The present application claims priority under 35 U.S.C. ยง119 to Chinese Patent Application No. 201110393371.7, filed on Dec. 1, 2011 and Chinese Patent Application No. 201210435332.3, filed on Nov. 2, 2012, the entire contents of which are incorporated herein by reference.
The present application relates to a transformer conductive structure and a transformer, and particularly to a transformer conductive structure and a transformer for effectively reducing the output path from the transformer to the circuit board and reducing the AC and DC loss.
Today, as power supply has developed towards the direction of high power density, high efficiency and low cost, the design of magnetic devices becomes more and more important, in which the design of power transformer is often the key.
For example, in the integral structure of a conventional DC/DC (Direct Current/Direct Current) converter shown in
As shown in
The object of the present application is to provide a transformer conductive structure and a transformer, which can effectively reduce the output path of the transformer, the AC and DC loss and the volume of the transformer device, so as to increase the power density and efficiency of power supply.
The above object of the present application is achieved by the following technical solution.
In one aspect, a transformer conductive structure comprises a primary coiling, a printed circuit board, and a secondary coiling unit comprising a plurality of conductive sheets; each conductive sheet comprises an annular body and an output terminal arranged at the edge of the annular body and protruded to the outside; the annular body of the conductive sheet and the primary coiling are coiled together; the output terminals of the conductive sheets directly clamps on the printed circuit board.
The output terminal of the conductive sheet directly clamps on the printed circuit board and is fixed by welding.
Preferably, the output terminal of the conductive sheet comprises a first end and a second end; the first end and the second end are arranged in parallel and opposite to each other up and down.
Both the first end and the second end comprise neck parts and insertion sheet parts.
A plurality of slots which match with the output terminals are arranged on the printed circuit board.
The slots directly clamp the output terminals to fix and conduct the conductive sheets and the printed circuit board directly.
Preferably, the neck part of the first end comprises a transversely folding part the width of which is greater than the width of the slot.
When the output terminal clamps the slot, after the insertion sheet part has passed through the slot, the transversely folding part clamps at the outside of the slot to limit the clamping position of the output terminal.
Preferably, the output terminal and the slot are further fixed by welding after being fixed by clamping.
After the output terminal and the slot being fixed by clamping, the welding is performed at the clamping position where the output terminal and the slot have been clamped such that the conductive sheet is fixed on the printed circuit board.
Preferably, the annular body of the conductive sheet comprises one circle or multi-circle annular metal conductor.
Preferably, two adjacent circles of annular bodies of the conductive sheet therebetween are provided with an insulation layer.
Preferably, the conductive sheet is copper sheet or other metal conductive sheet.
Preferably, the conductive sheets and the primary coiling are coiled together in staggered arrangement.
Preferably, the insertion sheet part is provided with a heat aggregation hole which is near the clamping position where the output terminal and the slot clamp.
Preferably, a rectifying unit and a filtering unit are arranged on the printed circuit board.
The filtering unit comprises a filtering inductance and a filtering capacitance.
The rectifying unit is a patch type rectifying element.
Preferably, copper sheets are attached on the printed circuit board.
Preferably, heat dissipation device is assembled on the rectifying element of the rectifying unit.
Preferably, the printed circuit board is a two-layer or multilayer circuit board.
Preferably, the filtering inductance is configured that a winding of the filtering inductance is a built-in winding of the printed circuit board, the built-in winding being formed by a conductor wiring of the printed circuit board.
The built-in winding of the printed circuit board is formed by patterning one layer or more layers of copper foil of the printed circuit board.
A metal conductor is additionally welded on the conductor wiring of the printed circuit board.
The filtering inductance further comprises a coating magnetic core which is sleeved on the built-in winding of the printed circuit board.
The coating magnetic core is one of a UI type magnetic core, a UU type magnetic core, an EI type magnetic core, an EE type magnetic core, a PQ magnetic core and a single closed magnetic ring.
