The field of the invention relates generally to power electronics, and more particularly, to integrated magnetic assemblies for use in power electronics.
High density power electronic circuits often require the use of multiple magnetic electrical components for a variety of purposes, including energy storage, signal isolation, signal filtering, energy transfer, and power splitting. As the demand for higher power density electrical components increases, it becomes more desirable to integrate two or more magnetic electrical components, such as transformers and inductors, into the same core or structure.
However, in known integrated magnetic assemblies, the magnetic flux produced by one component may not result in a zero net effect on the operation of the other component(s) in the integrated structure. As a result, the effectiveness and/or the efficiency of the integrated components may be reduced.
Additionally, in at least some known integrated magnetic assemblies, fringing flux has several detrimental effects on the operation of the integrated magnetic assembly. Fringing flux is a component of a magnetic flux that deviates from a main magnetic flux path. Fringing flux often passes through other, non-active components in an electronic circuit, inducing eddy currents in the windings of such components. This results in increased power losses in the windings and reduced efficiency. In addition, fringing flux reduces the inductance of integrated magnetic assemblies. Thus, when such integrated magnetic assemblies are used in power converters, fringing flux increases the amplitude of ripple current, leading to higher power losses and poor efficiency.
In one aspect, an integrated magnetic assembly is provided. The integrated magnetic assembly includes a magnetic core, an input winding inductively coupled to the magnetic core, a first output winding inductively coupled to the magnetic core, and a second output winding inductively coupled to the magnetic core. The magnetic core includes first and second non-winding legs, and first and second winding legs. The first and second non-winding legs are spaced apart from one another, and the magnetic core defines an opening between the first and second non-winding legs. The input winding extends through the opening between the first and second non-winding legs, and is wound around each of the first and second winding legs. The first output winding is wound around the first winding leg. The second output winding is wound around the second winding leg.
In another aspect, a method of assembling an integrated magnetic assembly is provided. The method includes providing a magnetic core including first and second non-winding legs, and first and second winding legs, where the first and second non-winding legs are spaced apart from one another, and the magnetic core defines an opening between the first and second non-winding legs, providing an input winding, providing a first output winding, providing a second output winding, inductively coupling the input winding to the magnetic core such that the input winding extends through the opening between the first and second non-winding legs and is wound around each of the first and second winding legs, inductively coupling the first output winding to the magnetic core such that the first output winding is wound around the first winding leg, and inductively coupling the second output winding to the magnetic core such that the second output winding is wound around the second winding leg.
In yet another aspect an integrated magnetic core is provided. The integrated magnetic core includes a first plate, a second plate, first and second non-winding legs extending between the first plate and the second plate, and first and second winding legs extending between the first plate and the second plate. The first and second non-winding legs are spaced apart from one another, and the first plate, the second plate, the first non-winding leg, and the second non-winding leg define an opening between the first and second non-winding legs.
Although specific features of various embodiments may be shown in some drawings and not in others, this is for convenience only. Any feature of any drawing may be referenced and/or claimed in combination with any feature of any other drawing.
Example embodiments of integrated magnetic assemblies are described herein. An integrated magnetic assembly includes a magnetic core, an input winding inductively coupled to the magnetic core, a first output winding inductively coupled to the magnetic core, and a second output winding inductively coupled to the magnetic core. The magnetic core includes first and second non-winding legs, and first and second winding legs. The first and second non-winding legs are spaced apart from one another, and the magnetic core defines an opening between the first and second non-winding legs. The input winding extends through the opening between the first and second non-winding legs, and is wound around each of the first and second winding legs. The first output winding is wound around the first winding leg. The second output winding is wound around the second winding leg.
Input side 102 includes a first switching device 108, a second switching device 110, a third switching device 112, and a fourth switching device 114. As described in more detail herein, terminal ends of an input winding of integrated magnetic assembly 106 are electrically coupled between first switching device 108 and second switching device 110, and between third switching device 112 and fourth switching device 114.
Output side 104 includes a fifth switching device 116 and a sixth switching device 118. As described in more detail herein, terminal ends of first and second output windings of integrated magnetic assembly 106 are electrically coupled to fifth switching device 116 and sixth switching device 118, respectively.
