1. Technical Field
The present disclosure relates to projection devices and, particularly, to a projection device having a brightness adjustment function and a method for the same.
2. Description of Related Art
In general, projection devices such as projectors are usually connected to an image output device, such as a video tape recorder or a VCD player. When the projection device projects images onto a projection surface in a room that is not dark enough, the images may look washed out.
Referring to
The light source 10 emits light to the PBS 30. In one embodiment, the light source 10 may be an LED, or a RGB LED.
The power supply unit 20 supplies power to the light source 10 through the power controller 90, thereby controlling a digital value of the light from the light source 10.
The PBS 30 reflects a portion of the light from the light source 10 to the reflective display 40, and transmits a remaining portion of the light. The reflective display 40 displays images, receives the light reflected by the PBS 30, and reflects the received light to the PBS 30. The PBS 30 further transmits the light reflected by the reflective display 40 to the lens module 50. The lens module 50 projects the images to be displayed by the reflective display 40 onto a projection surface. During the reflection of the light on the reflective display 40, due to the fact that a covering area of the light reflected by the PBS 30 is greater than the area of the reflective display 40, a portion of the light reflected by the PBS 30 will not be received by the reflective display 40. In one embodiment, the reflective display 40 is a liquid crystal on silicon.
The light detection unit 101 acquires a digital value of the portion of the light reflected by the PBS 30 that is not received by the reflective display 40, and compares the digital value with a predetermined digital value to generate a control signal. In one embodiment, the light detection unit 101 includes an optical sensor 60, a signal processing module 70, and a control module 80. The optical sensor 60 senses the portion of the light reflected by the PBS 30 that is not received by the reflective display 40 to generate a sensing signal. In one embodiment, the optical sensor 60 is a micro-electro mechanical system (MEMS) sensor.
The signal processing module 70 includes an amplifier 71 and a filter 72. The amplifier 71 amplifies the sensing signal from the optical sensor 60. The filter 72 filters the amplified sensing signal to generate an analog signal.
The control module 80 includes an analog-to-digital converter 81 and a comparator 82. The analog-to-digital converter 81 converts the analog signal to a digital signal. The comparator 82 compares the converted digital signal with a predetermined digital signal to generate the control signal.
The power controller 90 adjusts power from the power supply unit 20 to the light source 10 according to the control signal until the digital value matches the predetermined digital value of light from the light source 10.
As shown in
The light detection unit 101 includes three optical sensors 60a, 60b, and 60c, which respectively sense the portion of the light reflected by the 3-PBS 30a, 30b, and 30c that is not received by the three reflective displays 40a, 40b, and 40c to generate three sensing signals.
The signal processing module 70 amplifies and filters the three sensing signals to generate three corresponding analog signals. The control module 80 converts the three analog signals to three digital signals, and respectively compares the three digital signals with the predetermined digital signal to generate three control signals. The power controller 90 adjusts power from the power supply unit 20 to the three light sources 10a, 10b, and 10c according to the three control signals until the digital value respectively matches the predetermined digital value of the light from the three light sources 10a, 10b, and 10c.
In step S701, the light source 10 emits the light to the PBS 30.
In step S702, the PBS 30 reflects the portion of the light from the light source 10 to the reflective display 40, and transmits the remaining portion of the light.
In step S703, the light detection unit 101 acquires a digital value of the portion of the light reflected by the PBS that is not received by the reflective display 40, and compares the digital value with the predetermined digital value to generate the control signal.
In step S704, the power controller 90 adjusts power from the power supply unit 20 to the light source 10 according to the control signal until the digital value matches the predetermined digital value of light from the light source 10.
Although the present disclosure has been specifically described on the basis of the embodiments thereof, the disclosure is not to be construed as being limited thereto. Various changes or modifications may be made to the embodiments without departing from the scope and spirit of the disclosure.
Number | Date | Country | Kind |
---|---|---|---|
99139203 | Nov 2010 | TW | national |
The subject matter disclosed in this application is related to subject matters disclosed in copending applications entitled, “PROJECTION DEVICE WITH BRIGHTNESS ADJUSTMENT FUNCTION AND METHOD THEREOF”, filed **** (Atty. Docket No. US36611); “PROJECTION DEVICE WITH BRIGHTNESS ADJUSTMENT FUNCTION AND METHOD THEREOF”, filed **** (Atty. Docket No. US36615); “PROJECTION DEVICE WITH BRIGHTNESS ADJUSTMENT FUNCTION AND METHOD THEREOF”, filed **** (Atty. Docket No. US36614), and assigned to the same assignee as named herein.