This application claims priority from Japanese Patent Application No. 2011-156319 filed on Jul. 15, 2011, the entire subject matter of which is incorporated herein by reference.
This disclosure relates to a resonant converter, and more specifically, to an output characteristic of a resonant converter.
Among resonant converters, a half-bridge type LLC (Line Level Control) resonant converter is known.
However, the half-bridge type LLC resonant converter of the background art is not suitable for uses of audio application. In the case where it is used as the audio application, a power supply device is needed to be driven with a wide load (load amount), and necessarily has appropriate load regulation (for example, refer to JP-A-2006-101683). Specifically, in the case of the increased load, it is necessary to lower the output voltage of the power supply device so as not to take electric power excessively, so that the load regulation should is to be large. In contrast, for the output characteristic of the half-bridge type LLC resonant converter of the background art, that is, the characteristic of output current Io and output voltage Vo, as indicated by reference numeral (X) in
With taking into consideration the background art, this disclosure provides at least a resonant converter capable of achieving a load regulation, which is suitable for an audio application.
A resonant converter of one aspect of this disclosure comprises: a first switching element and a second switching element, which are connected in series, and which are to be connected with a DC power source; a series resonant circuit, which includes a primary coil of a transformer having leakage inductance and a current resonant capacitor, and which is connected in parallel to one of the first switching element and the second switching element; a rectifying-and-smoothing circuit, which is connected to a secondary coil of the transformer, wherein an output voltage generated from the rectifying-and-smoothing circuit is to be supplied to a load by ON-OFF control of the first switching element and the second switching element; and a clamp circuit, which clamps a voltage between both ends of the current resonant capacitor to a predetermined voltage value, wherein, when an output current supplied from the rectifying-and-smoothing circuit to the load is higher than the predetermined current value, an output characteristic is set so that, as the output current is increased, the output voltage is decreased.
In addition to above-described resonant converter, the clamp circuit may include at least one of a first diode, which is connected between one end of the DC power source and one end of the current resonant capacitor, and a second diode, which is connected between the other end of the DC power source and the one end of the current resonant capacitor.
Above-described resonant converter may comprise a first capacitor, which is connected between the clamp circuit and the one end of the current resonant capacitor to adjust the output characteristic.
Above-described resonant converter may comprise a second capacitor, which is connected in series to the current resonant capacitor in the series resonant circuit to adjust the output characteristic.
Above-described resonant converter may comprise a first capacitor, which is connected between the clamp circuit and the one end of the current resonant capacitor; a second capacitor, which is connected in series to the current resonant capacitor in the series resonant circuit; and a third capacitor, which is connected in series to the DC power source via the current resonant capacitor, wherein the output characteristic is adjusted by the first capacitor, the second capacitor and the third capacitor.
A resonant converter of another aspect of this disclosure comprises: a first switching element and a second switching element, which are connected in series, and which are to be connected with a DC power source; a series resonant circuit, which includes a current resonant reactor, a primary coil of a transformer, and a current resonant capacitor, and which is connected in parallel to one of the first switching element and the second switching element, a rectifying-and-smoothing circuit, which is connected to a secondary coil of the transformer, wherein an output voltage generated from the rectifying-and-smoothing circuit is to be supplied to a load by ON-OFF control of the first switching element and the second switching element; and a clamp circuit which clamps a voltage between both ends of the current resonant capacitor to a predetermined voltage value, wherein, when an output current supplied from the rectifying-and-smoothing circuit to the load is higher than the predetermined current value, an output characteristic is set so that, as the output current is increased, the output voltage is decreased.
According to this disclosure, the resonant converter further includes the clamp circuit that clamps the voltage between both ends of the current resonant capacitor to the predetermined voltage value. Therefore, when the output current supplied from the rectifying-and-smoothing circuit to the load is higher than the predetermined current value, the output characteristic is set so that, as the output current is increased, the output voltage is decreased, thereby achieving an load regulation, which is suitable for an audio application.
The foregoing and additional features and characteristics of this disclosure will become more apparent from the following detailed descriptions considered with the reference to the accompanying drawings, wherein:
Embodiments of this disclosure will be described in detail with reference to the accompanying drawings.
In addition to a circuit configuration of the half-bridge type LLC resonant converter of the background art illustrated in
Referring to
The diode D2 is connected in a reverse direction between both ends of the current resonant capacitor Cri. That is, a cathode of the diode D2 is connected to the primary winding Np and a connection point of the current resonant capacitor Cri and the anode of the diode D1, and an anode of the diode D2 is connected to a connection point of a source electrode of a low-side switching element Q2 (second switching element) and the current resonant capacitor Cri.
If the resonant converter of the first embodiment is operated at a constant switching frequency and the switching element Q1 is ON, as illustrated in
As described above, since the voltage VCri between both ends of the current resonant capacitor Cri is clamped to the zero voltage, as illustrated by a line (A) in
As described above, the first embodiment is configured so that the voltage VCri between both ends of the current resonant capacitor Cri is clamped to the voltage Vin by the diode D1 and also the voltage VCri between both ends of the current resonant capacitor Cri is clamped to the zero voltage by the diode D2. When the output current Io is the predetermined or more, the output voltage Vo can be lowered, thereby effectively obtaining the load regulation suitable for an audio application.