To achieve the object of the present application, in another aspect a transformer is provided, which is used for connecting with a printed circuit board and comprises a primary coiling and a secondary coiling unit comprising a plurality of conductive sheets; each conductive sheet comprises an annular body and an output terminal arranged at the edge of the annular body and protruded to the outside; the annular body of the conductive sheet and the primary coiling are coiled together; the output terminal of the conductive sheet directly clamps on the printed circuit board.
Preferably, a neck part of the first end comprises a transversely folding part the width of which is greater than the width of a slot.
When the output terminal clamps the slot, after an insertion sheet part has passed through the slot, the transversely folding part clamps at the outside of the slot to limit the clamping position of the output terminal.
Preferably, the output terminal and the slot are further fixed by welding after being fixed by clamping.
After the output terminal and the slot being fixed by clamping, the welding is performed at the clamping position where the output terminal and the slot have been clamped such that the conductive sheet is fixed on the printed circuit board.
Preferably, the annular body of the conductive sheet comprises one circle or multi-circle annular metal conductor.
Preferably, two adjacent circles of annular bodies of the conductive sheet therebetween are provided with an insulation layer.
Preferably, the conductive sheet is copper sheet or other metal conductive sheet.
Preferably, the primary coiling is a single core metal conducting wire or a multi-core metal conducting wire.
The conductive sheets and the primary coiling are in staggered arrangement.
Preferably, the transformer of the present application further comprising a magnetic core set and a plurality of coiling racks; the magnetic core set is provided with a protruding end and the coiling rack is circular; the coiling rack is provided with coiling groove in which the primary coiling winds; and the coiling racks wound with the primary coiling are sleeved on the protruding end of the magnetic core set.
The insulation layer cover the whole annular body of the conductive sheet; the conductive sheet is sleeved on the protruding end of the magnetic core set with the annular body thereof and is sandwiched between every two coiling racks to lead the conductive sheets and the primary coiling in staggered arrangement.
Preferably, the transformer of the present application, further comprising a coiling base, which includes a coiling cylinder the interior of which is a through passage; and the protruding end of the magnetic core set is penetrated into the through passage.
The coiling racks wound with the primary coiling are sleeved on the coiling cylinder; the conductive sheets are sleeved on the coiling cylinder by the annular bodies thereof, and the conductive sheet is sandwiched between every two coiling racks to lead the conductive sheet and the primary coiling in staggered arrangement.
Preferably, a positioning slot is further arranged on the inner circumference of the annular body of the conductive sheet of the transformer, and a positioning strip is arranged on the outer circumference of the coiling cylinder.
When the annular body is sandwiched and sleeved in the coiling groove, the positioning slot is matched with the positioning strip.
Preferably, the outline dimension of the conductive sheet is designed according to the operating frequency, the output power and the specific structure of the magnetic core set of the transformer.
The advantageous effects of the present application are in part that the transformer conductive structure and the transformer of the present application increase the space utilization rate of the printed circuit board and shorten the distance from the lead of the secondary side of the transformer to the output rectifying unit and filtering unit, thereby reduce the AC and DC loss and the volume of the transformer device, increase the power density and efficiency of power supply, and meanwhile increase the heat dissipation function of the transformer.
To make the objects, technical solutions and advantages of this application more apparent, the present application will be further described in detail hereinafter in conjunction with the accompanying drawings and embodiments. However, it shall be noted that the specific embodiments described below are only used to illustrate the present application but not to limit the scope of the present application.
As shown in
The secondary winding unit 400 comprises a plurality of conductive sheets 4 and a printed circuit board 5.
Each conductive sheet 4 comprises an annular body 41 and an output terminal 42 arranged at the edge of the annular body 41 and protruded to the outside.
As shown in
In the transformer conductive structure of the embodiment of the present application, the output terminal 42 of the conductive sheet directly clamps on the printed circuit board 5. Thus, the space utilization rate of the printed circuit board 5 is increased and the distance from the lead of the secondary side of the transformer to the output rectifying unit and filtering unit is shortened, thereby the AC and DC loss is reduced, and the power density and efficiency of power supply is increased.
