The invention will become more fully understood from the detailed description given herein below illustration only, and thus is not limitative of the present invention, and wherein:
The present invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
Referring to
The first transformer T1 is electrically connected to the first self-excitation switching circuit 21 and has a first resonance winding WR1, a switching-control winding WS1, a first synchronous switching-control winding WSS1 and a first output winding WO1. The first output winding WO1 is coupled to the first resonance winding WR1, the switching-control winding WS1 and the first synchronous switching-control winding WSS1. The first synchronous switching-control winding WSS1 is electrically connected to the second self-excitation switching circuit 22, and the first output winding WO1 is electrically connected to a first load 23.
The second transformer T2 is electrically connected to the second self-excitation switching circuit 22 and has a second resonance winding WR2, a second synchronous switching-control winding WSS2 and a third output winding WO3. The third output winding WO3 is coupled to the second resonance winding WR2 and the second synchronous switching-control winding WSS2. The third output winding WO3 is electrically connected to a third load 24.
In this embodiment, each of the first load 23 and the third load 24 includes a CCFL or other loads that are driven by an AC power.
Referring to
In addition, each of the first switch element Q1 and the second switch element Q2 includes, for example but not limited to, a bipolar transistor or a field effect transistor in this embodiment. If the first switch element Q1 and the second switch element Q2 are bipolar transistors, the switching-control winding WS1 of the first transformer T1 is electrically connected to bases of the bipolar transistors to control on/off states of the bipolar transistors. If the first switch element Q1 and the second switch element Q2 are field effect transistors, the switching-control winding WS1 of the first transformer T1 is electrically connected to gates of the field effect transistors to control on/off states of the field effect transistors.
The second self-excitation switching circuit 22 includes a second capacitor C2 and a second switch set SW2. The second capacitor C2 is electrically connected to the second switch set SW2, and is electrically connected to the second resonance winding WR2 of the second transformer T2 in parallel. In this embodiment, the second switch set SW2 has a third switch element Q3 and a fourth switch element Q4, which are electrically connected to a first terminal and a second terminal of the second capacitor C2, respectively. The third switch element Q3 and a fourth switch element Q4 are electrically connected to the first synchronous switching-control winding WSS1 of the first transformer T1 to control the third switch element Q3 and the fourth switch element Q4, respectively. The types and functions of the third switch element Q3 and the fourth switch element Q4 are the same as those of the first switch element Q1 and the second switch element Q2, so detailed descriptions thereof will be omitted. Because the frequency induced by the first synchronous switching-control winding WSS1 is the same as that induced by the switching-control winding WS1 it is possible to ensure the self-excitation system 2A to have the synchronous working frequency.
In addition, the self-excitation system 2A of this embodiment further includes a power supply circuit 25, which provides a power PS to the first resonance winding WR1 of the first transformer T1 and the second resonance winding WR2 of the second transformer T2. In addition, the power PS is a DC voltage in this embodiment.
Furthermore, the first self-excitation switching circuit 21 of this embodiment further includes a first resistor R1 and a second resistor R2, and the second self-excitation switching circuit 22 further includes a third resistor R3 and a fourth resistor R4. The first resistor R1 and the second resistor R2 are electrically connected to and between the power supply circuit 25 and the first switch set SW1, and the third resistor R3 and the fourth resistor R4 are electrically connected to and between the power supply circuit 25 and the second switch set SW2. It is to be noted that the first resistor R1, the second resistor R2, the third resistor R3 and the fourth resistor R4 are equivalent elements, and may be composed of a plurality of resistors depending on the actual requirement of the self-excitation switching circuit.
In detail, one terminal of the first resistor R1 is electrically connected to the power supply circuit 25 and the first resonance winding WR1 of the first transformer T1, and the other terminal of the first resistor R1 is electrically connected to the first switch element Q1 of the first switch set SW1 and the switching-control winding WS1 of the first transformer T1. One terminal of the second resistor R2 is electrically connected to the power supply circuit 25 and the first resonance winding WR1 of the first transformer T1, and the other terminal is electrically connected to the second switch element Q2 of the first switch set SW1 and the switching-control winding WS1 of the first transformer T1. One terminal of the third resistor R3 is electrically connected to the power supply circuit 25 and the second resonance winding WR2 of the second transformer T2 and the other terminal of the third resistor R3 is electrically connected to the third switch element Q3 of the second switch set SW2 and the first synchronous switching-control winding WSS1 of the first transformer T1. One terminal of the fourth resistor R4 is electrically connected to the power supply circuit 25 and the second resonance winding WR2 of the second transformer T2, and the other terminal is electrically connected to the fourth switch element Q4 of the second switch set SW2 and the first synchronous switching-control winding WSS1 of the first transformer T1.
In this embodiment, each of the first load 23 and the third load 24 is the CCFL, so a first regulating capacitor CY1 can be connected to and between the first output winding WO1 of the first transformer T1 and the first load 23 in series, and a third regulating capacitor CY3 can be connected to and between the third output winding WO3 of the second transformer T2 and the third load 24 in series. Thus, the DC component of the signals in the first output winding WO1 of the first transformer T1 can be isolated and the signals for driving the loads can become more stable.
It is to be noted that the second synchronous switching-control winding WSS2 of the second transformer T2 can be electrically connected to a third self-excitation switching circuit (not shown) in a next stage so that the working frequency thereof can be in synchronizing with the working frequency of the first self-excitation switching circuit 21 and the second self-excitation switching circuit 22.
As shown in
In summary, the self-excitation system of the invention utilizes the resonance between the first resonance winding of the first transformer and the first capacitor of the self-excitation switching circuit to generate the frequency, and the frequency is induced to the switching-control winding and the synchronous switching-control winding to respectively control on/off operations of the switch sets. Thus, the system can have the synchronous working frequencies, and the situation of the asynchronous frequencies caused by the component parameter errors (component mismatch errors) can be avoided.
Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the scope of the invention.
Number | Date | Country | Kind |
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095138044 | Oct 2006 | TW | national |