The present invention relates to a backlight-source-luminance auto-adjusting system and method, and particularly to a system and method capable of automatically adjusting luminance of a backlight source.
With spreading of Liquid Crystal Display (LCD), more attentions have been drawn to LCD, especially the Thin Film Transistor-Liquid Crystal Display (TFT-LCD), and requirement to the quality of picture thereof is growing. Thus, manufactures producing the TFT-LCDs are required to perform restrict parameter tests on the TFT-LCD panels to ensure the quality of products.
Existing tests of TFT-LCD panels are realized by input a variable electric signal to a signal input of the TFT-LCD panels so as to obtain different examination pictures. However, TFT-LCD is a passive display device which will not radiate light by itself. It realizes the image display by using the electro-optical effect of the liquid crystal and controlling the light intension of displaying part through an alternative electric field, thus an important premise for carrying out tests of TFT-LCD panels is to have a backlight source for providing a constant luminance for the tests, so that stable gray scale can be ensured in the tested picture. Bad detection rate of TFT-LCD panels also depends on the stability of luminance of the backlight source directly. If abnormality occurs in the backlight source which decreases or increases the luminance in testing, it is hard to be recognized by human eyes, and has to be measured by specific testing instruments and then be adjusted manually, which is time-consuming, and there are errors in the manual adjustment.
An object of embodiments of the present invention is to provide a system and method for automatically adjusting luminance of a backlight source, which change the existing manual adjustment manner, and improve the stability of luminance of the backlight source.
Another object of embodiments of the present invention is to provide a system and method for automatically adjusting luminance of a backlight source, which are capable of achieving automatic turning-on and turning-off of the backlight source, saving electric power and slowing aging of the device.
Therefore, the embodiments of the present invention provide a backlight-source-luminance auto-adjusting system including a backlight source; a photosensitive element mounted on the backlight source for converting a light signal into an electric signal; an amplification/conversion circuit connected to the photosensitive element for amplifying a received analog signal and converting the analog signal into a digital signal; and a control circuit connected to the amplification/conversion circuit and the backlight source, for receiving a signal sent by the amplification/conversion circuit and adjusting the backlight source. The amount of said photosensitive elements is one or more. Said photosensitive element is a photosensor or a photodiode or a photoresistor. Said photosensitive element is mounted on front face and/or back face of the backlight source. Said amplification/conversion circuit comprises an operational amplification module for amplifying the received analog signal; and a conversion module connected to the operational amplification module for converting the analog signal into the digital signal. Said conversion module is an A/D conversion circuit or an AD/DA conversion circuit. Said control circuit comprises: a microprocessor for providing a control signal for adjusting the backlight source; a memory connected to the microprocessor for storing a quantified current value corresponding to a set luminance of the backlight source, as well as a preset time; a receiving module connected to the microprocessor for receiving an externally input signal; a comparison module connected to the microprocessor for comparing a current value corresponding to the received digital signal with the quantified current value corresponding to the set luminance of the backlight source; and a control module connected to the microprocessor for controlling a level of an input voltage to the backlight source according to the control signal from the microprocessor, adjusting the luminance of the backlight source, and turning on or off the backlight source according to the control signal. Said control module includes a current switch for controlling the turning on or off of the backlight source. Said microprocessor is a single-chip processor or PLC. The system further includes a device operating board connected to the control circuit. The device operating board comprises a hardware platform for providing an operation platform for parameter setting by a user; and a software platform for providing an operation signal of turning on or off the backlight source. Said photosensitive element, amplification/conversion circuit, control circuit, and device operating board communicate with each other in a wired or wireless manner.
The embodiments of the present invention also provide a backlight-source-luminance auto-adjusting method comprising receiving a light signal of a backlight source and converting the light signal into an electric signal; amplifying the converted electric signal and converting the amplified analog signal into a digital signal; comparing a current value corresponding to the digital signal with a qualified current value corresponding to a set luminance of the backlight source; and controlling an output voltage of a control circuit to increase or decrease, and adjusting to increase or decrease the luminance of the backlight source, according to the comparison result. Said method further comprising the control circuit turning on the backlight source when receiving a turning-on signal, and further comprising the control circuit turning off the backlight source when receiving a turning-off signal or not receiving any operation signal for a predetermined period.
