The present invention relates to a technical field of Thin Film Transistor Liquid Crystal Display (TFT-LCD), in particular, to a LCD Q-Panel, LCD panel and LCD apparatus.
At present, in the process for manufacturing a TFT-LCD, a glass substrate includes a plurality of LCD Q-Panels, wherein each Q-Panel comprises a plurality of LCD panels and has one or two sets of general signal connection port(s). The lengths of signal transmission lines between each LCD panel and the general signal connection port are different since the distances therebetween are different. During an actual manufacturing, all the signal transmission lines are made very thin to improve the utilization of the glass substrate; and since the Q-Panel is relatively large, the signal transmission lines between the LCD panel which is far away from the general signal connection port among the Q-Panel and the general signal connection port are relatively longer, and thus the resistances of these signal transmission lines are larger. When the same signals are loaded onto the general signal connection port of the Q-Panel, the paths along which the loaded signals are transferred to the individual LCD panels are shown in
In test, a testing signal is loaded into the general signal connection port of the Q-Panel, the resistance of the signal transmission line between the LCD panel and the general signal connection port gradually increases as the distance therebetween increases, and thus the voltage drop caused by the resistance increases continuously. Therefore, the farther the LCD panel is from the general signal connection port, the less the strength of the testing signal received by the LCD panel is, and thus the less the luminance of the LCD panel after being lighted up is, and in a certain situation, it can not even be lighted up, which affects the test seriously.
In summary, the resistance of the signal transmission line and the voltage drop caused by the resistance are relatively large when the length of the signal transmission line is long since the Q-Panel is large and the signal transmission line is thin, and thus it causes a large attenuation of the signal over the resistance of the signal transmission line when the signal is loaded into the general signal connection port.
The embodiments of the present invention provide a LCD Q-Panel, a LCD panel and a LCD apparatus, for solving the technical problem that the signals are greatly attenuated over the resistances of the signal transmission lines when the signals are loaded into the general signal connection port of the LCD Q-Panel.
In view of the above problem, the LCD Q-Panel provided in the embodiments of the present invention comprises:
a general signal connection port, at least one LCD panel comprising a signal connection point, and at least one voltage follower; the signals input from the general signal connection port are transmitted via the at least one voltage follower to the signal connection point connected to an output terminal of the at least one voltage follower and the LCD panel comprising the signal connection point.
The embodiments of the present invention also provide a LCD panel which is obtained from the LCD Q-Panel provided in the embodiments of the present invention.
The embodiments of the present invention further provide a LCD apparatus comprising the LCD panel obtained from the LCD Q-Panel provided in the embodiments of the present invention.
The embodiments of the present invention can achieve at least the beneficial effects as follows:
In the LCD Q-Panel, the LCD panel and the LCD apparatus provided in the embodiments of the present invention, the LCD panel, in the LCD Q-Panel, being connected to the output terminal of the voltage follower receives the signal input from the general signal connection port via the voltage follower, wherein the signal is transferred via the voltage follower connected between the general signal connection port and the signal connection point of the LCD panel rather than over the signal transmission line directly, and since the voltage follower has a feature of a very high input impedance and a very low output impedance, the signal is almost fully transmitted to the voltage follower according to the voltage-dividing principle of a series circuit; in other words, the resistance of the signal transmission line between the general signal connection port and the signal connection point of the LCD panel has almost no influence on the signal transmitted over the signal transmission line segment, and thus the loss of the signal, input from the general signal connection port over the resistance of the signal transmission line, can be reduced.
The embodiments of the present invention provide a LCD Q-Panel, LCD panel and LCD apparatus. In the LCD Q-Panel, a LCD panel connected to an output terminal of a voltage follower receives signals input from the general signal connection port via the voltage follower. Since the signals are transferred from the voltage follower connected between the general signal connection port and a signal connection point of the LCD panel rather than from the signal transmission lines directly, there is almost no loss, caused by the resistances of the signal transmission lines between the general signal connection port and a signal connection point of the LCD panel, in the signals transferred over the signal transmission lines, thus reducing the loss of the signals input from the general signal connection port over the resistances of the signal transmission lines.
The implementations of the LCD Q-Panel and LCD apparatus provided in the embodiments of the present invention are described in detail with reference to the accompanying drawings hereinafter.
The LCD Q-Panel provided in the embodiments of the present invention includes a general signal connection port, at least one LCD panel comprising a signal connection point, and at least one voltage follower; the signals input from the general signal connection port are transmitted to the signal connection point being connected to an output terminal of the at least one voltage follower and the LCD panel comprising the signal connection point via the voltage follower.
The above voltage follower can be located between any two adjacent LCD panels, with an input terminal of the voltage follower connected to the signal connection point of the LCD panel which is closer to the general signal connection port among the two adjacent LCD panels, and with an output terminal of the voltage follower connected to the signal connection point of the other LCD panel.
