1. Field of the Invention
The present invention relates to a resonant DC converter which has an integrated soft-switching technology with high voltage conversion. More particularly, the present invention relates to a resonant DC converter which integrates a transformer, combines a voltage type auto charge pump circuit with a full-bridge or half-bridge resonant DC conversion circuit at a primary side of the transformer, grants the circuit of the invention with characteristics of variable circuit architecture while achieving the effect of soft switching by the design of circuit parameters and the action of the LC resonant circuit, and controls the operation of the circuit at boost or buck mode by adjusting the circuit parameters.
2. Description of Related Art
In general, a conventional half-bridge resonant DC converter is usually used in step-down applications. As shown in
A currently available half-bridge resonant DC converter usually achieves the purpose of reducing the cost of components and the volume of the converter by means of increasing the switching frequency to cut down the capacitance value and a magnetic element's volume in order to increase the power density of the DC converter. However, while enhancing the switching frequency of the conversion circuit, switching loss of switching elements increases accordingly. Problems such as electric magnetic interruption (EMI) occur as well. Therefore, the conventional converter circuit cannot meet the need for users in actual use any more.
A main purpose of this invention is to overcome the shortcomings of conventional technology, and provide a resonant DC converter which has an integrated soft-switching technology with high voltage conversion. The converter of this invention integrates a transformer, and combines a voltage type auto charge pump circuit with a full-bridge or half-bridge resonant DC conversion circuit at a primary side of the transformer. The design of circuit parameters and the action of the LC resonant circuit make the circuit have the characteristics of variable circuit architecture, and achieve the effect of soft switching. The operation of the circuit of the invention at boost or buck mode can be controlled by adjusting the circuit parameters.
It is another purpose of this invention to provide a resonant DC converter which combines a double-voltage rectifier circuit at a secondary side of a transformer to further enhance the output voltage conversion ratio and reduce the output voltage ripple, and further integrate the switching elements of the converter circuit with the use characteristics of automatically changing the circuit architecture so as to reduce the switching losses and increase circuit conversion efficiency of the converter circuit.
It is still purpose of the invention to provide a resonant DC converter having low output voltage ripple and able to avoid using large-capacitance electrolytic capacitors and to extend the service life of the transformer, so as to achieve high power density, high voltage conversion ratio, low costs, low electric magnetic interruption (EMI), low output voltage ripple, long service life and high conversion efficiency.
In order to achieve the above and other objectives, a half-bridge resonant DC converter of the invention is used to convert a DC input voltage into a DC output voltage in order to provide a load with power supply. In one embodiment of the invention, the resonant DC converter includes:
In one embodiment, the secondary side of the transformer is coupled with the rear-end conversion circuit which is a full-bridge rectifier circuit constituted by four diodes and a capacitor.
In one embodiment, the secondary side of the transformer is coupled with the rear-end conversion circuit which is a double-voltage rectifier circuit constituted by two diodes and two capacitors.
In one embodiment, the transformer is a multi-winding transformer, and the secondary side of the transformer is coupled with the rear-end conversion circuit which is a rectifier circuit constituted by two diodes and one capacitor.
In one embodiment, the transformer is a multi-winding transformer, and the secondary side of the transformer is coupled with the rear-end conversion circuit which is a triple-voltage rectifier circuit constituted by four diodes and three capacitors.
In one embodiment, the transformer is a multi-winding transformer, and the secondary side of the transformer is coupled with the rear-end conversion circuit which is a four times-voltage rectifier circuit constituted by four diodes and four capacitors.
In one embodiment, the transformer is a multi-winding transformer, and the secondary side of the transformer is coupled with the rear-end conversion circuit which is a five times-voltage rectifier circuit constituted by six diodes and five capacitors.
In one embodiment, the transformer is a multi-winding transformer, and the secondary side of the transformer is coupled with the rear-end conversion circuit which is a six times-voltage rectifier circuit constituted by six diodes and six capacitors.
In one embodiment, a full-bridge resonant DC converter, used to convert a DC input voltage into a DC output voltage in order to provide a load with power supply. The full-bridge resonant DC converter includes:
In one embodiment, the secondary side of the transformer is coupled with the rear-end conversion circuit which is a full-bridge rectifier circuit constituted by four diodes and a capacitor.
In one embodiment, the secondary side of the transformer is coupled with the rear-end conversion circuit which is a double-voltage rectifier circuit constituted by two diodes and two capacitors.
In one embodiment, the transformer is a multi-winding transformer, and the secondary side of the transformer is coupled with the rear-end conversion circuit which is a rectifier circuit constituted by two diodes and one capacitor.
