Coil component
11189418 · 2021-11-30
Assignee
Inventors
Cpc classification
H01F27/06
ELECTRICITY
H01F2017/0073
ELECTRICITY
H01F27/29
ELECTRICITY
H01F27/34
ELECTRICITY
International classification
H01F27/34
ELECTRICITY
H01F27/29
ELECTRICITY
Abstract
Disclosed herein is a coil component that includes first and second coil parts each spirally wound in a plurality of turns in directions opposite to each other. An innermost turn of the first coil part is radially divided into first and second conductor parts by a spiral slit, and at least an innermost turn of the second coil part is radially divided into third and fourth conductor parts by a spiral slit. The first conductor part is positioned radially inward of the second conductor part, and the third conductor part is positioned radially inward of the fourth conductor part. The inner peripheral end of the first conductor part is connected to the inner peripheral end of the fourth conductor part, and the inner peripheral end of the second conductor part is connected to the inner peripheral end of the third conductor part.
Claims
1. A coil component comprising: an insulating film having first and second surfaces opposite to each other; a first coil part formed on the first surface of the insulating film and spirally wound in a plurality of turns; and a second coil part formed on the second surface of the insulating film, laid so as to overlap the first coil part and spirally wound in a plurality of turns in a direction opposite to a winding direction of the first coil part, wherein each of the turns of the first coil part is radially divided into first and second conductor parts by a first spiral slit, and each of the turns of the second coil part is radially divided into third and fourth conductor parts by a second spiral slit, wherein the first conductor part is positioned radially inward of the second conductor part, and the third conductor part is positioned radially inward of the fourth conductor part, and wherein an inner peripheral end of the first conductor part is connected to an inner peripheral end of the fourth conductor part through a first through hole conductor formed so as to penetrate the insulating film, and an inner peripheral end of the second conductor part is connected to an inner peripheral end of the third conductor part through a second through hole conductor formed so as to penetrate the insulating film, wherein each of the first to fourth conductor parts has a circumferential area in which a radial position is not shifted and a transition area in which the radial position is shifted, and wherein line lengths of the transition areas of the first and second conductor parts decrease from an outer side of the first coil part to an inner side of the first coil part and line lengths of the transition areas of the third and fourth conductor parts decrease from an outer side of the second coil part to an inner side of the second coil part.
2. The coil component as claimed in claim 1, wherein the circumferential area of the first conductor part and the circumferential area of the third conductor part overlap each other, and the circumferential area of the second conductor part and the circumferential area of the fourth conductor part overlap each other.
3. The coil component as claimed in claim 1, further comprising a magnetic member having a protruding part, wherein the insulating film have a through hole formed at a portion corresponding to an inner diameter area of each of the first and second coil parts, and wherein the protruding part of the magnetic member is inserted through the through hole of the insulating film.
4. The coil component as claimed in claim 1, wherein a plurality of sets each including the first coil part and second coil part are provided, and wherein the sets are connected in parallel.
5. The coil component as claimed in claim 1, wherein each of the first and second surfaces of the insulating film is a flat.
6. The coil component as claimed in claim 5, wherein the insulating film comprises PET resin.
7. The coil component as claimed in claim 1, wherein a radial position of the second conductor shifts in a first transition section, wherein a radial position of the fourth conductor shifts in a second transition section, and wherein the first and second transition sections cross each other.
8. The coil component as claimed in claim 1, wherein a current direction at the inner peripheral end of the first conductor part flowing into the first through hole conductor is a same as a current direction at the inner peripheral end of the fourth conductor part flowing out from the first through hole conductor, and wherein a current direction at the inner peripheral end of the second conductor part flowing into the second through hole conductor is a same as a current direction at the inner peripheral end of the third conductor part flowing out from the second through hole conductor.
