1. Field of the Invention
The present invention relates to transformers, and particularly to a transformer with an adjustable leakage inductance.
2. Description of Related Art
In an electronic device, one or more transformers are used for converting a received power signal to an appropriate signal to ensure the electronic device to work normally. Generally, each transformer has leakage inductance more or less due to a primary winding not fully coupling to the secondary winding. Therefore, on one hand, it is needed to decrease the leakage inductance to save energy to increase conversion efficiency of the transformer. On the other hand, the leakage inductance can be used to meet resonance requirements. Thus, how to balance the need for saving energy and obtain suitable leakage inductance of the transformer to meet electromagnetic requirements to gain a good resonance is an important point.
A cross sectional view of another conventional transformer 200 is shown in
Therefore, the conventional transformer 100 has less leakage inductance, but does not achieve a very good resonance response, and the conventional transformer 200 has a greater leakage inductance, but lower efficiency. In addition, the leakage inductances of the transformer 100 and 200 are fixed, so no fine-tuning can be accomplished to suit needs. One solution for changing the leakage inductance is changing the coiling structure, which is inconvenient.
One aspect of the present invention provides a transformer with an adjustable leakage inductance, which includes a first bobbin, a first winding, and a second winding. The first bobbin includes a first region and a second region. The second winding includes a first coil portion and a second coil portion. One of the first winding and the first coil portion of the second winding is wound around the first region of the first bobbin, and the other of the first winding and the first coil portion of the second winding is wound outside of the one wound around the first region of the first bobbin. The second coil portion of the second winding is wound around the second region of the first bobbin.
Another aspect of the present invention provides a driving device for driving a light source module comprising a plurality of light sources. The driving device includes a converter circuit, a driving switch circuit, a transformer circuit, and a PWM controller. The converter circuit converts a received power signal to a direct current signal. The driving switch circuit is connected to the converter circuit, for converting the direct current signal to an alternating current signal. The transformer circuit is connected between the driving switch circuit and the light source module, for converting the alternating current signal to an appropriate alternating current signal, and includes a transformer with an adjustable leakage inductance. The transformer includes a first bobbin, a first winding, and a second winding. The first bobbin includes a first region and a second region. The second winding includes a first coil portion and a second coil portion. One of the first winding and the first coil portion of the second winding is wound around the first region of the first bobbin, and the other of the first winding and the first coil portion of the second winding is wound outside of the one wound around the first region of the first bobbin. The second coil portion of the second winding is wound around the second region of the first bobbin. The PWM controller is connected to the driving switch circuit, for controlling the alternating current signal output from the driving switch.
Other advantages and novel features will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings, in which:
a is an isometric, disassembled view of a transformer with an adjustable leakage inductance in accordance with a first embodiment of the present invention;
b is a cross-sectional view along a line Vb-Vb of
a is an isometric, disassembled view of a transformer with an adjustable leakage inductance in accordance with a second embodiment of the present invention;
b is a cross-sectional view along line VIb-VIb of
c is a cross-sectional view along line VIb-VIb of
d is a partially enlarged view along VId of
a is an isometric, disassembled view of a transformer with an adjustable leakage inductance in accordance with a third embodiment of the present invention;
b is a cross-sectional view along line VIIb-VIIb of
a is an isometric, disassembled view of a transformer with an adjustable leakage inductance in accordance with a fourth embodiment of the present invention;
b is a cross-sectional view along line VIIIb-VIIIb of
a, 7b, and 7c are elevational views of a core assembly of transformer with an adjustable leakage inductance in accordance with the present invention;
The converter circuit 30 converts a received power signal to a direct current (DC) signal. The driving switch circuit 31 is connected to the converter circuit 30, and is used for converting the DC signal to an alternating current (AC) signal. The transformer circuit 32 is connected between the driving switch circuit 31 and the light source module 33, for converting the AC signal to an appropriate AC signal to drive the light source module 33. In the exemplary embodiment, the AC signal output from the driving switch circuit 31 is a rectangular-wave signal, and the AC signal output from the transformer circuit 32 is a sine-wave signal. The feedback circuit 34 is connected between the light source module 33 and the PWM controller 35, for feeding back current flowing through the light source module 33 to the PWM controller 35. The PWM controller 35 is connected between the feedback circuit 34 and the driving switch circuit 31, for controlling the AC signal output from the driving switch circuit 31.
a shows an isometric, disassembled view of a transformer 50 with an adjustable leakage inductance in accordance with a first embodiment of the present invention, and
In the exemplary embodiment, the bobbin 525 has a hollow portion 525a, a first base 525b, and a second base 525c. The first base 525b is near the first region B1 of the bobbin 525, and the second base 525c is near the second region B2 of the bobbin 525. In addition, a plurality of pins 529 are respectively disposed at the first base 525b and the second base 525c, for electrically connecting the transformer 50 to a circuit board (not shown). In the exemplary embodiment, the isolating wall 524b is at the same side as the first base 525b, and the isolating wall 524c is at the same side as the second base 525c. Thicknesses of the isolating wall 524b and the isolating wall 524c are larger than that of the isolating wall 524a, which enhance a rigidity of the transformer 50. Similarly, a thickness of the isolating wall 524a is also larger than that of the other isolating walls 524 (except the isolating wall 524b and the isolating wall 524c), which can enhance voltage tolerances of the transformer 50.