In one embodiment, the transformer is a multi-winding transformer, and the secondary side of the transformer is coupled with the rear-end conversion circuit which is a triple-voltage rectifier circuit constituted by four diodes and three capacitors.
In one embodiment, the transformer is a multi-winding transformer, and the secondary side of the transformer is coupled with the rear-end conversion circuit which is a four times-voltage rectifier circuit constituted by four diodes and four capacitors.
In one embodiment, the transformer is a multi-winding transformer, and the secondary side of the transformer is coupled with the rear-end conversion circuit which is a five times-voltage rectifier circuit constituted by six diodes and five capacitors.
In one embodiment, the transformer is a multi-winding transformer, and the secondary side of the transformer is coupled with the rear-end conversion circuit which is a six times-voltage rectifier circuit constituted by six diodes and six capacitor.
The aforementioned illustrations and following detailed descriptions are exemplary for the purpose of further explaining the scope of the present invention. Other objectives and advantages related to the present invention will be illustrated in the subsequent descriptions and appended tables.
The front-end conversion circuit 1 includes a half-bridge resonant DC conversion circuit 11 and a voltage-type auto charge pump circuit 12. The half-bridge resonant conversion circuit 11 is provided with a positive voltage terminal and a negative voltage terminal at an input side respectively coupling a first active switching element S1 and a second active switching element S2 to a positive voltage terminal of a first inductor L1. The positive voltage terminal of the first inductor L1 is coupled to one common node between the first active switching element S1 and the second active switching element S2. A negative voltage terminal of the first inductor L1 is coupled in series to a semi-resonant circuit of the voltage-type auto charge pump circuit 12. The semi-resonant circuit contains a second inductor L2 and a capacitor C1 coupled with the second inductor L2 in parallel. The voltage-type auto charge pump circuit further includes a second capacitor C2 coupled in series to the semi-resonant circuit.
A primary side of the transformer 2 or 2a is coupled to the front-end conversion circuit 1, and is coupled with the second capacitor C2 in parallel. A secondary side of the transformer 2 or 2a is coupled to a rear-end conversion circuit which is electrically coupled with the front-end conversion circuit 1 through the transformer 2 or 2a. In this way, a new half-bridge resonant DC converter is accomplished.
The secondary side of the above transformer 2 is coupled with the rear-end conversion circuit which is a full-bridge rectifier circuit 3a constituted by four diodes D1, D2, D3, D4 and a capacitor C0, as shown in
The secondary side of the above transformer 2 is coupled with the rear-end conversion circuit which is a double-voltage rectifier circuit 3b constituted by two diodes D1, D2 and two capacitors C3, C4, as shown in
The above transformer is a multi-winding transformer 2a and the secondary side thereof is coupled with the rear-end conversion circuit which is a rectifier circuit 3c constituted by two diodes D1, D2 and a capacitor C0, as shown in
The above transformer is a multi-winding transformer 2a and the secondary side thereof is coupled with the rear-end conversion circuit which is a triple-voltage rectifier circuit 3d constituted by four diodes D1, D2, D3, D4 and three capacitors C01, C02, C03, as shown in
The above transformer is a multi-winding transformer 2a and the secondary side thereof is coupled with the rear-end conversion circuit which is a four times-voltage rectifier circuit 3e constituted by four diodes D1, D2, D3, D4 and four capacitors C01, C02, C03, C04, as shown in
The above transformer is a multi-winding transformer 2a and the secondary side thereof is coupled with the rear-end conversion circuit which is a five times-voltage rectifier circuit 3f constituted by six diodes D1, D2, D3, D4, D5, D6 and five capacitors CA, C01, C02, C03, CB, as shown in
The above transformer is a multi-winding transformer 2a and the secondary side thereof is coupled with the rear-end conversion circuit which is a six times-voltage rectifier circuit 3g constituted by six diodes D1, D2, D3, D4, D5, D6 and six capacitors CA, C01, C02, C03, C04, CB, as shown in
The front-end conversion circuit 1a includes a full-bridge resonant DC conversion circuit 11a and a voltage-type auto charge pump circuit 12a. The full-bridge resonant conversion circuit 11 is provided with a positive voltage terminal at an input side in coupling with a first active switching element S1 and a second active switching element S2 in parallel, and a negative voltage terminal at the input side in coupling with a third active switching element S3 and a fourth active switching element S4 in parallel. The first active switching element S1 and the third active switching element S3 are coupled in series with a positive voltage terminal of a first inductor L1. The positive voltage terminal of the first inductor L1 is coupled with one common node between the first active switching element S1 and the third active switching element S3. A negative voltage terminal of the first inductor L1 is coupled in series to a semi-resonant circuit of the voltage-type auto charge pump circuit 12a. The semi-resonant circuit contains a second inductor L2 and a capacitor C1 coupled with the second inductor L2 in parallel. The voltage-type auto charge pump circuit further includes a second capacitor C2 coupled in series with the semi-resonant circuit. The second capacitor C2 is coupled with one common node between the second active switching element S2 and the fourth active switching element S4.