For example, as shown in
Preferably, the LCD Q-Panel may further include a plurality of voltage followers, and there is a voltage follower located between any several adjacent LCD panels. For instance, as shown in
Preferably, in the LCD Q-Panel provided in the embodiments of the present invention, there is a voltage follower located between every two adjacent LCD panels. As shown in
In addition, the voltage follower F1 included in the LCD Q-Panel provided in the embodiments of the present invention can also be located between the LCD panel V1 closest to the general signal connection port 11 and the general signal connection port 11. As shown in
Preferably, a distance between the voltage follower and the LCD panel connected to the output terminal of the voltage follower does not exceed a preset distance. The shorter the distance between the voltage follower and the LCD panel connected to the output terminal of the voltage follower is, the less the attenuation of the signal transmitted to the LCD panel connected to the output terminal of the voltage follower which can be guaranteed by the voltage follower is. In an actual application, the preset distance may be 1 mm in general, but it is not limited to this.
As shown in
As shown in
The operational amplifier A1 can employ a circuit structure of a simple operational amplifier shown in
The circuit of the input stage 91 of the simple operational amplifier includes a resistor Rc1, a resistor Rc2, a triode T1 and a triode T2, wherein the base of the triode T1 servers as the negative input U− of the simple operational amplifier, the collector of the triode T1 is connected to one terminal of the resistor Rc1, and the other terminal of the resistor Rc1 is connected to a positive power supply Vcc, and the emitter of the triode T1 is connected to a negative power supply VEE; the base of the triode T2 serves as the positive input U+ of the simple operational amplifier, and the collector of the triode T2 is connected to one terminal of the resistor Rc2, and the other terminal of the resistor Rc2 is connected to the positive power supply Vcc, and the emitter of the triode T2 is connected to the negative power supply VEE.
The circuit of the intermediate stage 92 of the simple operational amplifier includes a resistor Rc3 and a triode T3, wherein the base of the triode T3 is connected to the node where the resistor Rc2 in the input stage 91 and the collector of the triode T2 are connected, the collector of the triode T3 is connected to one terminal of the resistor Rc3, the other terminal of the resistor Rc3 is connected to the positive power supply Vcc, and the emitter of the triode T3 is grounded.
The circuit of the output stage 93 of the simple operational amplifier includes a triode T4 and a triode T5, wherein the base of the triode T4 is connected to the base of the triode T5 and connected to the node where the resistor Rc3 in the intermediate stage 92 and the collector of the triode T3 are connected, the collector of the triode T4 is connected to the positive power supply Vcc, the emitter of the triode T4 is connected to the emitter of the triode T5 and serves as the output Uo of the simple operational amplifier, and the collector of the triode T5 is connected to the negative power supply VEE.
In an actual application, all of the resistors Rc1, Rc2, and Rc3, and the triodes T1, T2, T3, T4 and T5 can be implemented by use of the existing array technical process during the process for manufacturing the TFT-LCD without adding any extra technical processes.
Further, the voltage follower included in the LCD Q-Panel provided in the embodiments of the present invention is constructed in Thin Film Transistors and Thin Film Resistors.
The circuit of the voltage follower and the circuit of the operational amplifier in the embodiments are only for illustration, and those skilled in the art can also employ other voltage followers and operational amplifiers. For example, the circuit can be constructed by using the transistors such as CMOS (Complementary Metal Oxide Semiconductor) Transistors instead of triodes. In an actual application, preferably, the above transistors are manufactured as Thin Film Transistors (TFTs) smaller than a pixel in size and the above resistor are manufactured as Thin Film Resistors so as to decrease the area of the glass substrate occupied. In an actual application, the TFTs in the operational amplifier can employ the same type of TFTs as those in the pixel circuit of the LCD panel, and can also employ different type of TFTs from those in the pixel circuit of the LCD panel.
Further, the voltage follower and the LCD panel do not overlap each other on the LCD Q-Panel so that the part comprising the voltage follower can be cut out when the Q-Panel is divided into a single display panel, thus further improving the utilization of the area of the display panel.
Further, the embodiments of the present invention provide a LCD panel which is obtained from the LCD Q-Panel provided in the embodiments of the present invention.
Further, the embodiments of the present invention provide a LCD apparatus including the LCD panel which is obtained from the LCD Q-Panel provided in the embodiments of the present invention.
Obviously, those skilled in the art can make modifications and variations to the present invention without departing from the spirits and scopes of the present invention. Thus, provided that these modifications and variations belong to the scopes claimed by the attached claims and the equivalences thereof, it is intended to cover such modifications and variations in the present invention.
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20140055331 A1 | Feb 2014 | US |