The present invention relates to a display device, of which electromagnetic interference is reduced.
In general, the operation process of driving a display device comprises: a voltage outputted by a power source circuit passes through a DC-DC converter in a printed circuit board assembly (PCBA), so as to provide various driving voltages which a display panel needs. When the display device is driven, the electronic components in the display device will generate electromagnetic waves which cause the electronic components to produce electromagnetic interference (EMI), and may even affect the image display quality. In general, a high-current will produce greater electromagnetic interference.
Please refer to
The object of the present invention is to dispose a DC-DC converter close to the gate drivers by changing the layout design of a printed circuit board, so that it minimizes the path of current and voltage and reduces the generation of electromagnetic interference.
To achieve the above object, the present invention provides a display device, the display device includes: a display panel having a source driver deployed in the first direction and a gate driver deployed in the second direction, wherein the source driver and the gate driver are used for driving the display panel; a connector for connecting an external power source to receiving a voltage therefrom; a DC-DC converter provided close to the gate driver and electrically connected to the source driver, the gate driver, and the connector for receiving the voltage from the connector and converting the voltage into a driving voltage to be applied to the display panel; a first trace for connecting the connector and the DC-DC converter; and a second trace for connecting the DC-DC converter and the source driver, wherein a length of the first trace is longer than a length of the second trace.
In the above-described display device, the DC-DC converter includes a pulse width modulation circuit and a charge pump, and the pulse width modulation circuit is electrically connected to the charge pump.
In the above-described display device, the DC-DC converter is disposed on a printed circuit board.
In the above-described display device, the trace of the power circuit is covered with a shielding material
In the above-described display device, the shielding material is copper foil.
In the above-described display device, the voltage outputted from the connector to the DC-DC converter is 12 volts.
A printed circuit board for a display device, the display device includes a display panel having a source driver deployed in the first direction and a gate driver deployed in the second direction, wherein the source driver and the gate driver are used for driving the display panel, the printed circuit board comprising: a connector for connecting an external power source to receiving a voltage therefrom; a DC-DC converter for transmitting the voltage to the source driver and the gate driver; a first trace for connecting the connector and the DC-DC converter; and a second trace for connecting the DC-DC converter and the source driver, wherein a length of the first trace is longer than a length of the second trace.
In the above-described printed circuit board, the DC-DC converter includes a pulse width modulation circuit and a charge pump, and the pulse width modulation circuit is electrically connected to the charge pump.
In the above-described printed circuit board, the first trace is covered with a shielding material.
In the above-described printed circuit board, the shielding material is copper foil.
The object of the present invention is to provide a display device capable of improving the electromagnetic interference. In the prior art, the DC-DC converter is disposed near the input terminal of the power source in the layout design of the printed circuit board, but the DC-DC converter of the present invention is disposed near the source driver, so that it minimizes the path of the current and voltage and reduces the generation of electromagnetic interference.
In order to make the present invention more clear, preferred embodiments, and the drawings thereof, are described in detail below.
Furthermore, in the present embodiment, the display device 100 includes a power circuit 250, a connector 210, a DC-DC converter 220, a first trace 230, and a second trace 240. The connector 210, the DC-DC converter 220, the first trace 230, and the second trace 240 are disposed on a side in the first direction of the display panel 500. The connector 210 is connected with the DC-DC converter 220 by the first trace 230, and the DC-DC converter 220 is connected with the source driver series 300 by the second trace 240. The connector 210 is connected with the power circuit 250 for receiving a voltage generated by the power circuit 250. Therefore, the connector 210 outputs the voltage to the DC-DC converter 220 through the first trace 230. The DC-DC converter 220 adjusts the voltage received from the power circuit 210, and outputs the voltage to a source driver 310 of the source driver series 300 through the second trace 240. The source driver 310 is electrically connected to the other source drivers 320 to 340 and the gate driver series 400, so as to provide various driving voltages which the display panel 500 needs for driving the display panel 500. The voltage of the DC-DC converter 220 transmitting to the source driver series 300 and the gate driver series 400 includes a gate high voltage (VGH), a gate low voltage (VGL), and a main voltage (VAVDD), wherein the VGH and VGL are transmitted to the gate driver series 400, and the VAVDD is transmitted to the source driver series 300.
