This application claims the priority benefit of Taiwan application serial no. 102135526, filed on Oct. 1, 2013. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
1. Field of the Invention
The invention relates a load driving technique, and more particularly, relates to a load driving apparatus with current balance function.
2. Description of Related Art
Currently, a load driving apparatus with current balance function is provided, which is configured to provide a DC output voltage for loads such as a plurality of light emitting units to use. However, when a switch element located on a current path of each of the light emitting units fails (e.g., open-circuit), stability for entire circuitry of the load driving apparatus may be affected accordingly, and worse yet, it may cause damages to the loads and the load driving apparatus.
Accordingly, the invention is directed to a load driving apparatus capable of detecting whether a switch element located on a current path of each of the light emitting units fails (e.g., open-circuit), so as to effectively solve the problem addressed in Description of Related Art.
Other objects and advantages of the invention can be further illustrated by the technical features broadly embodied and described as follows.
Herein, an exemplary embodiment of the invention provides a load driving apparatus, which includes a power conversion circuit, a current balance circuit, a protection unit and a control chip. The power conversion circuit is configured to receive a DC input voltage, and provide a DC output voltage to a plurality of light emitting units in response to a control signal. The current balance circuit is coupled to the light emitting units and includes a plurality of switch elements corresponding to the light emitting units. The current balance circuit is configured to balance currents flowing through the light emitting units. The protection unit is coupled to a plurality of common nodes between the light emitting units and the switch elements and the DC output voltage, and configured to detect statuses of the switch elements and/or the DC output voltage. The control chip is coupled to the power conversion circuit and the protection unit, and configured to: generate the control signal to control operations of the power conversion circuit; and stop generating the control signal and enter into a shutdown status when any one of the switch elements is open-circuit and/or the DC output voltage is over-voltage, thereby protecting the load driving apparatus and/or the switch elements from damaging.
In an exemplary embodiment of the invention, the switch elements are implemented by adopting a plurality of transistors having identical characteristics.
In an exemplary embodiment of the invention, the protection unit may include: a plurality of switch detection circuits and an over-voltage detection circuit. Each of the switch detection circuits is configured to detect whether the corresponding transistor is open-circuit. In addition, the over-voltage detection circuit is configured to detect whether the DC output voltage is over-voltage.
In an exemplary embodiment of the invention, once the switch detection circuits detect that any one of the transistors is open-circuit, the control chip stops generating the control signal and enters into the shutdown status. Alternatively, once the over-voltage detection circuit detects that the DC output voltage is over-voltage, the control chip stops generating the control signal and enters into the shutdown status.
Based on above, the load driving apparatus proposed by the invention is capable of making the control chip to start a protection mechanism to stop generating/outputting the control signal for controlling the operations of the power conversion circuit and enter into the shutdown status when the switch elements (the transistors) on the current path of each of the light emitting units fails (e.g., open-circuit) and/or the DC output voltage provided to the load is over-voltage. Accordingly, the load driving apparatus and/or the load may be protected from damaging, so as to effectively overcome/solve the problem addressed in Description of Related Art.
To make the above features and advantages of the present disclosure more comprehensible, several embodiments accompanied with drawings are described in detail as follows.
However, the above descriptions and the below embodiments are only used for explanation, and they do not limit the scope of the disclosure.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
Descriptions of the invention are given with reference to the exemplary embodiments illustrated with accompanied drawings, in which same or similar parts are denoted with same reference numerals. In addition, whenever possible, identical or similar reference numbers stand for identical or similar elements in the figures and the embodiments.
