The present application claims the priority of Chinese Patent Application No. 201710343404.4, filed on May 16, 2017, and the entire contents thereof are incorporated herein by reference as part of the present application.
The present disclosure relates to a magnetic component, in particular to a magnetic component having reduced winding loss and improved circuit efficiency.
In recent years, with development of the data center and artificial intelligence and the like, central processing units (CPUs), graphic processing units (GPUs) and various integrated chips (ICs) have an increasing operation speed and an increasing operation current. The requirements on power density, efficiency and dynamic performance and the like of the voltage regulator modules (VRMs) are increasingly higher, and the design of VRMs is facing a challenge. In the VRMs there is usually a relatively high loss in the output inductor, and moreover the magnetic leakage flux of inductor may induce additional the winding loss of the inductor and interfere performance of other elements and devices.
It should be noted that, information disclosed in the above background portion is provided only for better understanding of the background of the present disclosure, and thus it may contain information that does not form the prior art known by those ordinary skilled in the art.
In aspects of the disclosure there is provided a magnetic component.
According to one aspect of the disclosure, a magnetic component includes:
a first magnetic pole extending in a first direction and having an air gap provided therein;
a second magnetic pole extending in the first direction;
a cover plate extending in a second direction perpendicular to the first direction and connected with an end of the first magnetic pole and an end of the second magnetic pole;
a protrusion formed on and at least partially surrounding the first magnetic pole; and
a winding surrounding the first magnetic pole at the air gap and having a lead supported by the protrusion such that a clearance is formed between the winding and the first magnetic pole.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the invention, as claimed.
This section provides a summary of various implementations or examples of the technology described in the disclosure, and is not a comprehensive disclosure of the full scope or all features of the disclosed technology.
The accompanying drawings are provided for further understanding of the disclosure, constitute part of the specification, and serve to explain the disclosure in conjunction with the following particular embodiments, but do not limit the disclosure, in which:
In order for those skilled in the art to understand the technical solution of the disclosure, now further detailed description will be made to the magnetic component according to the disclosure in conjunction with the accompanying drawings and the embodiments.
According to the comparison example, the winding 120 and the air gap 115 are separated from each other, and accordingly the loss of the winding 120 of the inductor 100 can be reduced, thereby facilitating improvement of the circuit efficiency.
However, as shown in
According to the comparison example, the formation of the groove avoids a direct contact between the winding 220 and the air gap 215, such that they are separated from each other, accordingly the loss of the winding 220 of the inductor 200 can be reduced, thereby facilitating improvement of the circuit efficiency. Further, since the winding 220 covers at least part of the air gap 215, the fringe magnetic flux can be reduced. However, it is difficult to form a groove in the winding 220, resulting in a complicated production process for the inductor 200, and it is difficult to make a massive production and the cost is high.
Referring to
a first magnetic pole 310 extending in a first direction, such as the x direction, and having an air gap 315 provided therein;
a second magnetic pole 320 extending in the first direction;
a cover plate 330 extending in a second direction, such as the y direction, perpendicular to the first direction and connected with an end of the first magnetic pole 310 and an end of the second magnetic pole 320;
a protrusion formed on and at least partially surrounding the first magnetic pole 310; and
a winding 350 surrounding the first magnetic pole 310 at the air gap 315 and having a lead 351 supported by the protrusion 350 such that a clearance is formed between the winding 350 and the first magnetic pole 310 in a third direction.
According to the embodiment, the first magnetic pole 310 extending in the x direction may indicate that the connection line between a first and a second ends of the first magnetic pole 310 is in the x direction, wherein the first and second ends of the first magnetic pole 310 are connected to the cover plate 330, respectively.
The protrusion 340 is formed to at least partially surround the first magnetic pole 310 such that a portion of the first magnetic pole 310 contacts the protrusion 340 while another portion of the first magnetic pole 310 may not contact the protrusion 340.
In an embodiment, as shown in
According to an embodiment of the disclosure, the total width P of the lead 351 in the first direction and the width P1 of the portion of the lead 351 not contacting the protrusion 340 satisfy the following relationship: P1≥P/3.