It should be noticed that the second trace 240 is the connecting line of the DC-DC converter 220 and the source driver 310. Although the DC-DC converter 220 may transmit electric power to the other source drivers 320 to 340 and the gate driver series 400 through the source driver 310, the second trace 240 does not contain the connecting line that the source driver series 300 uses to transmit electric power to other source drivers 320 to 340 and the gate driver series 400. In the structure, the DC-DC converter 220 is closer to the side in the first direction of the display panel 500 than the connector 210. That is, the distance of between the connector 210 and the display panel 500 is greater than the distance between the DC-DC converter 220 and the side in the first direction of the display panel 500.
Furthermore, according to the above-described display device 100, if the DC-DC converter 220 is disposed near the connector 210, it will cause current voltage with a long output path, so as to generate a large amount of the electromagnetic interference. Therefore, in the above-described display device 100, the elements of DC-DC converter 220 are partially or entirely disposed near the source driver series 300. Since the source driver 310 of source driver series 300 will transmit electric power to the other source drivers 320 to 340 and the gate driver series 400 through the connecting line, a preferred embodiment of the present invention is the element of the DC-DC converter 220 partially or entirely disposed near the source driver series 300 and the gate driver series 400. That is, the DC-DC converter 220 is disposed near the intersection in the first direction and the second direction, so that it minimizes the path of the DC-DC converter 220 outputting current voltage. A length of the second trace is shorter than a length of the first trace, thereby reducing the electromagnetic interference generated by the output terminal of the DC-DC converter 220, further achieving a better display effect.
In addition, in the above-described display device 100, as shown in
In the present preferred embodiment, the connector 210 and the DC-DC converter 220 of the display device 100 are disposed on a printed circuit board 200. The printed circuit board 200 is located on a side in the first direction of the display panel 500. In the present embodiment, in order to achieve that the DC-DC converter 220 be disposed near a side in the first direction of the display panel 500 the layout design of a printed circuit board just needs to be changed. Further, the DC-DC converter 220 is disposed near the intersection in the first direction and the second direction. That is, the DC-DC converter 220 is disposed near the position of the source driver series 300 and the gate driver series 400.
In the present embodiment, in order to achieve that the elements of the DC-DC converter 220 are partially or entirely disposed near the gate driver series 400 the layout design of a printed circuit board 200 just needs to be changed. For example, only the charge pump 222 of the DC-DC converter 220 is disposed near the gate driver series 400, or the pulse width modulation circuit 221 and the charge pump 222 of the DC-DC converter 220 are disposed near the gate driver series 400.
In addition, in the above-described display device 100, as shown in
In summary, in the display device 100 of the present embodiment, the DC-DC converter 220 is disposed near the gate driver series 400, that is, the length of the first trace is longer than the length of the second trace, so that it minimizes the path of the current voltage. Further, the trace of the connector 210 outputting a voltage to the DC-DC converter 220 is covered with the shielding material 232, so as to reduce the generation of electromagnetic interference.
Although the invention herein, with reference to several illustrative embodiments, has been described for the present invention, it should be understood to an ordinary skilled person in the art that the invention is not limited to the embodiments, but rather that various changes or modifications thereof are possible without departing from the spirit of the invention. However, the terms βaβ and βanβ do not mean that quantitative restrictions, but rather indicate the presence of at least one of the referenced item.
Number | Date | Country | Kind |
---|---|---|---|
201310504054.7 | Oct 2013 | CN | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/CN2013/087140 | 11/14/2013 | WO | 00 |