It is pre-mentioned that, the control chip 107 may include a plurality of functional pins, such as a power pin VDD, a ground pin GND, a chip enable pin EA, an output pin OUT, a detection pin DT, and a feedback pin FB. Naturally, based on practical design/application requirements, other functional pins may be added to the control chip 107, or the existed functional pins may be removed from the control chip 107. Moreover, in order to accomplish purposes of protecting circuits and setting currents, the control chip 107 may also be built-in with a protection reference voltage VP
In the present exemplary embodiment, the power conversion circuit 101 may be a PWM-based power conversion circuit, but the invention is not limited thereto. Under this condition, the power conversion circuit 101 may be configured to receive a DC input voltage VDC
On the other hand, the current balance circuit 103 is coupled to the light emitting units L1 to LN, and includes a plurality of switch elements Q1 to QN corresponding to the light emitting units L1 to LN and a bias unit B1. In the present exemplary embodiment, the current balance circuit 103 may be configured to balance currents flowing through the light emitting units L1 to LN. Herein, in order accomplish a purpose of current balancing, the switch elements Q1 to QN may be implemented by adopting a plurality of transistors having identical characteristics (e.g., amplification factor, size), such as bipolar transistors (BJTs) or metal-oxide-semiconductor field emission transistors (MOSFETs), but the invention is not limited thereto. In addition, because reference numbers of the bipolar transistors are illustrated in
In the current balance circuit 103, the bias unit B1 is coupled to the transistors Q1 to QN, and configured to operate under the DC input voltage VDC
Further, the protection unit 105 is coupled to the common nodes N1 to NN between the light emitting units L1 to LN and the switch elements (i.e., the transistors Q1 to QN) and the DC output voltage VDC
In the present exemplary embodiment, the switch detection circuits 201_1 to 201_N are respectively corresponding to the transistors Q1 to QN, and respectively coupled between the first terminals (the collectors) of the transistors Q1 to QN and the detection pin DT of the control chip 107. For instance, the switch detection circuit 201_1 is corresponding to the transistor Q1, and coupled between the first terminal (the collector) of the transistor Q1 and the detection pin DT of the control chip 107; the switch detection circuit 201_2 is corresponding to the transistor Q2, and coupled between the first terminal (the collector) of the transistor Q2 and the detection pin DT of the control chip 107; and the rest can be deduced from the above, for example, the switch detection circuit 201_N is corresponding to the transistor QN, and coupled between the first terminal (the collector) of the transistor QN and the detection pin DT of the control chip 107.
In terms of functionality, each of the switch detection circuits 201_1 to 201_N may be configured to detect whether the corresponding one of the transistors Q1 to QN is open-circuit. For instance, the switch detection circuit 201_1 may be configured to detect whether the corresponding transistor Q1 is open-circuit; the switch detection circuit 201_2 may be configured to detect whether the corresponding transistor Q2 is open-circuit; and the rest can be deduced from the above, for example, the switch detection circuit 201_N may be configured to detect whether the corresponding transistor QN is open-circuit.
In addition, in terms of implementation structure, each of the switch detection circuits 201_1 to 201_N may include a diode and a Zener diode. For instance, the switch detection circuit 201_1 may include a diode D1 and a Zener diode ZD1; the switch detection circuit 201_2 may include a diode D2 and a Zener diode ZD2; and the rest can be deduced from the above, for example, the switch detection circuit 201_N may include a diode DN and a Zener diode ZDN.
Furthermore, in terms of connectivity, taking the switch detection circuit 201_1 for example, a cathode of the diode D1 is coupled to the detection pin DT of the control chip 107, an anode of the Zener diode ZD1 is coupled to an anode of the diode D1, and a cathode of the Zener diode ZD 1 is coupled to the first terminal (the collector) of the corresponding transistor Q1. Similarly, taking the switch detection circuit 201_2 for example, a cathode of the diode D2 is coupled to the detection pin DT of the control chip 107, an anode of the Zener diode ZD2 is coupled to an anode of the diode D2, and a cathode of the Zener diode ZD2 is coupled to the first terminal (the collector) of the corresponding transistor Q2. The rest can be deduced from the above, for example, a cathode of the diode DN is coupled to the detection pin DT of the control chip 107, an anode of the Zener diode ZDN is coupled to an anode of the diode DN, and a cathode of the Zener diode ZDN is coupled to the first terminal (the collector) of the corresponding transistor QN.