The primary side of the transformer 2 or 2a is coupled to the front-end conversion circuit 1a, and is coupled with the second capacitor C2 in parallel. The secondary side of the transformer 2 or 2a is coupled to a rear-end conversion circuit which is electrically coupled with the front-end conversion circuit 1a through the transformer 2 or 2a. In this way, a new full-bridge resonant DC converter is accomplished.
The secondary side of the above transformer 2 is coupled with the rear-end conversion circuit which is a full-bridge rectifier circuit 3a constituted by four diodes D1, D2, D3, D4 and a capacitor C0, as shown in
The secondary side of the above transformer 2 is coupled with the rear-end conversion circuit which is a double-voltage rectifier circuit 3b constituted by two diodes D1, D2, and two capacitors C3, C4, as shown in
The above transformer is a multi-winding transformer 2a and the secondary side thereof is coupled with the rear-end conversion circuit which is a rectifier circuit 3c constituted by two diodes D1, D2 and a capacitor C0, as shown in
The above transformer is a multi-winding transformer 2a and the secondary side thereof is coupled with the rear-end conversion circuit which is a triple-voltage rectifier circuit 3d constituted by four diodes D1, D2, D3, D4 and three capacitors C01, C02, C03, as shown in
The above transformer is a multi-winding transformer 2a and the secondary side thereof is coupled with the rear-end conversion circuit which is a four times-voltage rectifier circuit 3e constituted by four diodes D1, D2, D3, D4 and four capacitors C01, C02, C03, C04, as shown in
The above transformer is a multi-winding transformer 2a and the secondary side thereof is coupled with the rear-end conversion circuit which is a five times-voltage rectifier circuit 3f constituted by six diodes D1, D2, D3, D4, D5, D6 and five capacitors CA, C01, C02, C03, CB, as shown in
The above transformer is a multi-winding transformer 2a and the secondary side thereof is coupled with the rear-end conversion circuit which is a six times-voltage rectifier circuit 3g constituted by six diodes D1, D2, D3, D4, D5, D6 and six capacitors CA, C01, C02, C03, C04, CB, as shown in
In the embodiment of the invention which is exemplified by the half-bridge resonant DC converter circuit with the reference to
The circuit of the invention can control the operation mode of the circuit by adjusting the circuit parameters. The following description is based on the half-bridge resonant DC converter circuit of
Refer to
[Working Mode 2]
Refer to
[Working Mode 3]
Refer to
[Work Mode 4]
Refer to
From the simulation results of
Thereby, the resonant DC converter circuit of the present invention can improve the power density of the converter and reduce the costs by means of increasing the switching frequency and reducing the volume of magnetic components. In cooperation with the full-bridge or half-bridge resonant DC conversion circuit according to the invention, the integrated transformer, the double-voltage rectifier circuit and the voltage type auto charge pump circuit can partially separate the inductance of the first inductor L1 of the resonant element in the circuit as the resonant inductor L2, and constitute the L2C1 resonant circuit by coupling the second inductor L2 with the first capacitor C1 in parallel. The circuit architectures are shown in
In summary, the present invention relates to a resonant DC converter which has integrated soft-switching technology with high voltage conversion and can effectively improve the shortcomings of conventional technology. This invention integrates the transformer, the double-voltage rectifier circuit and the voltage type auto charge pump circuit with the full-bridge or half-bridge resonant DC conversion circuit. The design of circuit parameters and the action of the LC resonant circuit make the circuit have the characteristics of variable circuit architecture, and achieve the effect of soft switching, low output voltage ripple and high voltage conversion ratio. It helps to avoid using large-capacitance electrolytic capacitors and be able to extend the service life of the transformer, so as to achieve high power density, high voltage conversion ratio, low costs, low electric magnetic interruption (EMI), low output voltage ripple, long service life and high conversion efficiency. The operation of the circuit of the invention at boost or buck mode can be controlled by adjusting the circuit parameters. This makes the invention more progressive and more practical in use which complies with the patent law.
The descriptions illustrated supra set forth simply the preferred embodiments of the present invention; however, the characteristics of the present invention are by no means restricted thereto. All changes, alternations, or modifications conveniently considered by those skilled in the art are deemed to be encompassed within the scope of the present invention delineated by the following claims.
Number | Date | Country | Kind |
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101139382 | Oct 2012 | TW | national |