In an embodiment, as shown in
In an embodiment, at least one of the distance S2 or S4 between the winding 350 and the air gap 315 in the second direction and the distance S3 between the winding 350 and the air gap 315 in the third direction is greater than 0. In another embodiment, at least one of the aforesaid distances S2, S3 or S4 is equal to or greater than P/6.
In another embodiment, referring to
According to an embodiment of the disclosure, the distance S1 between the lead 351 and the air gap 315 in the third direction and the width P1 of the portion of the lead not contacting the protrusion satisfy the following relationship: S1≥P1/6.
Referring to
According to the embodiment, the magnetic component includes a first magnetic pole extending in a first direction and having an air gap provided therein, a second magnetic pole extending in the first direction, a cover plate extending in a second direction perpendicular to the first direction and connected with an end of the first magnetic pole and an end of the second magnetic pole, a protrusion formed on and at least partially surrounding the first magnetic pole, and a winding wound around the first magnetic pole at the air gap and having a lead supported by the protrusions such that a clearance is formed between the winding and the first magnetic pole. Accordingly, the magnetic component has at least one of following advantages: firstly, the magnetic core has a high utilization, the windings may be easily separated from the air gap, the winding may be directly assembled with the magnetic core after being formed, the assembly is easy and the cost is low; secondly, the air gap has its circumference surrounded by the winding, the fringe magnetic flux is small and mutual interference with peripheral devices is low; thirdly, the winding has a simple structure and may be fabricated easily; fourthly, selection of the lead structure of the winding and the magnetic core structure is flexible, and the interconnection with the power modules is convenient; and fifthly, the eddy-current loss of the winding is reduced, and the AC resistance is decreased, thereby facilitating improvement of the circuit efficiency.
As shown in
As shown in
In particular, as shown in
In an embodiment, the protrusion 340 may be made from the same material from which the first magnetic pole, the second magnetic pole and/or the cover plate of the magnetic core are made. In the case, the protrusion 340 may be integrally formed with the first magnetic pole 310, thereby simplifying the production process and reducing the production cost.
In addition, in another embodiment, the protrusion 340 may also be made from non-magnetic material, thereby facilitating increase of cross-sectional area of the lead through which an AC current flows, and thus reducing the AC loss. In the embodiment, when the protrusion 340 is made from non-magnetic material, the additional non-magnetic material 360 may be omitted.
Referring to 6A-6C, the magnetic component 300 according to the third embodiment of the disclosure differs from the magnetic components 300 according to the previous embodiments of the disclosure mainly in that the protrusion 340 has an irregular shape. In particular, a size of the protrusion 340 decreases downwardly. i.e., the protrusion 340 has a shape of becoming smaller in the downward direction. For example, as shown in
With the aforesaid structure, the contact area between the protrusion 340 and the lead of the winding can be reduced. Accordingly, if the protrusion is made from magnetic material, the contact area between the magnetic material forming the protrusion 340 and the lead can be reduced. Therefore, the magnetic component according to the embodiment helps to increase the cross-sectional area of the lead 351 through which an AC current flows and reduce the AC loss.
As shown in
According to the embodiment, the leads of the winding may be bent in a desired direction depending on requirements in an actual circuit such that the leads of the winding of the magnetic component 300 adapts to a circuit module to be connected, thereby the interconnection between the leads and the circuit module may be achieved more easily.
Furthermore, in the embodiment, the bottom surface of the second magnetic pole 320 may be in the same plane as the bottom surfaces of the protrusions 340. In this case, it can be assured that the leads 351 are supported by the protrusions 340 and the second magnetic pole 320, respectively, and positioned in the same plane.
Furthermore, in the embodiment, the first magnetic pole 310 has a section of non-rectangular. In particular, in the section of the first magnetic pole 310 formed in the second and third directions, the height at the central portion is greater than that at two ends. More particularly, for example, the section of the first magnetic pole may have a shape of ellipse, rounded rectangular, chamfered rectangular, rhombus, fusiform, or a combination thereof.
In the embodiment, the respective distances in the second and third directions between the first magnetic pole 310 and the corners of the winding 350 can be increased, such that the current of the winding 350 may be distributed more even at the corners, and thereby further reducing the loss of the winding 350.