In operation, first switching device 108 and fourth switching device 114 are jointly switched between opened and closed positions, and second switching device 110 and third switching device 112 are jointly switched between opened and closed positions in opposite phases with respect to first switching device 108 and fourth switching device 114. Similarly, fifth switching device 116 and sixth switching device 118 are switched between opened and closed positions in opposite phases to produce output voltage Vout, which is supplied to a load 120. In the example embodiment, switching devices 108, 110, 112, 114, 116, and 118 are illustrated as transistor switches (specifically, MOSFETs), and are coupled to one or more controllers (not shown) configured to output a pulse-width modulated control signal to the gate side of each switching device 108, 110, 112, 114, 116, and 118 to switch the switching devices between open and closed positions.
While integrated magnetic assembly 106 is described herein with reference to power converter 100, integrated magnetic assembly 106 may be implemented in any suitable electrical architecture that enables integrated magnetic assembly 106 to function as described herein, including, for example, fly back converters, forward converters, and push-pull converters.
In the example embodiment, magnetic core 202 includes a first plate 222, a second plate 224, first and second non-winding legs 226 and 228 extending between first plate 222 and second plate 224, and first and second winding legs 230 and 232 extending between first plate 222 and second plate 224. As used herein, the term “winding leg” refers to a leg of magnetic core 202 around which at least one of input winding 204, first output winding 206, and second output winding 208 are wound. As used herein, the term “non-winding leg” refers to the legs of magnetic core 202 which are not winding legs.
As shown in
First winding leg 230 and second winding leg 232 are spaced apart from one another a sufficient distance to receive one or more segments of input winding 204, first output winding 206, and second output winding 208 therebetween. Further, first winding leg 230 is spaced apart from first non-winding leg 226 a sufficient distance to receive one or more segments of input winding 204, first output winding 206, and second output winding 208 therebetween, and second winding leg 232 is spaced apart from second non-winding leg 228 a sufficient distance to receive one or more segments of input winding 204, first output winding 206, and second output winding 208 therebetween.
Further, first non-winding leg 226 and second non-winding leg 228 are spaced apart from one another, and the magnetic core 202 defines an opening 238 between the first non-winding leg 226 and the second non-winding leg 228. Opening 238 is sized to receive input winding 204. In other words, integrated magnetic assembly 200 includes “split” non-winding legs between which input winding 204 is received. As described in more detail herein, the configuration of first non-winding leg 226, second non-winding leg 228, and input winding 204 facilitates a more compact magnetic assembly as compared to known magnetic assemblies, and minimizes power losses associated magnetic flux interference between different components integrated on a single magnetic core.
In the example embodiment, opening 238 is defined by first non-winding leg 226, second non-winding leg 228, first plate 222, and second plate 224. Opening 238 is sized to receive at least input winding 204, although in other suitable embodiments, opening 238 may be defined by a component other than first non-winding leg 226, second non-winding leg 228, first plate 222, and second plate 224.
In the example embodiment, magnetic core 202 also includes a plurality of spacers configured to provide gaps in magnetic core 202, and thereby provide magnetic core 202 with a desired inductance and/or saturation current. More specifically, magnetic core 202 includes a first spacer 240 disposed between first winding leg 230 and second plate 224, and a second spacer 242 disposed between second winding leg 232 and second plate 224. First spacer 240 is configured to provide a gap 244 between a first winding leg 230 and second plate 224, and second spacer 242 is configured to provide a gap 246 between second winding leg 232 and second plate 224.
In the example embodiment, first spacer 240 and second spacer 242 are constructed from a material having a relatively high magnetic permeability, such as ferrite. In alternative embodiments, first spacer 240 and/or second spacer 242 may include a material with a relatively low magnetic permeability, or a material with a relatively high magnetic reluctance. By providing first spacer 240 and second spacer 242 with desired magnetic permeabilities and/or reluctances, the inductance of integrated magnetic assembly 200 can be adjusted to a desired level. Additionally, by varying the magnetic permeability across first gap 244 and second gap 246 (for example, by partially filling first and second gap 244 and 246 with a material having a relatively high magnetic reluctance), the amount of fringing-flux produced within integrated magnetic assembly 200 during operation can be reduced, thereby improving the efficiency and the effectiveness of integrated magnetic assembly 200.
