Magnetic device and the method to make the same
11367562 ยท 2022-06-21
Assignee
Inventors
Cpc classification
H01F2017/048
ELECTRICITY
H01F27/323
ELECTRICITY
H01F41/0246
ELECTRICITY
H01F27/34
ELECTRICITY
International classification
H01F27/34
ELECTRICITY
Abstract
A coating layer is used to encapsulate winding turns of an insulated conductive wire of a coil that is encapsulated by a magnetic material containing magnetic particles so as to prevent the magnetic particles from damaging the insulated insulating layer of the insulated conductive wire of the coil when the magnetic material is pressed to form a magnetic body, thereby avoiding unwanted short circuits that are caused by the magnetic particles and damaged portions of the insulated conductive wire.
Claims
1. A magnetic device, comprising: a coil, comprising a plurality of winding turns of an insulated conductive wire, wherein the insulated conductive wire comprises a conductive metal wire and at least one first insulating layer encapsulating the conductive metal wire, wherein at least two different portions of the plurality of winding turns of the insulated conductive wire form a first space therebetween; a coating layer, comprising an insulating material to encapsulate said at least two different portions of the plurality of winding turns of the insulated conductive wire and fills into said first space, wherein the coating layer comprises a first continuous portion that is located outside a corresponding outermost surface of each of said at least two different portions of the plurality of winding turns of the insulated conductive wire and extends vertically across said at least two different portions of the plurality of winding turns of the insulated conductive wire and said first space that is filled by a second continuous portion that is extended from said first continuous portion of the coating layer; and a magnetic body, comprising at least one magnetic powder, wherein the magnetic body encapsulates the plurality of winding turns of the insulated conductive wire and the coating layer.
2. The magnetic device according to claim 1, wherein the magnetic body has a unitary body that encapsulates the plurality of winding turns of the insulated conductive wire and the coating layer, said unitary body extending into the hollow space of the coil.
3. The magnetic device according to claim 1, wherein the entire outer surface of the plurality of winding turns of the insulated conductive wire is encapsulated by the coating layer.
4. The magnetic device according to claim 1, wherein the magnetic device is an inductor.
5. The magnetic device according to claim 1, wherein the insulated conductive wire has only one insulating layer: the first insulating layer.
6. The magnetic device according to claim 1, wherein the insulated conductive wire has only two insulating layers: the first insulating layer and a self-adhesive layer encapsulating the first insulating layer.
7. The magnetic device according to claim 1, wherein the coating layer comprises a polymer material.
8. The magnetic device according to claim 1, wherein the coating layer comprises a resin.
9. The magnetic device according to claim 1, wherein the magnetic body comprises a first magnetic powder, wherein D50 of the first magnetic powder is in the range of 17 to 36 um, the D10 of the first magnetic powder is in the range of 8 to 26 um, and the D90 of the first magnetic powder is in the range of 30 to 52.
10. The magnetic device according to claim 1, wherein the magnetic body comprises a first magnetic powder, wherein D50 of the first magnetic powder is in the range of 8 to 16 um, the D10 of the first magnetic powder is in the range of 3 to 6 um, and the D90 of the first magnetic powder is in the range of 18 to 30.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
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DESCRIPTION OF EMBODIMENTS
(10) For the following description, the terms D10, D50 and D90 are used for describing the particle size distribution of magnetic powders. D10 means 10% of the total number of the particles is less than the D10, D50 means 50% of the total number of the particles is less than D50 and D90 means 90% of the total number of the particles is less than D90.
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(12) As shown in
(13) In one embodiment, the insulated conductive wire has only one insulating layer: the first insulating layer 101b.
(14) In one embodiment, the insulated conductive wire has only two insulating layers: the first insulating layer 101b and a second insulating layer 101c.
(15) In one embodiment, the second insulating layer 101c can be a self-adhesive layer, wherein the coating layer coated 103 on the self-adhesive layer can prevent the self-adhesive layer flowing out during a molding process. Furthermore, the coating layer 103 coated on the self-adhesive layer can further electrically isolate the coil from particles of the at least one magnetic powder to avoid a short circuit caused by particles of the at least one magnetic powder. In one embodiment, the insulated conductive wire can be an enameled wire, wherein the enameled wire can have a circular shape. In one embodiment, the conductive metal wire of the enameled wire comprises copper.