Additionally, although both of the diode D1 and the diode D2 are provided as the clamp circuit in the first embodiment, only the diode D1 may be provided as the clamp circuit, as illustrated in
In addition to the configuration of the resonant converter of the first embodiment, a resonant converter of the second embodiment, as illustrated in
In the resonant converter of the second embodiment, the voltage VCri between both ends of the current resonant capacitor Cri is clamped by the diodes D1 and D2 configuring the clamp circuit via the output characteristic adjustment capacitor C1. That is, when the voltage VCri between both ends of the output characteristic adjustment capacitor C1 and the current resonant capacitor Cri, which are connected in series to each other, is increased and reaches the voltage Vin, the diode D1 is electrically conducted and then a composite voltage of the output characteristic adjustment capacitor C1 and the current resonant capacitor Cri, which are connected in series to each other, is clamped to the voltage Vin. In addition, when the voltage VCri between both ends of the output characteristic adjustment capacitor C1 and the current resonant capacitor Cri which are connected in series to each other is decreased and reaches the zero voltage, the diode D2 is electrically conducted. The voltage VCri between both ends of the output characteristic adjustment capacitor C1 and the current resonant capacitor Cri which are connected in series to each other is clamped to the zero voltage. Accordingly, in addition to the operation achieved by the first embodiment, the output characteristic (output current-output voltage characteristic) can be changed based on a ratio between the capacity of the output characteristic adjustment capacitor C1 and the capacity of the current resonant capacitor Cri. That is, the output characteristic is changed by changing the ratio between the capacity of the output characteristic adjustment capacitor C1 and the capacity of the current resonant capacitor Cri, as indicated by reference lines (D) to (F) in
As described above, the second embodiment includes the output characteristic adjustment capacitor C1 which is connected at one end thereof between the connection point of the primary winding Np of the transformer T and the current resonant capacitor Cri. Also, the composite voltage of the output characteristic adjustment capacitor C1 and the current resonant capacitor Cri, which are connected in series to each other, is clamped to the voltage Vin by the diode D1, and the voltage VCri between both ends of the output characteristic adjustment capacitor C1 and the current resonant capacitor Cri, which are connected in series to each other, is clamped to the zero voltage by the diode D2. Therefore, in addition to the effect achieved by the first embodiment, any output characteristic can be obtained by varying the capacities of the output characteristic adjustment capacitor C1 and the current resonant capacitor Cri, so that the load regulation suitable for the audio application is achieved.
In addition to the configuration of the resonant converter of the first embodiment, a resonant converter of the third embodiment, as described in
According to the resonant converter of the third embodiment, the output characteristic adjustment capacitor C2 is inserted in the series resonant circuit configured by the primary winding Np of the transformer T and the current resonant capacitor Cri, and the voltage VCri between both ends of current resonant capacitor Cri is clamped by the diodes D1 and D2 configuring the clamp circuit. Accordingly, the output characteristic can be changed based on a ratio between the capacity of the output characteristic adjustment capacitor C2 and the capacity of the current resonant capacitor Cri. That is, the output characteristic is changed by changing the ratio between the capacity of the output characteristic adjustment capacitor C2, which is inserted in the series resonant circuit, and the capacity of the current resonant capacitor Cri, as indicated by lines (G) to (K) in
As described above, the third embodiment includes the output characteristic adjustment capacitor C2, which is connected between the primary winding Np of the transformer T and the current resonant capacitor Cri. Therefore, in addition to the effect achieved by the first embodiment, any output characteristic can be obtained by varying the capacities of the output characteristic adjustment capacitor C2 and the current resonant capacitor Cri, thereby achieving the effect of obtaining the load regulation suitable for the audio application.
Meanwhile, both the output characteristic adjustment capacitors C1 and C2 may be provided by combining the second and third embodiments.
In addition, as illustrated in
Although an example of employing a full-wave rectification circuit as a secondary rectification manner is described in this embodiment, for example, a half-wave rectification circuit or a bridge rectification circuit may be employed.
Although the series resonant circuit is configured to be connected in series to the low-side switching element Q2 in this embodiment, the series resonant circuit may be configured to be connected to in parallel to the high-side switching element Q1.
Also, in this embodiment, the transformer T is a loosely-coupled transformer (leakage flux transformer), and Lr in
Although the clamp circuit that clamps the voltage VCri between both ends of the current resonant capacitor Cri to the voltage Vin or zero voltage is provided in this embodiment, a clamp circuit that clamps the voltage to other voltage supply source, which is different from the DC power source Vin, may be provided.
It will be apparent that this disclosure is not limited to the above embodiments, but each embodiment can be appropriately modified or changed without departing from the scope of this disclosure. Further, the number, the position, the shape, or the like of the constitutional components is not limited to that of the embodiments, and any number, a position, a shape, or the like suitable for carrying out this disclosure can be selected. In this disclosure, a similar component in respective embodiments is referred by the similar symbol.
Number | Date | Country | Kind |
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2011-156319 | Jul 2011 | JP | national |