Magnetic core 202 may be constructed from any suitable material that enables integrated magnetic assembly 200 to function as described herein, including ferrite, ferrite polymer composites, powdered iron, sendust, laminated cores, tape wound cores, silicon steel, nickel-iron alloys (e.g., MuMETAL®), amorphous metals, and combinations thereof. In the example embodiment, first plate 222, first non-winding leg 226, second non-winding leg 228, first winding leg 230, and second winding leg 232 are fabricated from a single piece of magnetic material, such as ferrite. Second plate 224 is likewise fabricated from a single piece of magnetic material and coupled to first plate 222 via non-winding legs 226 and 228.
As noted above, input winding 204, first output winding 206, and second output winding 208 are each inductively coupled to magnetic core 202. More specifically, input winding 204 is wound around first winding leg 230 and second winding leg 232, first output winding 206 is wound around first winding leg 230, and second output winding 208 is wound around second winding leg 232.
Input winding 204, first output winding 206, and second output winding 208 may be constructed from any suitable conductive material that enables integrated magnetic assembly 200 to function as described herein, including, for example, copper. Input winding 204, first output winding 206, and second output winding 208 may be constructed from the same conductive material or different conductive materials. In the example embodiment, input winding 204, first output winding 206, and second output winding 208 are each constructed from copper sheets, and are assembled in an interleaved configuration such that the conductive sheets of first and second output windings 206 and 208 are interposed between the conductive sheets of input winding 204.
Input winding 204 includes a first terminal end 248 and a second terminal end 250. First terminal end 248 and second terminal end 250 are configured to be electrically coupled to an electronic circuit, such as the power converter 100 illustrated in
Further, input winding 204 includes, in series from first terminal end 248 to second terminal end 250, a first terminal segment 252, a first winding segment 254, a second winding segment 256, and a second terminal segment 258. First terminal segment 252 extends from first terminal end 248 through opening 238 between first and second non-winding legs 226 and 228 to first winding segment 254. First winding segment 254 extends from first terminal segment 252, around first winding leg 230 to second winding segment 256. Second winding segment 256 extends from first winding segment 254 and around second winding leg 232 to second terminal segment 258. Second terminal segment 258 extends from second winding segment 256 through opening 238 between first and second non-winding legs 226 and 228 to second terminal end 250.
As shown in
As shown in
As shown in
Magnetic core 302 has a generally rectangular shape including six sides. The six sides of magnetic core 302 include a first side 310, an opposing second side 312, first and second opposing ends 314 and 316 extending between first side 310 and second side 312, and a top 318 and an opposing bottom 320 extending between first side 310 and second side 312 and between first end 314 and second end 314.
Magnetic core 302 includes a first plate 322, a second plate 324, first and second non-winding legs 326 and 328 extending between first plate 322 and second plate 324, and first and second winding legs 330 and 332 extending between first plate 322 and second plate 324. Additionally, magnetic core 302 includes a third non-winding leg 334 extending between first plate 322 and second plate 324, and disposed between first and second non-winding legs 326 and 328.
First plate 322 is coupled to second plate 324 via first non-winding leg 326, second non-winding leg 328, third non-winding leg 334, first winding leg 330, and second winding leg 332. First plate 322 and second plate 324 each include a respective interior surface 336 and 338 between which winding legs 330 and 332 and non-winding legs 326, 328, and 334 extend. When integrated magnetic assembly 300 is assembled (shown in
In the embodiment illustrated in
First winding leg 330 and second winding leg 332 are spaced apart from one another a sufficient distance to receive one or more segments of input winding 304, first output winding 306, and second output winding 308 therebetween. Further, first winding leg 330 is spaced apart from first non-winding leg 326 and third non-winding leg 334 a sufficient distance to receive one or more segments of input winding 304, first output winding 306, and second output winding 308 therebetween. Second winding leg 332 is spaced apart from second non-winding leg 328 and third non-winding leg 334 a sufficient distance to receive one or more segments of input winding 304, first output winding 306, and second output winding 308 therebetween.