Preferably, as shown in
The first end 421 and second end 422 are arranged in parallel and opposite to each other up and down, which is of benefit to effectively reduce the leakage inductance and the AC loss with the transformer in the case of high frequency.
As shown in
As shown in
Each slot 51 directly clamps the output terminal 42 of the conductive sheet 4 to fix and conduct the conductive sheet 4 and the printed circuit board 5 directly.
Preferably, as shown in
When the output terminal 42 clamps the slot 51, after insertion sheet parts 4212, 4222 have passed through the slot 51, the transversely folding part 4214 clamps at the outside of the slot 51 so as to limit the clamping position of the output terminal 42, to make accurate location when the conductive sheet 4 clamps the printed circuit board 5, without the output terminal 42 optionally passing through the slot 51 to cause the clamping easy to loose.
Further, as an embodiment, after being fixed by clamping, the output terminal 42 of the conductive sheet 4 and the slot 51 of the printed circuit board 5 are further fixed by welding.
After the output terminal 42 and the slot 51 being fixed by clamping, the end of the output terminal 42 can expose at the other side of the printed circuit board 5 after passing through the slot 51 or remain in the slot 51. Preferably, a welding is performed at the clamping position where the output terminal 42 and the slot 51 have been clamped such that the conductive sheet 4 is securely fixed on the printed circuit board 5.
Preferably, as an embodiment, the annular body 41 of each conductive sheet 4 can comprise one circle or multi-circle annular metal conductor.
Further, every two adjacent circles of the annular bodies 41 of the conductive sheet 4 therebetween are provided with an insulation layer, which can be insulating tape to wrap each circle of the annular body 41 of the conductive sheet 4 to avoid short circuit between the annular bodies 41, and meanwhile the insulation layer need to be made of high temperature-resistant material.
Further, the conductive sheets 4 are copper sheets or other metal conductive sheets.
Furthermore, as shown in
Preferably, as shown in
Preferably, as shown in
Further, when the current and frequency of each component on the printed circuit board 5 are higher, copper sheets may be attached on the printed circuit board 5 to improve the conduction performance between the electric components, thereby to reduce the loss. The number of copper sheets can be determined according to the layer numbers of the printed circuit board 5 or the amount of current and frequency.
As shown in
Further, the printed circuit board 5 can be a two-layer or multilayer circuit board according to the requirement of the transformer output power.
The printed circuit board 5 is usually a carrier board, or may be an aluminum substrate with an insulation layer, or may be a metal (such as copper) carrier board with an insulation layer, whose main function is to bear at least a part of the rectifying circuit and the filtering circuit at the secondary side of the transformer. For example, the printed circuit board 5 at least bears the rectifying devices in the rectifying circuit and the filtering inductance 72 in the filtering circuit at the secondary side, and the rectifying devices and the filtering inductance 72 are electrically connected through the printed circuit board 5.
The rectifying circuit at the secondary side of the transformer may be rectifying circuits having various structures such as a full wave rectifying circuit, a current doubled rectifying circuit, a full-bridge rectifying circuit and a half-wave rectifying circuit. The rectifying devices in the rectifying circuit may be the diodes D1 and D2 as shown in
To further shorten the path between the lead of the secondary side of the transformer and the filtering inductance 72 and further reduce the volume of the filtering inductance 72, the filtering inductance 72 in the present application is configured that a winding of the filtering inductance is a one circle or multi-circle PCB conductor wiring (for example, a copper foil wiring) of the printed circuit board on the printed circuit board 50.
As another embodiment of the present invention, a metal conductor such as copper may be additionally welded on the wirings on the printed circuit board to lower the turn-on impedance of the windings and thereby reduce the conduction loss.
As another embodiment, the conductor 55 may be directly stacked on the multi-circle winding 54 along the pattern of the multi-circle winding 54. By additionally welding conductors on the conductor wirings of the windings, the impedance and loss when the winding is turned on is reduced.