Furthermore, referring to
However, the disclosure is not limited thereto. The bottom surface of the protrusion 340 may be higher than that of the second magnetic pole 320 and/or the cover plate 330. In this case, in the embodiment where the leads 351 are both formed to contact the protrusions 340, the total height of the magnetic component can be reduced, thereby helping improve the space utilization.
Furthermore, in another embodiment, the upper surface of the winding 350 may be positioned below, or in the same plane as, the upper surface of the second magnetic pole 320 and/or the cover plate 330. In this case, advantageously, since the upper surface of the winding 350 does not protrude beyond the upper surface of the magnetic core structure, the total height of the magnetic component can be reduced, thereby helping improve the space utilization.
Referring to
In the magnetic component according to the embodiment, for the detailed structures of the first magnetic poles 310, the protrusions 340 and the windings 350, please refer to the aforesaid embodiments of the disclosure, and the description therefor is not repeated here.
According to the embodiment, the magnetic component includes two windings. Accordingly, the magnetic component may be formed as a specific magnetic component such as an integrated inductor or transformer by appropriately setting the coupling schemes. Those skilled in the art would understand how to form those specific magnetic components after fully reading the contents disclosed in the specification, and thus no details are described here.
As shown in
With the magnetic component according to the disclosure which includes a first magnetic pole extending in a first direction and having an air gap provided therein, a second magnetic pole extending in the first direction, a cover plate extending in a second direction perpendicular to the first direction and connected with an end of the first magnetic pole and an end of the second magnetic pole, a protrusion formed on and at least partially surrounding the first magnetic pole, and a winding wound around the first magnetic pole at the air gap and having a lead supported by the protrusions such that a clearance is formed between the winding and the first magnetic pole, at least one of following advantages may be obtained: firstly, the magnetic core has a high utilization, the windings may be easily separated from the air gap, the assembly is easy and the cost is low; secondly, the air gap has its circumference surrounded by the winding, the fringe magnetic flux is small and mutual interference with peripheral devices is low; thirdly, the winding has a simple structure and may be fabricated easily: fourthly, selection of the lead structure of the winding and the magnetic core structure is flexible, and the interconnection with the power modules is convenient; and fifthly, the eddy-current loss of the winding is reduced, and the AC resistance is decreased, thereby facilitating improvement of the circuit efficiency.
Although above descriptions have been made to the disclosure in conjunction with the particular embodiments and the accompanying drawings, those skilled in the art should understand that the features described with reference to one embodiment are not limited to the embodiment, but may be applied into other embodiments to create other embodiments not shown in the accompanying drawings or not particularly described in the specification.
In sum, the magnetic component according to the disclosure can have at least the following advantages: firstly, the magnetic core has a high utilization, the windings may be easily separated from the air gap, the assembly is easy and the cost is low; secondly, the air gap has its circumference surrounded by the winding, the inductor had small fringe magnetic flux and mutual interference with peripheral devices is low; thirdly, the winding has a simple structure and may be fabricated easily: and fourthly, selection of the lead structure of the winding and the magnetic core structure is flexible, and the interconnection with the power modules is convenient.
It should be appreciated that the aforesaid embodiments are only exemplary embodiments used for illustrating the principle of the disclosure. However, the disclosure is not limited thereto. For those skilled in the art, various modifications and improvements can be made without going beyond the spirit and essence of the disclosure, which modifications and improvements are also considered to be the protection scope of the disclosure.
Number | Date | Country | Kind |
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201710343404.4 | May 2017 | CN | national |
Number | Name | Date | Kind |
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5210514 | Ito | May 1993 | A |
6356179 | Yamada | Mar 2002 | B1 |
Number | Date | Country |
---|---|---|
204010998 | Dec 2014 | CN |
105810406 | Jul 2016 | CN |
H02290005 | Nov 1990 | JP |
H04142013 | May 1992 | JP |
2699020 | Jan 1998 | JP |
2010027946 | Feb 2010 | JP |
Entry |
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The CN1OA dated Apr. 3, 2020 by the CNIPA. |
Number | Date | Country | |
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20180336986 A1 | Nov 2018 | US |