Moreover, first non-winding leg 326 extends from first side 310 of magnetic core 302, around first winding leg 330 to second side 312 of magnetic core 302. Similarly, second non-winding leg 328 extends from first side 310 of magnetic core 302, around second winding leg 332 to second side 312 of magnetic core 302. Third non-winding leg 334 is positioned adjacent second side 312 of magnetic core 302, and between first non-winding leg 326 and second non-winding leg 328.
Together, first non-winding leg 326, second non-winding leg 328, and third non-winding leg 334 substantially surround first winding leg 330 and second winding leg 332, thereby enclosing first winding leg 330 and second winding leg 332 within magnetic core 302. The configuration of magnetic core 302 provides a reduced average magnetic flux path through magnetic core 302 as compared to magnetic core 202 (shown in
Magnetic core 302 may be constructed the same materials and in the same manner as magnetic core 202 described above.
Input winding 304, first output winding 306, and second output winding 308 are each inductively coupled to magnetic core 302. More specifically, input winding 304 is wound around first winding leg 330 and second winding leg 332, first output winding 306 is wound around first winding leg 330, and second output winding 308 is wound around second winding leg 332.
Input winding 304 includes a first terminal end 342 and a second terminal end 344. First terminal end 342 and second terminal end 344 are configured to be electrically coupled to an electronic circuit, such as the power converter 100 illustrated in
Further, input winding 304 includes, in series from first terminal end 342 to second terminal end 344, a first terminal segment 346, a first winding segment 348, a second winding segment 350, and a second terminal segment 352. First terminal segment 346 extends from first terminal end 342 through opening 340 between first and second non-winding legs 326 and 328 to first winding segment 348. First winding segment 348 extends from first terminal segment 346, around first winding leg 330 to second winding segment 350. Second winding segment 350 extends from first winding segment 348 and around second winding leg 332 to second terminal segment 352. Second terminal segment 352 extends from second winding segment 350 through opening 340 between first and second non-winding legs 326 and 328 to second terminal end 344.
Similar to input winding 304 (shown in
As shown in
Input winding 304, first output winding 306, and second output winding 308 each have a reduced width as compared to input winding 204, first output winding 206, and second output winding 208 (all shown in
Input winding 304, first output winding 306, and second output winding 308 may be wound around first and second winding legs 330 and 332 in substantially the same manner as input winding 204, first output winding 206, and second output winding 208 described above with reference to
As shown in
Magnetic core 402 has a generally rectangular shape including six sides. The six sides of magnetic core 402 include a first side 410, an opposing second side 412, first and second opposing ends 414 and 416 extending between first side 410 and second side 412, and a top 418 and an opposing bottom 420 extending between first side 410 and second side 412 and between first end 414 and second end 416.
Magnetic core 402 includes a first plate 422, a second plate 424, first and second non-winding legs 426 and 428 extending between first plate 422 and second plate 424, and first and second winding legs 430 and 432 extending between first plate 422 and second plate 424. Additionally, magnetic core 402 includes a third non-winding leg 434, a fourth non-winding leg 436, a fifth non-winding leg 438 and a sixth non-winding leg 440, each extending between first plate 422 and second plate 424.
First plate 422 is coupled to second plate 424 via winding legs 430 and 432 and non-winding legs 426, 428, 434, 436, 438, and 440. First plate 422 and second plate 424 each include a respective interior surface 442 and 444 between which winding legs 430 and 432 and non-winding legs 426, 428, 434, 436, 438, and 440 extend. When integrated magnetic assembly 400 is assembled (shown in
Further, first plate 422 includes a raised portion 446 extending outward from interior surface 442 towards second plate 424. Raised portion 446 extends from first side 410 of magnetic core 402 towards second side 412 and between first and second winding legs 430 and 432. Second plate 424 also includes a raised portion (now shown) substantially identical to raised portion 446.
In the embodiment illustrated in
First winding leg 430 and second winding leg 432 are spaced apart from one another a sufficient distance to receive one or more segments of input winding 404, first output winding 406, and second output winding 408 therebetween. Further, first winding leg 430 is spaced apart from each non-winding leg 426, 428, 434, 436, 438, and 440 a sufficient distance to receive one or more segments of input winding 404, first output winding 406, and second output winding 408 therebetween. Second winding leg 432 is spaced apart from each non-winding leg 426, 428, 434, 436, 438, and 440 a sufficient distance to receive one or more segments of input winding 404, first output winding 406, and second output winding 408 therebetween.