On the other hand, the over-voltage detection circuit 203 is coupled between the DC output voltage VDC
In addition, in order to make the control chip 107 to operate normally, the power pin VDD receives the DC input voltage VDC
In the present exemplary embodiment, the control chip 107 is coupled to the power conversion circuit 101 and the protection unit 105, and configured to: generate the control signal CS and output the control signal CS through the output pin OUT to control operations of the power conversion circuit 101; and when any one of the switch elements (e.g., the transistors Q1 to QN) is open-circuit and/or the DC output voltage VDC
More specifically, when a voltage on any one of the common nodes N1 to NN minus a breakdown voltage of the corresponding Zener diode and then minus a forward bias of the corresponding diode is greater than the protection reference voltage VP
For instance, when a voltage (e.g., denoted by VN1) on the common node N1 minus a breakdown voltage (e.g., denoted by VZ1) of the corresponding Zener diode ZD1 and then minus a forward bias (e.g., denoted by VD1) of the corresponding diode D1 is greater than the protection reference voltage VP
For another instance, when a voltage (e.g., denoted by VN2) on the common node N2 minus a breakdown voltage (e.g., denoted by VZ2) of the corresponding Zener diode ZD2 and then minus a forward bias (e.g., denoted by VD2) of the corresponding diode D2 is greater than the protection reference voltage VP
The rest can be deduced from the above, for example, when a voltage (e.g., denoted by VNN) on the common node NN minus a breakdown voltage (e.g., denoted by VZN) of the corresponding Zener diode ZDN and then minus a forward bias (e.g., denoted by VDN) of the corresponding diode DN is greater than the protection reference voltage VP
On the other hand, when a voltage division (e.g., denoted by VR2) between the resistors R1 and R2 minus a breakdown voltage (e.g., denoted by VZDP) of the Zener diode ZDP and then minus a forward bias (e.g., denoted by VDP) of the diode is greater than the protection reference voltage VP
Apparently, once the switch detection circuits 201_1 to 201_N detect that any one of the transistors Q1 to QN is open-circuit (hereinafter, referred to as a condition 1), the control chip 107 stops generating the control signal CS and enters into the shutdown status. Alternatively, once the over-voltage detection circuit 203 detects that the DC output voltage VDC
Further, for the purpose of setting currents, in the present exemplary embodiment, the current-setting circuit 109 may be coupled to the second terminals (the emitters) of the transistors Q1 to QN and the feedback pin FB of the control chip 107. Moreover, in terms of functionality, the current-setting circuit 109 may be configured to set the currents flowing through the light emitting units L1 to LN. In terms of implementation structure, the current-setting circuit 109 may include resistors RISET and RF. In terms of connectivity, a first terminal of the resistor RISET is coupled to the second terminals (the emitters) of the transistors Q1 to QN, and a second terminal of the resistor RISET is coupled to a ground potential. A first terminal of the resistor RF is coupled to the second terminals (the emitters) of the transistors Q1 to QN, and a second terminal of the resistor RF is coupled to the feedback pin FB of the control chip 107.
Herein, owing to the current-setting reference voltage VISET
Furthermore, once the control chip 107 enters into the shutdown status in response to any one of the transistors Q1 to QN being open-circuit or in response to the DC output voltage VDC
In addition, in order to accomplish a purpose of adjusting the DC output voltage VDC
In summary, the load driving apparatus 10 proposed by the invention is capable of making the control chip 107 to start a protection mechanism to stop generating/outputting the control signal CS for controlling the operations of the power conversion circuit 101 and enter into the shutdown status when the switch elements (the transistors Q1 to QN) on the current path of each of the light emitting units L1 to LN fails (e.g., open-circuit) and/or the DC output voltage VDC
It is worth mentioning that, the load driving apparatus 10 is applied in the backlight module of the LCD system for examples, thus the LCD system and/or the backlight module having the load driving apparatus 10 both fall within the scope of the present invention for which protection is sought. In addition, the load driving apparatus 10 applied in the backlight module of the LCD system belongs to an exemplary illustration, thus application range/environment for the load driving apparatus 10 is not limited only to applications in said exemplary illustration.
Although the present invention has been described with reference to the above embodiments, it will be apparent to one of the ordinary skill in the art that modifications to the described embodiment may be made without departing from the spirit of the invention. Accordingly, the scope of the invention will be defined by the attached claims not by the above detailed descriptions.
Any of the embodiments or any of the claims of the invention does not need to achieve all of the advantages or features disclosed by the present invention. Moreover, the abstract and the headings are merely used to aid in searches of patent files and are not intended to limit the scope of the claims of the present invention.
Number | Date | Country | Kind |
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102135526 | Oct 2013 | TW | national |