Driving circuit and driving method applied to display system and associated display system
09735569 · 2017-08-15
Assignee
Inventors
Cpc classification
H02H9/043
ELECTRICITY
G09G2310/08
PHYSICS
G09G3/2014
PHYSICS
H02H9/045
ELECTRICITY
International classification
G09G5/00
PHYSICS
G09G3/20
PHYSICS
Abstract
A driving circuit applied in a display system includes a node, a current control circuit, a protecting circuit and a timing controller, wherein the node is arranged to connect to a lighting element; the current control circuit is coupled to the node and arranged to selectively provide a current to the lighting element according to a Pulse Width Modulation (PWM) signal; the protecting circuit is coupled to the node and arranged to be selectively enabled to limit the voltage of the node according to a control signal to make the voltage of the node maintain a predetermined voltage, wherein the lighting element does not have any current passed through when the voltage of the node maintains the predetermined voltage; and the timing controller is arranged to generate the PWM signal and the control signal.
Claims
1. A driving circuit applied in a display system, comprising: a node, arranged for connecting a lighting element; a current control circuit, coupled to the node, arranged to selectively provide a current to the lighting element according to a Pulse Width Modulation (PWM) signal; a protecting circuit, coupled to the node, arranged to be selectively enabled to limit a voltage of the node according to a control signal to make the voltage of the node maintain a predetermined voltage, wherein the lighting element does not have any current passes through when the voltage of the node maintains the predetermined voltage; a timing controller, arranged to generate the PWM signal and the control signal; wherein when a level of the PWM signal generated by the timing controller starts to change to make the current control circuit stop providing current to the lighting element, the timing controller generates the control signal to enable the protecting circuit to limit the voltage of the node; and when the level of the PWM signal generated by the timing controller starts to change to make the current control circuit start to provide the current to the lighting element, the timing controller generates the control signal to disable the protecting circuit to make the voltage of the node not be controlled by the protecting circuit.
2. The driving circuit of claim 1, wherein the timing controller receives an input signal and generates the PWM signal and the control signal according to the input signal.
3. The driving of claim 1, wherein a time that the timing controller generates the control signal to enable the protecting circuit to limit the voltage of the node is earlier than a time that the level of the PWM signal starts to change and makes the current control circuit stop providing the current to the lighting element; and a time that the timing controller generates the control signal to disable the protecting circuit is earlier than a time that the level of the PWM signal starts to change and makes the current control circuit start to provide the current to the lighting element.
4. The driving circuit of claim 3, wherein the timing controller receives an input signal and performs a delay operation to the input signal to generate the PWM signal, and the timing controller generates the control signal according to the input signal.
5. The driving circuit of claim 1, wherein the lighting element is a Light-Emitting Diode (LED) string, the LED string comprises M LEDs, the predetermined voltage locates between (V.sub.LED−M*Vf) and (V.sub.LED+M*Vr), wherein M is any positive integer equal to or larger than 1, V.sub.LED is a supply voltage of the LED string, Vf is a positive bias voltage of each LED and Vr is a negative bias voltage of each LED.
6. The driving circuit of claim 5, wherein the predetermined voltage is the supply voltage of the LED string.
7. A driving method applied in a display system, comprising: providing a driving circuit, wherein the driving circuit comprises a node arranged to connect to a lighting element, a current control circuit coupled to the node and a protecting circuit coupled to the node; generating a PWM signal to the current control circuit to selectively provide a current to the lighting element; generating a control signal to the protecting circuit to selectively enable the protecting circuit to limit a voltage of the node to make the voltage of the node maintain a predetermined voltage, wherein the lighting element does not have any current passed through when the voltage of the node maintain the predetermined voltage; wherein the steps of generating the control signal to the protecting circuit to selectively enable the protecting circuit to limit the voltage of the node comprises: generating the control signal to enable the protecting circuit to limit the voltage of the node when a level of the PWM signal starts to change and makes the current control circuit stop providing the current to the lighting element; and when the level of the PWM signal starts to change and makes the current control circuit start to provide the current to the lighting element, generating the control signal to disable the protecting circuit to make the voltage of the node not be controlled by the protecting circuit.
8. The driving method of claim 7, further comprising: receiving an input signal and generating the PWM signal and the control signal according to the input signal.
9. The driving method of claim 7, wherein a time that generating the control signal to enable the protecting circuit to limit the voltage of the node is earlier than a time that the level of the PWM signal starts to change to make the current control circuit stop providing the current to the lighting element; and a time that generating the control signal to disable the protecting circuit is earlier than a time that the level of the PWM signal starts to change to make the current control circuit start to provide the current to the lighting element.
10. The driving method of claim 9, further comprising: receiving an input signal and performing a delay operation to the input signal to generate the PWM signal and generating the control signal according to the input signal.
11. The driving method of claim 7, wherein the lighting element is a LED string, the LED string comprises M LEDs, the predetermined voltage locates between (V.sub.LED−M*Vf) and (V.sub.LED+M*Vr), wherein M is any positive integer equal to or larger than 1, V.sub.LED is a supply voltage of the LED string, Vf is a positive bias voltage of each LED and Vr is a negative bias voltage of each LED.
