Power supply circuit with spike suppression circuit
Granted 29 Oct 2013 · no office action yet
Assignee: Foxconn Technology Group
Law firm: Law firm · Log in to unlock
Attorney: Attorney · Log in to unlock
Inventors: Qi-Yan Luo, Peng Chen, Song-Lin Tong · Examiner: Bao Q Vu · AU 2838 · TC 2800
Life of the application
6 dated eventsAbstract
A power supply circuit includes a pulse width modulation (PWM) chip, a number of phase circuits, a voltage output end, and a spike suppression circuit. The spike suppression circuit is connected to each of the phase circuits and the voltage output end. The PWM chip controls all of the phase circuits to alternately output power supply voltages according to a predetermined sequence. The spike suppression circuit receives the power supply voltages, and filters out voltage spikes in the power supply voltages, thereby outputting steady voltages to the voltage output end.
Description
4 parts›BACKGROUND
1. Technical Field
The disclosure generally relates to power supplies, particular to a power supply circuit that includes a spike suppression circuit.
2. Description of Related Art
Many electronic devices use multi-phase power supplies. However, in using the multi-phase power supplies, one or more phases of the multi-phase power supplies may generate corresponding voltage spikes, which will lead to an imbalance of output voltages. Even more, if a voltage spike generated by a multi-phase power supply is higher than a rated voltage, the multi-phase power supply may be damaged. Therefore, there is room for improvement within the art.
›BRIEF DESCRIPTION OF THE DRAWINGS
Many aspects of the present embodiment can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present embodiment.
FIG. 1 is a circuit diagram of a power supply circuit, according to an exemplary embodiment.
FIG. 2 is a circuit diagram of one embodiment of a spike suppression circuit of the power supply circuit shown in FIG. 1 .
›DETAILED DESCRIPTION · 1 of 2
FIG. 1 is a circuit diagram of a power supply circuit 100 , according to an exemplary embodiment. The power supply circuit 100 includes a voltage input end Vin, a pulse width modulation (PWM) chip 11 , a plurality of phase circuits 12 , a spike suppression circuit 13 , and an output end Vout. In the present embodiment, the power supply circuit 100 includes four phase circuits 12 . The PWM chip 11 can generate pulse signals to control the phase circuits 12 to alternately output voltages to electronic devices (not shown), thereby supplying power to the electronic devices. The spike suppression circuit 13 can suppress voltage spikes generated by the phase circuits 12 , and protect the power supply circuit 100 .
The PWM chip 11 includes a plurality of first control pins corresponding to the phase circuits 12 (e.g., in the present embodiment, there are four first control pins P 1 , P 2 , P 3 , P 4 ), a plurality of second control pins corresponding to the phase circuits 12 (e.g., four second control pins P 5 , P 6 , P 7 , P 8 ), and a feedback pin FB.
Each of the phase circuits 12 includes a first metal-oxide-semiconductor field-effect transistor (MOSFET) M 1 , a second MOSFET M 2 , and an inductor L. In each of the phase circuits 12 , a gate of the first MOSFET M 1 is connected to a corresponding first control pin, for example, the first control pin P 1 . A source of the first MOSFET M 1 is grounded. A drain of the first MOSFET M 1 is connected to both an end of the inductor L and a drain of the second MOSFET M 2 . The other end of the inductor L is connected to the voltage input end Vin. A gate of the second MOSFET M 2 is connected to a corresponding second control pin, for example, the second control pin P 5 . Sources of all the second MOSFETs M 2 of all of the phase circuits 12 share the voltage output end Vout, which is grounded by a first capacitor C 1 . Furthermore, the drains of the second MOSFETs M 2 of all of the phase circuit 12 are also used as output nodes A, B, C, and D.
Also referring to FIG. 2 , the spike suppression circuit 13 includes a plurality of diodes D 1 , D 2 , D 3 , D 4 corresponding to the phase circuits 12 , a first resistor R 1 , a third MOSFET M 3 , a second capacitor C 2 , and a third capacitor C 3 . Anodes of the diodes D 1 , D 2 , D 3 , D 4 are respectively connected to the corresponding output node (e.g., the anode of the diode D 1 is connected to the output node A). Cathodes of the diodes D 1 , D 2 , D 3 , D 4 are all connected to a source of the third MOSFET M 3 . The source of the third MOSFET M 3 is also connected between one end of the second capacitor C 2 and one end of the third capacitor C 3 . The other end of the second capacitor C 2 and the other end of the third capacitor C 3 are both grounded. A gate of the third MOSFET M 3 is connected to one of the output nodes A, B, C or D (e.g., the end of the first resistor R 1 is connected to the output node A). A drain of the MOSFET M 3 is connected to the voltage output end Vout.