If a coating magnetic core is not sleeved on the built-in windings of the printed circuit board as shown in
The coating magnetic core as shown in
It should be noted that, both the UI type magnetic core illustrated in
For the one circle or multi-circle built-in winding of the printed circuit board, more types of coating inductances may be sleeved to form a filtering inductance 72 with a greater amount of inductance than that of the hollow one.
The coating magnetic core as shown in
It should be noted that, both the EI type magnetic core illustrated in
The filtering inductances formed by a built-in winding of the printed circuit board and a coating magnetic core as shown in
The transformer conductive structure in the embodiments of the present application increases the space utilization rate of the printed circuit board and shortens the distance from the lead of the secondary side of the transformer to the output rectifying unit and filtering unit, thereby reduces the AC and DC loss, increases the power density and efficiency of power supply, and meanwhile increases the heat dissipation function of the transformer.
As shown in
As an embodiment, the transformer of the present application further comprises a plurality of coiling racks 6 which are circular.
One magnetic core set 604 is provided with a protruding end 605. It shall be noted that the magnetic core set 604 is PQ type in the embodiment or other type as alternatives in other embodiment of the present application.
The coiling racks 6 are sleeved on the protruding end 605 of the magnetic core set 604.
The coiling racks 6 are provided with coiling grooves 62 in which the primary coiling 300 winds. The coiling racks 6 wound with the primary coiling 300 are sleeved on the protruding end 605 of the magnetic core set 604. The conductive sheets 4 are also sleeved on the protruding end 605 of the magnetic core set 604 with the annular bodies 41 thereof, and sandwiched between every two coiling racks 6 to lead the conductive sheets 4 and the primary coiling 300 in staggered arrangement.
Further, when the conductive sheets 4 are sleeved on the protruding end 605 of the magnetic core set 604 with the annular bodies 41 thereof, the insulation layers between the conductive sheets 4 cover the whole annular bodies 41 of the conductive sheets 4 to avoid the direct contact between the annular bodies 41 of the conductive sheets 4 and the protruding end 605 of the magnetic core set. Similarly, in the specific application, after the primary coiling 300 has been wound in the coiling grooves 62, the exposed surface of the primary coiling 300 can also be added with an insulation layer.
As shown in
Preferably, as shown in
Further, the primary coiling 300 is a single core wire or a multi-core wire; the annular body 41 of the conductive sheet is one circle or multi-circle.
Further, in the transformer of the embodiment of the present application, the conductive sheet 4 directly clamps the printed circuit board 5 through its output terminal.
Furthermore, the conductive sheet 4 is copper sheet or other metal conductive sheet, and the specific outline dimension of the conductive sheet 4 needs to be designed according to the operating frequency, the output power and the specific structure of the magnetic core set 604 of the transformer. Other structures of the conductive sheet 4, which are the same as the description in the first embodiment, will not be described repeatedly in the second embodiment.
The specific application of the transformer conductive structure and the transformer of the present application will be further illustrated in conjunction with the first and the second embodiments as follows.
A schematic diagram of a half-bridge LLC series-resonant circuit is shown in
The transformer conductive structure and the transformer of the embodiment integrate the output rectifying unit and the filtering unit on the printed circuit board, and small packaged patch type devices are used as the rectifying devices, so as to increase the space utilization rate of the printed circuit board. Meanwhile the conductive sheets are used for replacing the secondary side wire-wound coil of traditional transformer, so as to increase the heat dissipation function. Extended terminals of the conductive sheets are used for directly connecting with the printed circuit board, so that the distance between the secondary side lead of the transformer and the output rectifier, i.e. AC path, is shortened, so as to reduce the AC and DC loss and the volume of the transformer, and increase the power density and efficiency of power supply.
Finally, it should be noted that, obviously, the people skilled in the art can make various changes and modifications to the present application. Thus, if the changes and modifications of the present application fall into the scope of the claims of the present application and equivalent technology thereof, the present application also intend to includes the changes and modifications.
Number | Date | Country | Kind |
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201110393371.7 | Dec 2011 | CN | national |
201210435332.3 | Nov 2012 | CN | national |