9. A coil component comprising: an insulating film having first and second flat surfaces opposite to each other; a first coil formed on the first flat surface of the insulating film, the first coil including first and second coil conductors extending in a circumferential direction, the second coil conductor being larger in a diameter than the first coil conductor; a second coil formed on the second flat surface of the insulating film, the second coil including third and fourth coil conductors extending in a circumferential direction, the fourth coil conductor being larger in a diameter than the third coil conductor; a first connection conductor connected between the first and fourth coil conductors so as to penetrate the insulating film; and a second connection conductor connected between the second and third coil conductors so as to penetrate the insulating film, wherein each of the first to fourth coil conductors has a circumferential area in which a radial position is not shifted and a transition area in which the radial position is shifted, and wherein line lengths of the transition areas of the first and second coil conductors decrease from an outer side of the first coil to an inner side of the first coil and line lengths of the transition areas of the third and fourth coil conductors decrease from an outer side of the second coil to an inner side of the second coil.
10. The coil component as claimed in claim 9, wherein the first coil has a first electrode electrically connected in common to the first and second coil conductors, and wherein the second coil has a second electrode electrically connected in common to the third and fourth coil conductors.
11. The coil component as claimed in claim 10, wherein the first electrode is positioned at an outermost end of the first coil, and wherein the second electrode is positioned at an outermost end of the second coil.
12. The coil component as claimed in claim 11, wherein the first and second connection conductors are positioned at innermost end of the first and second coils.
13. The coil component as claimed in claim 9, wherein the first and second planes are parallel with each other.
14. The coil component as claimed in claim 9, wherein the insulating film comprises PET resin.
15. A coil component comprising: an insulating film having first and second flat surfaces opposite to each other; a first coil conductor wound in a plurality of turns on the first flat surface of the insulating film; a second coil conductor wound in a plurality of turns on the first flat surface of the insulating film so that the first and second coil conductors are concentrically wound; a third coil conductor wound in a plurality of turns on the second flat surface of the insulating film; a fourth coil conductor wound in a plurality of turns on the second flat surface of the insulating film so that the third and fourth coil conductors are concentrically wound; a first electrode connected in common to outermost ends of the first and second coil conductors; a second electrode connected in common to outermost ends of the third and fourth coil conductors; a first connection conductor connected between innermost ends of the first and fourth coil conductors so as to penetrate the insulating film; and a second connection conductor connected between innermost ends of the second and third coil conductors so as to penetrate the insulating film, wherein each of the first to fourth coil conductors has a circumferential area in which a radial position is not shifted and a transition area in which the radial position is shifted, and wherein line lengths of the transition areas of the first to fourth coil conductors decrease from an outer side to an inner side of the first to fourth coil conductors, respectively.
16. The coil component as claimed in claim 15, wherein the first coil conductor has an innermost turn that is smaller in a diameter than an innermost turn of the second coil conductor, and wherein the third coil conductor has an innermost turn that is smaller in a diameter than an innermost turn of the fourth coil conductor.
17. The coil component as claimed in claim 16, wherein the first coil conductor has an outermost turn that is smaller in a diameter than an outermost turn of the second coil conductor, and wherein the third coil conductor has an outermost turn that is smaller in a diameter than an outermost turn of the fourth coil conductor.
18. The coil component as claimed in claim 15, wherein the insulating film comprises PET resin.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other objects, features and advantages of this invention will become more apparent by reference to the following detailed description of the invention taken in conjunction with the accompanying drawings, wherein:
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(13) Preferred embodiments of the present invention will now be explained in detail with reference to the drawings.
First Embodiment
(14)
(15) As illustrated in
(16) The first and second coil parts 100 and 200 are each constituted by a spiral planar conductor spirally wound in a plurality of turns. The winding directions of the first coil part 100 and second coil part 200 are opposite to each other. Specifically, assuming that the outer peripheral end of the coil part is the starting point, the first coil part 100 is wound in the clockwise direction (right-handed direction), while the second coil part 200 is wound in the counterclockwise direction (left-handed direction). The inner peripheral end of the first coil part 100 and that of the second coil part 200 are connected to each other through first and second through hole conductors TH1 and TH2, thereby constituting one coil.