Fourth non-winding leg 436, fifth non-winding leg 438, and sixth non-winding leg 440 are each positioned proximate second side 412 of magnetic core 402. Fourth non-winding leg 436 and sixth non-winding leg 440 are spaced apart from another, and fifth non-winding leg 438 is disposed between fourth non-winding leg 436 and sixth non-winding leg 440.
Together, non-winding legs 426, 428, 434, 436, 438, and 440 substantially surround first winding leg 430 and second winding leg 432, thereby enclosing first and second winding legs 430 and 432 within magnetic core 402.
Magnetic core 402 may be constructed the same materials and in the same manner as magnetic core 402 described above.
Input winding 404, first output winding 406, and second output winding 408 are each inductively coupled to magnetic core 402. More specifically, input winding 404 is wound around first winding leg 430 and second winding leg 432, first output winding 406 is wound around first winding leg 430, and second output winding 408 is wound around second winding leg 432.
Input winding 404 includes a first terminal end 458 and a second terminal end 460. First terminal end 458 and second terminal end 460 are configured to be electrically coupled to an electronic circuit, such as the power converter 100 illustrated in
Further, input winding 404 includes, in series from first terminal end 458 to second terminal end 460, a first terminal segment 462, a first winding segment 464, a second winding segment 466, and a second terminal segment 468. First terminal segment 462 extends from first terminal end 458 through first opening 450 between first and third non-winding legs 426 and 434 to first winding segment 464. First winding segment 464 extends from first terminal segment 462, around first winding leg 430 to second winding segment 466. Second winding segment 466 extends from first winding segment 464 and around second winding leg 432 to second terminal segment 468. Second terminal segment 468 extends from second winding segment 466 through second opening 452 between second and third non-winding legs 428 and 434 to second terminal end 460.
Similar to input winding 204 (shown in
In the embodiment illustrated in
Input winding 404, first output winding 406, and second output winding 408 may be wound around first and second winding legs 430 and 432 in substantially the same manner as input winding 404, first output winding 406, and second output winding 408 described above with reference to
Example embodiments of integrated magnetic assemblies are described herein. An integrated magnetic assembly includes a magnetic core, an input winding inductively coupled to the magnetic core, a first output winding inductively coupled to the magnetic core, and a second output winding inductively coupled to the magnetic core. The magnetic core includes first and second non-winding legs, and first and second winding legs. The first and second non-winding legs are spaced apart from one another, and the magnetic core defines an opening between the first and second non-winding legs. The input winding extends through the opening between the first and second non-winding legs, and is wound around each of the first and second winding legs. The first output winding is wound around the first winding leg. The second output winding is wound around the second winding leg.
As compared to at least some integrated magnetic assemblies, in the systems and methods described herein, an integrated magnetic core utilizes split legs for both the winding and non-winding legs, and a primary winding extending through the core between the non-winding legs. Using split legs for the winding and non-winding legs and passing the primary winding through the core between the non-winding legs reduces the size of the integrated magnetic assembly, thereby increasing the power density, while minimizing the net magnetic flux on the integrated magnetic core.
The order of execution or performance of the operations in the embodiments of the invention illustrated and described herein is not essential, unless otherwise specified. That is, the operations may be performed in any order, unless otherwise specified, and embodiments of the invention may include additional or fewer operations than those disclosed herein. For example, it is contemplated that executing or performing a particular operation before, contemporaneously with, or after another operation is within the scope of aspects of the invention.
Although specific features of various embodiments of the invention may be shown in some drawings and not in others, this is for convenience only. In accordance with the principles of the invention, any feature of a drawing may be referenced and/or claimed in combination with any feature of any other drawing.
This written description uses examples to disclose the invention, including the best mode, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal language of the claims.
This application claims the benefit of U.S. Provisional Patent Application No. 61/792,574 filed Mar. 15, 2013, which is hereby incorporated by reference in its entirety.
Number | Date | Country | |
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61792574 | Mar 2013 | US |