The core assembly 527 includes a first core 527a and a second core 527b. The first core 527a and the second core 527b are inserted into the hollow portion 525a of the bobbin 525, for forming magnetic loops. In the exemplary embodiment, the core assembly 527 includes two E-shaped cores made of highly conductive magnetic materials.
Referring to
The transformer 50 further includes at least a pair of margin tapes 528 wound around the insulating layer 523. In the exemplary embodiment, the margin tapes 528 are also insulating tapes. Due to the margin tapes 528, a length of a coiling region of the first coil portion 522a is shorter than that of the first winding 521. In this way, the voltage tolerance of the transformer 525 is increased. The second region B2 of the bobbin 525 is divided into a plurality of coiling regions by the isolating walls 524. Thus, arcing does not occur when high voltages are present on the second coil portion 522b of the second winding 522, and a voltage tolerance capability of the second coil portion 522b of the second winding 522 is increased.
In the exemplary embodiment, the second coil portion 522b of the second winding 522 and the first winding 521 are disposed in a side-by-side structure, the first coil portion 522a of the second winding 522 and the first winding 521 are disposed in a layered structure. That is, the transformer 50 comprises the side-by-side structure and the layered structure. In the side-by-side structure, the magnetic field of the first winding 521 is not fully coupled to the second coil portion 522b of the second winding 522. Thus, a larger leakage inductance is generated, for example: 10 mH. While in the layered structure, the magnetic field of first winding 521 is fully coupled to the first coil portion 522a of the second winding 522. Thus, a smaller leakage inductance is generated, for example: 2 mH. Consequently, the leakage inductance of the transformer 50 in accordance with the present invention is between 2 mH and 10 mH.
In the exemplary embodiment, the number of coils of the first coil portion 522a and the second coil portion 522b of the second winding 522 is adjustable, thus, the leakage inductance of the transformer 50 is also adjustable.
When the number of coils of the first winding 521 is fixed, and the total number of coils of the first coil portion 522a and the second coil portion 522b of the second winding 522 are also fixed, if the number of coils of the second coil portion 522b of the second winding 522 is greater than that of the first coil portion 522a of the second winding 522, the leakage inductances of the side-by-side structure and the layered structure are increased. Thus, the leakage inductance of the transformer 50 is also increased. Coils may be left off the first coil portion 522a of the second winding 522 to obtain a conventional side-by-side structure only.
Contrarily, if the number of coils of the second coil portion 522b of the second winding 522 is less than that of the first coil portion 522a, the leakage inductances of the side-by-side structure and the layered structure are decreased. Thus, the leakage inductance of the transformer 50 is also decreased. Coils may be left off the second coil portion 522b to obtain a conventional layered structure.
In the exemplary embodiment, the first winding 521 wound around the first region B1 of the bobbin 525 is a primary winding, which is connected to the driving switch circuit 31 or 41 shown in
a shows an isometric, disassembled view of a transformer 60 with an adjustable leakage inductance in accordance with a second embodiment of the present invention. The transformer 60 has a similar structure to that of the transformer 50 shown in
b and
In the exemplary embodiment, when the second bobbin 626 is near to the isolating wall 624a as shown in
Contrarily, when the second bobbin 626 is far from the isolating wall 624a as shown in
Consequently, even though the number of coils of the first winding 621 and the second winding 622 of the transformer 60 are fixed, the coupling ratio between the first coil portion 622a of the second winding 622 and the first winding 621 is adjustable via adjusting the position of the second bobbin 626 along the axis of the first bobbin 625, thereby adjusting the leakage inductance of the transformer 60.
d shows a partially enlarged view along VId of
a shows an isometric, disassembled view of a transformer 70 with an adjustable leakage inductance in accordance with a third embodiment of the present invention, and
a shows an isometric, disassembled view of a transformer 80 with an adjustable leakage inductance in accordance with a fourth embodiment of the present invention, and
Similarly, in the exemplary embodiment, leakage inductance of the transformer 80 is adjusted through positioning of the movable second bobbin 826.
a shows an elevational view of a core assembly as used for core assemblies 527, 627, 727, and 827 of transformers 50, 60, 70, and 80 in accordance with the present invention. The core assembly, in accordance with the present invention, can be EE shaped 927a. In alternative exemplary embodiments, the core assembly can be UU shaped 927b or UI shaped 927c as depicted
While various embodiments and methods of the present invention have been described above, it should be understood that they have been presented by way of example only and not by way of limitation. Thus the breadth and scope of the present invention should not be limited by the above-described exemplary embodiments, but should be defined only in accordance with the following claims and their equivalent.
Number | Date | Country | Kind |
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95109255 | Mar 2006 | TW | national |
This application is a divisional application of co-pending application Ser. No. 11/616,865, filed Dec. 28, 2006.
Number | Date | Country | |
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Parent | 11616865 | Dec 2006 | US |
Child | 12686519 | US |