12. The driving method of claim 11, wherein the predetermined voltage is the supply voltage of the LED string.
13. A display system, comprising: a lighting element; and a driving circuit, wherein the driving circuit comprises: a node, arranged to connect to the lighting element; a current control circuit, coupled to the node, arranged to selectively provide a current to the lighting element according to a PWM signal; a protecting circuit, coupled to the node, arranged to be selectively enabled to limit a voltage of the node according to a control signal to make the voltage of the node maintain a predetermined voltage, wherein the lighting element does not have any current passed through when the voltage of the node maintains the predetermined voltage; and a timing controller, arranged to generate the PWM signal and the control signal; wherein when the PWM signal generated by the timing controller starts to change to make the current control circuit stop providing current to the lighting element, the timing controller generates the control signal to enable the protecting circuit to limit the voltage of the node; and when the PWM signal generated by the timing controller starts to change to make the current control circuit start to provide the current to the lighting element, the timing controller generates the control signal to disable the protecting circuit to make the voltage of the node not be controlled by the protecting circuit.
14. The display system of claim 13, wherein the timing controller receives an input signal, and generates the PWM signal and the control signal according to the input signal.
15. The display system of claim 13, wherein a time that the timing controller generates the control signal to enable the protecting circuit to limit the voltage of the node is earlier than a time that the level of the PWM signal starts to change to make the current control circuit stop providing the current to the lighting element; and a time that the timing controller generates the control signal to disable the protecting circuit is earlier than a time that the level of the PWM signal starts to change to make the current control circuit start to provide the current to the lighting element.
16. The display system of claim 15, wherein the timing controller receives an input signal and performs a delay operation to the input signal to generate the PWM signal, and the timing controller generates the control signal according to the input signal.
17. The display system of claim 13, wherein the lighting element is a LED string, the LED string comprises M LEDs, the predetermined voltage locates between (V.sub.LED−M*Vf) and (V.sub.LED+M*Vr), wherein M is any positive integer equal to or larger than 1, V.sub.LED is a supply voltage of the LED string, Vf is a positive bias voltage of each LED and Vr is a negative bias voltage of each LED.
18. The display system of claim 17, herein the predetermined voltage is the supply voltage of the LED string.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(8) Certain terms are used throughout the description and following claims to refer to particular components. As one skilled in the art will appreciate, manufacturers may refer to a component by different names. This document does not intend to distinguish between components that differ in name but not function. In the following description and in the claims, the terms “include” and “comprise” are used in an open-ended fashion, and thus should not be interpreted as a close-ended term such as “consist of”. Also, the term “couple” is intended to mean either an indirect or direct electrical connection. Accordingly, if one device is coupled to another device, that connection may be through a direct electrical connection, or through an indirect electrical connection via other devices and connections.
(9) Refer to
(10) In the operation of the system 400, first of all, the timing controller 440 receives the input signals V.sub.S1 to V.sub.SN from the other elements of the driving circuit 410, and the timing controller 440 generates the PWM signals V.sub.en1 to V.sub.enN and the control signals V.sub.c1 to V.sub.cN according to the input signals V.sub.S1 to V.sub.SN, wherein the PWM signals V.sub.en1 to V.sub.enN are arranged for controlling the transistor M.sub.1 to M.sub.N of the current control circuit 420 to be opened or closed, respectively, and the average luminance of the LEDs D.sub.1 to D.sub.N are determined by the time ratio of the open/close states of the transistor M.sub.1 to M.sub.N, respectively (i.e. the duty cycles of the PWM signals V.sub.en1 to V.sub.enN); and the control signals V.sub.c1 to V.sub.cN are arranged for controlling the open/close states of the transistors M.sub.C1 to M.sub.CN of the protecting circuit 430 to selectively limit the voltages of the node N.sub.1 to N.sub.N.
(11) More specifically, refer to
(12) In addition, before the PWM signal V.sub.en1 increase to high level from low level (i.e. before the PWM signal V.sub.en1 opens the transistor M.sub.1 to provide current to the LED D.sub.1), the control signal V.sub.c1 closes the transistor M.sub.c1 first to prevent the protecting circuit from forming another current path and affects the current value passed through the LED D.sub.1.
(13) Refer to
(14) In addition, according to the applicant, the architecture of the circuit in the protecting circuit 430 is only an example, not a limitation of the present invention. For example, the nodes of the transistors M.sub.C1 to M.sub.CN in the protecting circuit 430 can connect to another predetermined voltage instead of the supply voltage V.sub.LED. The predetermined voltage can be designed according to the requirement of the designer as long as the predetermined voltage can prevent the nodes N.sub.1 to N.sub.N from being affected by the high voltage surge, and to make no current pass through the LEDs D.sub.1 to D.sub.N, when the transistor M.sub.1 to M.sub.N in the current control circuit 420 close. For example, the above-mentioned predetermined voltage can locate between (V.sub.LED−M*Vf) and (V.sub.LED+M*Vr), wherein M is the number of LED(s) of each LED string (M=1 in the embodiment of
(15) In addition, the description about the timing controller 440 generating the PWM signals V.sub.en1 to V.sub.enN and the control signal V.sub.c1 to V.sub.cN described above, and the input signal V.sub.s1, the PWM signal V.sub.en1 and the control signal V.sub.c1 shown in
(16) In addition, the LEDs D.sub.1 to D.sub.N shown in
(17) Refer to
(18) Step 700: provide a driving circuit, wherein the driving circuit comprises a node arranged for connecting to a lighting element, a current control circuit coupled to the node and a protecting circuit coupled to the node.
(19) Step 702: generate a PWM signal to the current control circuit to selectively provide a current to the lighting element.
(20) Step 704: generate a control signal to the protecting circuit to selectively enable the protecting circuit to limit the voltage of the node.
(21) Briefly summarized, in the driving circuit, the driving method and the associated display system of the present invention, a protecting circuit which can limit the high voltage surge introduced by parasitic inductance is provided. Therefore, by limiting the high voltage surge introduced by parasitic inductance, it can prevent the circuit from damage and does not affect the life of the circuit.
(22) Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.