This application claims the priority of Korean Patent Application No. 10-2010-0079985 filed on Aug. 18, 2010, in the Korean Intellectual Property Office, the disclosure of which is incorporated herein by reference.
1. Field of the Invention
The present invention relates to a power supply which is applicable to a server, and more particularly, to a power supply which can improve the system efficiency of a standby voltage supply system by supplying a standby voltage using a main voltage.
2. Description of the Related Art
In order to generate a standby voltage, a conventional power supply for a server generally uses a flyback converter having a simple structure. However, such a flyback converter has low efficiency due to high voltage stress and hard switching.
A conventional power supply for a server is designed so that a standby stage supplies an operating voltage and a standby voltage using a DC voltage from a power factor correction (PFC) unit, and a DC/DC stage is supplied with the operating voltage from the standby stage and generates a main voltage using the DC voltage from the PFC unit.
In the conventional power supply for the server, the standby stage generally uses a flyback converter, and the efficiencies of the PFC unit, the DC/DC stage, and the standby stage are about 98%, 96%, and 80%, respectively, when an input voltage of about 230 Vac is inputted thereto and a load thereof is 50%.
In the conventional power supply for the server, the efficiency of the standby stage is very low, even though the weight of the standby stage is low as compared to the main voltage supply unit. Consequently, the efficiency of an overall server system to which the power supply is applied will be lowered.
An aspect of the present invention provides a power supply which can improve the efficiency of a standby voltage supply system by supplying a standby voltage using a main voltage.
According to an aspect of the present invention, there is provided a power supply having improved system efficiency, including: a standby stage converting a DC voltage into an operating voltage and a first standby voltage, which have a preset magnitude, and supplying the first standby voltage to a standby output terminal; a DC/DC stage supplied with the operating voltage from the standby stage, converting the DC voltage into a main voltage having a preset magnitude, and supplying the main voltage to a main output terminal; and a main/standby stage converting the main voltage from the DC/DC stage into a second standby voltage having a preset magnitude, and supplying the second standby voltage to the standby output terminal.
According to another aspect of the present invention, there is provided a power supply having, improved system efficiency, including: a power factor correction (PFC) unit converting an AC voltage into a DC voltage having a preset magnitude; a standby stage converting the DC voltage from the PFC unit into an operating voltage and a first standby voltage, which have a preset magnitude, and supplying the first standby voltage to a standby output terminal; a DC/DC stage supplied with the operating voltage from the standby stage, converting the DC voltage into a main voltage having a preset magnitude, and supplying the main voltage to a main output terminal; and a main/standby stage converting the main voltage from the DC/DC stage into a second standby voltage having a preset magnitude, and supplying the second standby voltage to the standby output terminal.
According to another aspect of the present invention, there is provided a power supply having improved system efficiency, including: a standby stage converting a DC voltage into an operating voltage and a first standby voltage, which have a preset magnitude, and supplying the first standby voltage to a standby output terminal; a DC/DC stage supplied with the operating voltage from the standby stage, converting the DC voltage into a main voltage having a preset magnitude, and supplying the main voltage to a main output terminal; a main/standby stage converting the main voltage from the DC/DC stage into a second standby voltage having a preset magnitude, and supplying the second standby voltage to the standby output terminal; and a protection circuit unit connected between an output terminal of the standby stage and the standby output terminal, and opening a voltage supply line connected to the output terminal of the standby stage.
The power supply may further include a power factor correction (PFC) unit converting an AC voltage into the DC voltage and supplying the DC voltage to the DC/DC stage and the standby stage.
The main/standby stage may include a first diode having an anode connected to the main output terminal and a cathode connected to the standby output terminal, the first diode being turned on by the main voltage from the DC/DC stage and supplying the second standby voltage to the standby output terminal.
The protection circuit unit may include a protection diode having an anode connected to the output terminal of the standby stage and a cathode connected to the standby output terminal, the protection diode being turned off when the second standby voltage is supplied.
The protection circuit unit may include a protection switching element connected between the output terminal of the standby stage and the standby output terminal, the protection switching element being turned off when the second standby voltage is supplied.
The main/standby stage may include a first switching element connected between the main output terminal and the standby output terminal, the first switching element being turned on by a first switching control signal and supplying the main voltage from the DC/Dc stage to the standby output terminal.
The protection circuit unit may include a protection diode having an anode connected to the output terminal of the standby stage and a cathode connected to the standby output terminal, the protection diode being turned off when the second standby voltage is supplied.
The protection circuit unit may include a protection switching element connected between the output terminal of the standby stage and the standby output terminal, the protection switching element being turned off when the second standby voltage is supplied.
The main/standby stage may include a voltage regulator converting the main voltage from the DC/DC stage into a preset voltage; and a second diode having an anode connected to an output terminal of the voltage regulator and a cathode connected to the standby output terminal, the second diode being turned on by an output voltage of the voltage regulator and supplying the second standby voltage to the standby output terminal.
The protection circuit unit may include a protection diode having an anode connected to the output terminal of the standby stage and a cathode connected to the standby output terminal, the protection diode being turned off when the second standby voltage is supplied.
The protection circuit unit may include a protection switching element connected between the output terminal of the standby stage and the standby output terminal, the protection switching element being turned off when the second standby voltage is supplied.