(17)
(18) As illustrated in
(19) The spiral planar conductor constituting the first coil part 100 has a transition area S1 in which the radial position of the conductor is shifted, and the five turns constituted of the first turn 101 to fifth turn 105 are defined with the transition area S1 as a boundary. The first turn 101 is the outermost turn, and the fifth turn 105 is the innermost turn. A part of each of the turns 101 to 105 other than the transition area S1 is a circumferential area in which the radial position of the conductor is not shifted. The end portion of the first turn 101 constitutes the outer peripheral end of the first coil part 100, and the end portion of the fifth turn 105 constitutes the inner peripheral end of the first coil part 100. The outer peripheral end of the first coil part 100 is connected to a terminal electrode 100A through a lead-out pattern 110. The lead-out pattern 110 does not have the slit.
(20) As illustrated in
(21) The spiral planar conductor constituting the second coil part 200 has a transition area S2 in which the radial position of the conductor is shifted, and the five turns constituted of the first turn 201 to fifth turn 205 are defined with the transition area S2 as a boundary. The first turn 201 is the outermost turn, and the fifth turn 205 is the innermost turn. A part of each of the turns 201 to 205 other than the transition area S2 is a circumferential area in which the radial position of the conductor is not shifted. The end portion of the first turn 201 constitutes the outer peripheral end of the second coil part 200, and the end portion of the fifth turn 205 constitutes the inner peripheral end of the second coil part 200. The outer peripheral end of the second coil part 200 is connected to a terminal electrode 200A through a lead-out pattern 210. The lead-out pattern 210 does not have the slit.
(22) As described above, in the present embodiment, the turns constituting the coil part (first and second coil part 100 or 200) are each radially divided by the slit (slit SL1 or SL2), so that as compared with a case where such a slit is not formed, unevenness of a current density distribution is reduced. As a result, DC resistance and AC resistance can be reduced.
(23) In the present embodiment, as illustrated in
(24) An inner peripheral end C1a of the first conductor part C1 included in the first coil part 100 is connected to an inner peripheral end C4a of the fourth conductor part C4 included in the second coil part 200 through the first through hole conductor TH1. Further, an inner peripheral end C2a of the second conductor part C2 included in the first coil part 100 is connected to an inner peripheral end C3a of the third conductor part C3 included in the second coil part 200 through the second through hole conductor TH2.
(25) With the above configuration, as illustrated in
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(27) As illustrated in
(28) Further, it is possible to place the insulating film 11 having the first and second coil parts 100 and 200 on the front and back surfaces thereof on a substrate which is a magnetic member. In this case, as illustrated in
Second Embodiment
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(30) As illustrated in
(31) With the above configuration, the set A and the set B are connected in parallel, so that as illustrated in
(32) As illustrated in
(33) In the example of
(34) It is apparent that the present invention is not limited to the above embodiments, but may be modified and changed without departing from the scope and spirit of the invention.
(35) For example, in the above embodiments, the first and second coil parts 100 and 200 are formed on the front and back surfaces of the insulating film 11 (14A, 14B); however, the present invention is not limited to this, and a configuration may be adopted, in which the first and second coil parts 100 and 200 are laminated on the same surface of a substrate with an intervention of an interlayer insulating film therebetween so as to separate them.
(36) Further, in the above embodiments, all the turns constituting each of the first and second coil parts 100 and 200 are radially divided by the spiral slit; however, in the present invention, not all the turns need to be radially divided, and it is sufficient to radially divide at least the innermost turn (turn 105, turn 205) by the slit.
(37) Further, in the above embodiments, the turns constituting each of the first and second coil parts 100 and 200 are each divided into two parts by one slit; however, the number of divisions of each turn is not limited to two. That is, each turn may be divided into three or more parts using two or more slits.