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(18) In one embodiment, as shown in
(19) In one embodiment, the entire outer surface and the entire inner surface of the plurality of winding turns of the coil 201 are encapsulated by the coating layer 103.
(20) In one embodiment, a portion of a winding turn of the insulated conductive wire and a lead that is electrically connected to a terminal part of the insulated conductive wire of the coil forms a second space therebetween, wherein the coating layer encapsulates said portion of a winding turn of the insulated conductive wire and at least one portion of the lead and extends into said second space.
(21) In one embodiment, the insulated conductive wire has only one insulating layer: the first insulating layer 101b.
(22) Please note that the coating layer 103 can encapsulate just the portions of the coil that are easily shorted by the particles of the at least one magnetic powder. That is, it is not necessary to coat the entire outer surface of the coil 201, as shown in
(23) In one embodiment, the at least one first insulating layer comprises two insulating layers, wherein said two insulating layers are made of different insulating materials.
(24) In one embodiment, the magnetic device is an inductor.
(25) In one embodiment, the coating layer comprises a polymer material.
(26) In one embodiment, the coating layer comprises a resin.
(27) In one embodiment, the coating layer comprises an organic material.
(28) In one embodiment, the magnetic body comprises a first magnetic powder and a second magnetic powder, wherein the first magnetic powder and the second magnetic powder are mixed with an adhesive material.
(29) In one embodiment, wherein the D50 of the first magnetic powder is in the range of 8 to 36 um while the D50 of the second magnetic powder is in the range of 1.0 to 10 um, the D10 of the first magnetic powder is in the range of 3 to 20 um while the D10 of the second magnetic powder is in the range of 0.5 to 6 um, and the D90 of the first magnetic powder is in the range of 20 to 60 um while the D90 of the second magnetic powder is in the range of 2 to 12 um.
(30) In one embodiment, the magnetic body comprises a first magnetic powder, wherein D50 of the first magnetic powder is in the range of 17 to 36 um, the D10 of the first magnetic powder is in the range of 8 to 26 um, and the D90 of the first magnetic powder is in the range of 30 to 52.
(31) In one embodiment, the magnetic body comprises a first magnetic powder, wherein D50 of the first magnetic powder is in the range of 8 to 16 um, the D10 of the first magnetic powder is in the range of 3 to 6 um, and the D90 of the first magnetic powder is in the range of 18 to 30.
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(33) In one embodiment, the magnetic body 104 encapsulates the plurality of winding turns of the insulated conductive wire of the coil 201 and extends into the hollow space of the coil 201.
(34) In one embodiment, the coating layer 103 extends into a hollow space of the coil 201 to encapsulate the inner surface of the coil.
(35) In one embodiment, a lead 140 is disposed on the magnetic body 104 and electrically connected to the coil 201.
(36) As shown in
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(38) In one embodiment, two adjacent winding turns of the insulated conductive forms the first space 102 therebetween, wherein the first insulating material of the coating layer 103 is filled into the first space 102 for preventing at least one particle of the at least one magnetic powder from being disposed in said first space, since the at least one particle of the at least one magnetic powder may penetrate into the at least one first insulating layer and cause a short circuit between said two different portions of the insulated conductive wire.
(39) There are many ways to encapsulate the at least two different portions of the insulated conductive wire with the second insulating material, for example, by dipping an insulating material on the wound insulated wire or spraying an insulating material on the wound insulated wire or soaking the wound insulated wire in an insulating material or dispensing glue on the wound insulated wire or pouring glue on the wound insulated wire so that an outer surface of the coil can be encapsulated by the insulating material for preventing particles of the magnetic powder from penetrating the at least one insulating layer of the wound insulated wire.
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(42) The present invention has many advantages: (1) the coating layer can prevent particles of the magnetic powder that are used to form a magnetic body of the magnetic device from penetrating into the insulating layer of the insulated conductive wire of the coil so that the coil can sustain higher pressure without producing short circuits of the coil when the magnetic powder is pressed to form the magnetic body; (2) the coating layer can prevent the flow of the self-adhesive layer of the insulated conductive during the molding process to form the magnetic body; (3) increase the degree of insulation between the coil and the magnetic powder; (4) enabling the coated coil to sustain higher voltage.
(43) Although the present invention has been described with reference to the above embodiments, it will be apparent to one of ordinary skill in the art that modifications to the described embodiment may be made without departing from the spirit of the invention. Accordingly, the scope of the invention will be defined by the attached claims, not by the above-detailed descriptions.