The above and other aspects, features and other advantages of the present invention will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
Exemplary embodiments of the present invention will now be described in detail with reference to the accompanying drawings. The invention may, however, be embodied in many different forms and should not be construed as being limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. In the drawings, the thicknesses of layers and regions are exaggerated for clarity. Like reference numerals in the drawings denote like elements, and thus their description will be omitted.
Referring to
In addition, the power supply according to the embodiment of the present invention may further include a power factor correction (PFC) unit which converts an AC voltage into the DC voltage having a preset magnitude, and supplies the DC voltage to the DC/DC stage 300 and the standby stage 200.
Referring to
The first diode D may be configured to be turned on by the main voltage Vmain from the DC/DC stage 300 and supply the second standby voltage Vstb2 to the standby output terminal OUTstb.
Referring to
The first switching element SW1 may be configured to be turned on by a first switching control signal and supply the main voltage Vmain from the DC/DC stage 300 to the standby output OUTstb.
Referring to
The second diode D2 may be configured to be turned on by the output voltage of the voltage regulator 410 and supply the second standby voltage Vstb2 to the standby output terminal OUTstb.
Referring to
The protection circuit unit 500 may include a protection diode D5 having an anode connected to the output terminal of the standby stage 200 and a cathode connected to the standby output terminal OUTstb.
The protection diode D5 may be configured to be turned off when the second standby voltage Vstb2 is supplied.
Referring to
The protection switching element SW2 may be configured to be turned off when the second standby voltage Vstb2 is supplied.
Hereinafter, the operation and effect of the present invention will be described with reference to the accompanying drawings.
The power supply having improved system efficiency according to the embodiment of the present invention will be described below with reference to
The standby stage 200 may convert the DC voltage Vdc from the PFC unit 100 into the operating voltage Vcc (e.g., 10 Vdc) and the first standby voltage Vstb1 (e.g., 10 Vdc), and supply the first standby voltage Vstb1 to the standby output terminal OUTstb (S200 of
In addition, the DC/DC stage 300 may be supplied with the operating voltage. Vcc from the standby stage 200 to operate the internal circuit thereof. Accordingly, the DC/DC stage 300 may convert the DC voltage Vdc into the preset main voltage Vmain (e.g., 12 Vdc), and supply the main voltage Vmain (e.g., 12 Vdc) to the main output terminal OUTmain (S300 of
The main/standby stage 400 may convert the main voltage Vmain from the DC/DC stage 300 into the preset second standby voltage Vstb2 (e.g., 10 V), and supply the second standby voltage Vstb2 to the standby output terminal OUTstb (S400 of
Referring to
Referring to
For example, in a case in which the main voltage Vmain is supplied from the DC/DC stage 300, the power supply may be configured to provide the first switching control signal. In this case, the first switching element SW1 may be turned off by the first switching control signal.
Referring to
The voltage regulator 410 may convert the main voltage Vmain from the DC/DC stage 300 into the preset voltage.
The second diode D2 may be turned on by the output voltage of the voltage regulator 410 and supply the second standby voltage Vstb2 to the standby output terminal OUTstb.
As illustrated in
The protection circuit unit 500 is connected between the output terminal of the standby stage 200 and the standby output terminal OUTstb and opens the voltage supply line connected to the output terminal of the standby stage 200 when the second standby voltage Vstb2 is supplied. Therefore, it is possible to prevent the second standby voltage Vstb2 from being introduced to the standby stage 200, thereby protecting the standby stage 200.
As an example, in a case in which the protection circuit unit 500 includes the protection diode D5, the protection diode D5 may be turned off when the second standby voltage Vstb2 is supplied.
For example, when the first and second standby voltages Vstb1 and Vstb2 are 10 Vdc, an offset state is initiated in the protection diode D5.
As illustrated in
For example, when the second standby voltage Vstb2 is supplied, the power supply may be configured to provide a protection switching control signal. In this case, the protection switching element SW2 may be turned off by the protection switching control signal.
As described above, when the DC/DC stage 300 does not operate, the output voltage can be obtained from the output voltage of the PFC unit 100 through the standby stage 200. When the DC/DC stage 300 operates, the output voltage can be obtained through the DC/DC stage 300 and the main/standby stage 400.
In addition, when the AC input voltage is about 230 Vac and the load thereof is 50%, the efficiencies of the PFC unit 100, the DC/DC stage 300, and the standby stage 200 are about 98%, 96%; and 80%, respectively, and the efficiency of the voltage regulator 410 of the main/standby stage 400 is about 92%.
Accordingly, the efficiency of the DC/DC stage 300 and the voltage regulator 410 is 88%, which is improved by about 8%, as compared to a case in which the standby stage is obtained through the standby stage.
In particular, when the standby voltage is equal to the main voltage, the voltage regulator of the main/standby stage can be removed. In this case, the efficiency of the power supply can be improved by about 16%.
As set forth above, according to exemplary embodiments of the invention, the efficiency of the standby voltage supply system can be improved by supplying the standby voltage using the main voltage.
While the present invention has been shown and described in connection with the exemplary embodiments, it will be apparent to those skilled in the art that modifications and variations can be made without departing from the spirit and scope of the invention as defined by the appended claims.
Number | Date | Country | Kind |
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10-2010-0079985 | Aug 2010 | KR | national |