the light source unit 110; the touch detection unit 132 is coupled with the one or more conductive areas of the reflective plate 100 for detecting a touch event on the light output face; and the microprocessor 133 is coupled with the light source driver circuit 131 and the touch detection unit 132 for outputting a control signal to the light source driver circuit 131 to control a light emitting status of the light source unit 110 in response to a touch detection result from the touch detection unit 132.
The touch detection unit 132 detects the touch event by performing a capacitive touch detection procedure selected from a group consisting of a self-capacitive touch detection procedure and a mutual-capacitive touch detection procedure.
When a touch operation is detected, the light emitting status of the light source unit 110 can be readily changed by the control circuit 130.
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The reflective plate 100 has one or more conductive areas, which can be implemented by aluminum, stainless steel, PET coated with a conductive glue, etc.
The first light source unit 110a has a first color of light and a first light output side.
The second light source unit 110b has a second color of light and a second light output side.
The light guide plate 120 is located above the reflective plate 100 and has a first light input side, a second light input side, and a light output face, wherein the first light input side is adjacent to the first light output side of the first light source unit 110a and the second light input side is adjacent to the second light output side of the second light source unit 110b, and the light output face is used to output light and also serves as a touch surface.
The control circuit 130 has a touch detection unit, a light source driver circuit, and a microprocessor (not shown in the figure), wherein, the touch detection unit is coupled with the one or more conductive areas of the reflective plate 100, and detects a touch event on the light output face by performing a capacitive touch detection procedure, which is selected from a group consisting of a self-capacitive touch detection procedure and a mutual-capacitive touch detection procedure; the light source driver circuit is coupled with the first light source unit and the second light source unit, and the microprocessor is coupled with the light source driver circuit and the touch detection unit for outputting a control signal to the light source driver circuit to control a light emitting status of the first light source unit 110a and/or a light emitting status of the second light source unit 110b in response to a touch detection result from the touch detection unit. For example, the microprocessor can control the brightness of the first light source unit 110a and the brightness of the second light source unit 110b to provide different colors of resultant light according to different touch counts.
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Each of the plurality of reflective plates 100 has one or more conductive areas, which can be implemented by aluminum, stainless steel, PET coated with a conductive glue, etc.
Each of the plurality of light source units 110 corresponds to one of the plurality of reflective plates 100 and has a light output side.
The light guide plate 120 is located above the plurality of reflective plates 100 and has a plurality of light input zones and a light output face, wherein each of the plurality of light input zones is adjacent to the light output side of one of the plurality of light source units 110.
The touch detection unit 132 is coupled electrically with the one or more conductive areas of the plurality of reflective plates 100 for detecting a location of a touch event on the light output face.
Besides, although the light guide plate 120 shown in
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The reflective plate 100 has one or more conductive areas, which can be implemented by aluminum, stainless steel, PET coated with a conductive glue, etc.
The light source unit 110 can include at least one LED and has a light output side.
The light guide plate 120 is located above the reflective plate 100 and has a light input side and a light output face, wherein the light input side is adjacent to the light output side of the light source unit 110, and the light output face is used to output light.
The control circuit 130 includes a light source driver circuit, a touch detection unit, a display driver unit, and a microprocessor (not shown in the figure), wherein, the light source driver circuit is coupled electrically with the light source unit 110 for driving the light source unit 110; the touch detection unit is coupled with the one or more conductive areas of the reflective plate 100 for detecting a touch event on the light output face by performing a capacitive touch detection procedure, which is selected from a group consisting of a self-capacitive touch detection procedure and a mutual-capacitive touch detection procedure; the display driver unit is used to drive the liquid crystal layer 140; and the microprocessor is coupled with the light source driver circuit, the touch detection unit, and the display driver unit for outputting a control signal to the light source driver circuit to control a light emitting status of the light source unit 110 in response to a touch detection result from the touch detection unit.
The liquid crystal layer 140 is located above the light guide plate 120 for displaying an image and providing a touch surface, and can be a TN (twisted nematic) liquid crystal layer, an STN (super twisted nematic) liquid crystal layer, a cholesterol liquid crystal layer, etc.
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The reflective plate 100 has one or more conductive areas, which can be implemented by aluminum, stainless steel, PET coated with a conductive glue, etc.
The light source unit 110 can include at least one LED and has a light output side.
The light guide plate 120 is located above the reflective plate 100 and has a light input side and a light output face, wherein the light input side is adjacent to the light output side of the light source unit 110, and the light output face is used to output light.
The control circuit 130 includes a light source driver circuit, a touch detection unit, a photo sensing circuit, and a microprocessor (not shown in the figure), wherein, the light source driver circuit is coupled electrically with the light source unit 110 for driving the light source unit 110; the touch detection unit is coupled with the one or more conductive areas of the reflective plate 100 for detecting a touch event on the light output face by performing a capacitive touch detection procedure, which is selected from a group consisting of a self-capacitive touch detection procedure and a mutual-capacitive touch detection procedure; the photo sensing circuit is used to receive an output signal from the photo sensing unit 150; and the microprocessor is coupled with the light source driver circuit, the touch detection unit, and the photo sensing circuit for outputting a control signal to the light source driver circuit to control a light emitting status of the light source unit 110 in response to the output signal from the photo sensing unit 150 and/or a touch detection result from the touch detection unit.
The photo sensing unit 150 is used to sense the intensity of ambient light or receive an infrared remote control signal for providing an additional control mechanism.
In addition, by forming a plurality of slots in the light guide plate 120, the light output face of the light guide plate 120 can be divided into a plurality of light output zones.
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Thanks to the proposed designs, the present invention possesses the following advantages:
While the invention has been described by way of example and in terms of preferred embodiments, it is to be understood that the invention is not limited thereto. To the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.
In summation of the above description, the present invention herein enhances the performance over the conventional structure and further complies with the patent application requirements and is submitted to the Patent and Trademark Office for review and granting of the commensurate patent rights.
| Number | Date | Country | Kind |
|---|---|---|---|
| 103121054 | Jun 2014 | TW | national |