Technical solutions of the present invention will be further described in conjunction with figures and particular embodiments.
As shown in
As shown in
After the receiving module 43 receives the digital signal sent by the amplification/conversion circuit 3, it sends the digital signal to the microprocessor 41. The microprocessor 41 sends said digital signal to the comparison module 44, query the current value corresponding to a normal luminance of the backlight source in the memory 42, and sends it to the comparison module 44. The comparison module 44 compares the current value corresponding to the received digital signal with the quantified current value corresponding to the set luminance of the backlight source, and returns the comparison result to the microprocessor 41. Then the microprocessor 41 provides the control signal to the control module 45 according to the comparison result. The control module 45 adjusts the output voltage of the control circuit according to the control signal sent from the microprocessor 41. The output voltage of the control circuit is the input voltage of the backlight source 1. Thereby the luminance of the backlight source can be adjusted by adjusted the input voltage of the backlight source 1.
Based on the first embodiment, as shown in
In this embodiment, five photosensors are mounted on the center and four corners on the back of the backlight source, and connected with the control circuit via a control bus. Mounting the photosensors on the above positions can achieve a best effect with the premise of saving. Also, mounting the photosensors on the back of the backlight source can avoid reduction in the luminance due to coverage of the photosensors. However, sizes of the photosensitive elements are smaller with development of the fabrication process, and hence the light covered by the photosensitive elements is ignorable, thus the photosensitive elements can also be mounted on the front side of the backlight source, that is, in the middle of the backlight source and the tested panel.
This embodiment is a preferred embodiment of the present invention. One or more photosensitive elements may be mounted on the front side or back side of the backlight source as required. The photosensitive elements can convert a light signal into an electric signal, such as photosensor, photodiode, photoresistor, or the like. In the case of mounting one photosensitive element, it may be mounted on the center of the backlight source.
During turning-on of the backlight source, if no detection is performed in a period of time while the backlight source is still in the on state, it causes the power waste and aging of the device, so the backlight source should be turned off. The user may send an operating command for turning off the backlight source to the control circuit via the device operating board. After the receiving module in the control circuit receives this command, a turning-off signal is sent to the control module through the microprocessor to control the current switch to be open and therefore turn off the backlight source. The approach to turn off manually by the user is described above. The present invention also provides a method of automatically turning off the backlight source by the system. When the detection is stalled, if the receiving module in the control circuit does not receive any operating signal from the device operating system for a predetermined time (which, for example, the predetermined time may be set to 3 minutes or 5 minutes, and the like), the microprocessor sends the command for turning off the backlight source so as to control the current switch to be open and therefore turn off the backlight source. This approach is that the system automatically controls the turning off of the backlight source according to the predetermined time, and thus saves electric power and human efforts. The predetermined time may be preset and stored in the memory in advance. Other approaches may also be used to realize automatic control for turning on or off the backlight source. For example, it may be realized by controlling the main power source of the system by the control circuit and will not be limited to the solutions proposed in the embodiment.
In the backlight-source-luminance auto-adjusting system and method of the present invention, the photosensitive element and the control circuit, and the device operating board and the control circuit may communicate in a manner of wired or wireless connection. If the wireless communication is used, wireless communicating modules should be incorporated into the device operating board and the control circuit accordingly.
Finally, the invention is thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to those skilled in the art are intended to be included within the scope of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
2007 1 0098705 | Apr 2007 | CN | national |
Number | Name | Date | Kind |
---|---|---|---|
7973759 | Huang et al. | Jul 2011 | B2 |
8040341 | Lin | Oct 2011 | B2 |
20060007097 | Ichikawa | Jan 2006 | A1 |
Number | Date | Country |
---|---|---|
1774665 | May 2006 | CN |
1794044 | Jun 2006 | CN |
Number | Date | Country | |
---|---|---|---|
20080266238 A1 | Oct 2008 | US |