1. Field of Invention
The invention relates to a backlight module, and, in particular, to a backlight module for a liquid crystal display device.
2. Related Art
Because liquid crystal displays (LCDs) are compact, they are a favorite among consumers. The conventional LCD device mainly includes a liquid crystal display panel and a backlight module that provides a light source of the LCD device and a cold cathode fluorescent lamp (CCFL) serves as the light source. However, because light emitting diodes (LEDs) have higher efficiency than the CCFL, some manufacturers have replaced the CCFL with LEDs as the light source of the backlight module of the LCD device.
The conventional LED backlight module includes a plurality of LEDs composed of red light diodes, green light diodes and blue light diodes. Because the lighting intensity of the LED tends to be influenced by the manufacturing processes and temperature and tends to attenuate with elapsed time of use. Also, because the degrees of attenuation of the LEDs are not completely the same, the LCD device may develop a color shift problem according to the change in temperature and elapsed time of use when the LCD device has LEDs serving as the light source of the backlight module.
Thus, it is an important subject of the invention to provide a backlight module of the LCD device capable of sensing the lighting intensity of the LEDs in the backlight module and adjusting the lighting intensity of the LEDs according to the conditions thereof so as to control the lighting intensity of the backlight module precisely.
In view of the foregoing, the invention is to provide a backlight module for a LCD device, which can prevent color shift by adjusting the lighting intensity.
To achieve the above, a backlight module for the LCD device according to the invention includes at least one light source and a light adjusting unit, wherein the light source has at least one first LED and at least one second LED. When the first LED is turned on, the second LED turns on for a first time period and senses the lighting intensity of the first LED for a second time period to generate a sensing signal. The light adjusting unit electrically connected to the first LED and the second LED receives the sensing signal to adjust the lighting intensity of the first LED according to the sensing signal.
In addition, a backlight module for the LCD device according to the invention includes at least one light source and a light adjusting unit, wherein the light source has at least one first LED and at least one second LED. When the first LED is turned on, the second LED turns off for a first time period and senses the lighting intensity of the first LED for a second time period to generate a sensing signal. The light adjusting unit electrically connected to the first LED and the second LED receives the sensing signal to adjust the lighting intensity of the first LED according to the sensing signal.
As mentioned above, the second LED senses the lighting intensity of the first LED in the backlight module for the LCD device of the invention, and the light adjusting unit adjusts the lighting intensity of the first LED according to the sensed result. Thus, the lighting intensity of the first LED can be adjusted according to its condition, and the brightness of the backlight module can be precisely controlled.
The invention will become more fully understood from the detailed description given herein below illustration only, and thus is not limitative of the present invention, and wherein:
The present invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
Referring to
As mentioned hereinabove, in order to make the LCD device display various colors, the light source 11 may be a red light source, a green light source, a blue light source, or a white light source. In order to realize the four-color light source 11, the first LED 111 may be a red light diode, a green light diode, a blue light diode or a white light diode, and the second LED 112 may be a red light diode, a green light diode, a blue light diode or a white light diode.
In addition, regarding the structure of the LED, the first LED 111 may be an organic light emitting diode or a stacked organic light emitting diode, and the second LED 112 may be an organic light emitter diode or a stacked organic light emitter diode.
As shown in
In addition, when the first LED is turned on, the second LED may also turn off for a time period Tp3 and sense the lighting intensity of the first LED in a time period Tp4 to generate the sensing signal S. When the second LED either turns on or turns off, the sensing mode may be switched to sense the lighting intensity of the first LED while lit so that the light adjusting unit 12 can adjust the lighting intensity of the first LED 111.
Furthermore, as shown in
As shown in
As shown in
In addition, the driving unit 13 may be electrically connected to the second LED 112 through the switches 123 and 124 but does not drive the second LED 112 to turn on for the time period Tp3. Then, in the time period Tp4, the second LED 112 is electrically connected to the biasing circuit 121 and the adjusting circuit 122 to generate the sensing signal S.
The light adjusting unit 12 receives the sensing signal S to judge whether the lighting intensity of the first LED 111 reaches a predetermined lighting intensity. If the judged result is negative, the light adjusting unit 12 adjusts the driving current generated by the driving unit 13 to drive the first LED 111 more strongly so that the lighting intensity of the first LED 111 reaches the predetermined lighting intensity. In this embodiment, the second LED 112 can periodically sense the lighting intensity of the first LED 111 to generate the sensing signal S so that the lighting intensity of the first LED 111 may be periodically monitored. It is to be specified that the light adjusting unit 12 can process the operations of this embodiment according to, but not limited to, a digital manner.
In addition, the predetermined lighting intensity may be recorded as a predefined value, and the driving unit 13 drives the first LED 111 to turn on according to the predefined value. When the user adjusts the brightness of the LCD device or the brightness of the backlight module has to be adjusted, this predefined value is reset so that the lighting intensity of the first LED 111 can be adjusted.
As shown in
In addition, the driving unit 13 may be electrically connected to the first LED 111 through the switches 125 and 126 but not drive the first LED 111 to turn on for the time period Tp7. Then, the first LED 111 is electrically connected to the biasing circuit 121 and the adjusting circuit 122 so that the sensing signal S is generated in the time period Tp8. The first LED 111 can periodically sense the lighting intensity of the second LED 112 to generate the sensing signal S so that the lighting intensity of the second LED 112 can be periodically monitored.
Referring to
Of course, the above-mentioned embodiment is described by taking the light source including two LEDs as an example. In practice, however, the light source may include a plurality of LEDs. The method of sensing and adjusting the lighting intensity of these LEDs will be described in the following embodiment.
Referring to
In summary, the second LED senses the lighting intensity of the first LED in the backlight module for the LCD device of the invention, and the light adjusting unit adjusts the lighting intensity of the first LED according to the sensed result. Thus, the lighting intensity of the first LED can be adjusted according to its condition, and the brightness of the backlight module can be precisely controlled.
Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the true scope of the invention.
Number | Date | Country | Kind |
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094146037 | Dec 2005 | TW | national |