In use, the PWM chip 11 generates and transmits control signals to the phase circuits 12 through the corresponding first control pins and the second control pins. In each of the phase circuits 12 , upon receiving the control signals, the first MOSFET M 1 is turned off and the second MOSFET M 2 is turned on. Thus, an original voltage of a power supply (not shown) is received through the voltage input end Vin, and transmitted to the drain of the second MOSFET M 2 , and is further transmitted to the voltage output end Vout. The inductor L and the first capacitor C 1 filter the original voltage from alternating current (AC) to a desired direct current (DC) voltage when it is transmitted to the voltage output end Vout. In particular, the PWM chip 11 alternately transmits control signals to all of the phase circuits 12 according to a predetermined sequence. Thus, the first MOSFET M 1 and the second MOSFET M 2 are alternately turned on and off according to the predetermined sequence, and the DC voltages generated by all of the phase circuits 12 are alternately transmitted to the voltage output end Vout according to the predetermined sequence (e.g., the DC voltages generated by the output node A, B, C, D are respectively transmitted to the voltage output end Vout in that order), and used as power supply voltages for electronic devices (not shown) using the power supply circuit 100 . In this way, the power supply circuit 100 acts as a multi-phase power supply.
Since the drains of the second MOSFETs M 2 are used as output nodes, when the original voltage is alternately transmitted to the drains of the second MOSFETs M 2 , the original voltage is also alternately transmitted to the spike suppression circuit 13 through the output nodes. In the present embodiment, when the original voltage is transmitted to the spike suppression circuit 13 through the output node A, the third MOSFET M 3 is turned off, and the original voltage is transmitted to ground through the first capacitor C 1 . In this way, the capacitor C 1 is charged, and obtains a voltage V 1 .
When the original voltage is transmitted to the spike suppression circuit 13 through any of the output nodes B, C, and D, the original voltage is transmitted to the source of the third MOSFET M 3 to turn on the third MOSFET M 3 . Thus, the first capacitor C 1 discharges to ground through the second capacitor C 2 and the third capacitor C 3 , such that the second capacitor C 2 and the third capacitor C 3 both obtain a voltage V 2 . Since the second capacitor C 2 and the third capacitor C 3 are connected to the corresponding output nodes B, C, D through the diode D 2 , D 3 , D 4 , a voltage V 3 of the output nodes B, C, D will meet the following formula: V 3 =V 2 +V D (V D represents a voltage of the diode D 2 , D 3 , or D 4 ).
Furthermore, when the original voltage is transmitted to the spike suppression circuit 13 through the output node A again, the third MOSFET M 3 is turned off again. Thus, the original voltage is transmitted to ground through the second capacitor C 2 and the third capacitor C 3 . Thus, the second capacitor C 2 and the third capacitor C 3 are charged, and obtain a voltage V 4 . Since the second capacitor C 2 and the third capacitor C 3 are connected to the output node A through the diode D 1 , so the voltage V A of the output node A will meet the following formula: V A =V 4 +V D1 (V D1 represents a voltage of the diode D 2 ). In this way, each of the phase circuits 12 will respectively output a steady voltage to the voltage output end Vout, and the power supply circuit 100 is protected from being damaged due to the voltage spikes generated by the phase circuits 12 .
›DETAILED DESCRIPTION · 2 of 2
In the present embodiment, the power supply circuit 100 further includes a feedback circuit 14 . The feedback circuit 14 is connected to the voltage output end Vout and the feedback pin FB. In particular, the feedback circuit 14 includes a second resistor R 2 and a third resistor R 3 . One end of the second resistor R 2 is connected to the voltage output end Vout. The other end of the second resistor R 2 is connected between the feedback pin FB and one end of the third resistor R 3 . The other end of the third resistor R 3 is grounded. The feedback circuit 14 samples a voltage of the voltage output end Vout, and feedbacks the sampled voltage to the PWM chip 11 . The PWM chip 11 receives the sampled voltage, and turns on or off the power supply circuit 100 according to the sampled voltage.
It is believed that the exemplary embodiments and their advantages will be understood from the foregoing description, and it will be apparent that various changes may be made thereto without departing from the spirit and scope of the disclosure or sacrificing all of its material advantages, the examples hereinbefore described merely being preferred or exemplary embodiments of the disclosure.
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11 codes- H02M1/12
- H02M1/14
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