This application is based upon and claims the benefit of priority from Japanese Patent Application No. 2021-49136, filed on 23 Mar. 2021, the entire contents of which are incorporated herein by reference.
The present disclosure relates to a multi-layer inductor.
Known in the art is an inductor including a through conductor linearly extending in an element body. Japanese Utility Model Application Laid-Open No. 1984-72708 discloses an inductor including an element body having a pair of end surfaces facing each other, three through conductors extending between the end surfaces, and a pair of external electrodes provided on both the end surfaces of the element body and connected to the respective through conductors.
As in the inductor according to the conventional art described above, in a case where the through conductors are formed into a multiple line (that is, a current flows through each of the plurality of through conductors connected in parallel), a current in a prescribed current value range flows through each of the plurality of through conductors. When a failure such as disconnection occurs in a part of the through conductors, a current exceeding a prescribed current value range (i.e., overcurrent) flows in the remaining through conductors. In this case, the joint surface between the through conductor and the external electrode, which is a region having a relatively high electrical resistance, is overheated, and cutting and/or fusion from the joint surface may occur.
According to an aspect of the present disclosure, a multi-layer inductor with improved reliability is provided.
A multi-layer inductor includes, an element body including a plurality of magnetic material layers stacked and having a pair of end surfaces facing each other, an internal electrode provided in the element body and extending between the pair of end surfaces; and a pair of external electrodes respectively provided on the end surfaces of the element body and connected to the internal electrode exposed on the end surfaces, wherein the internal electrode includes, a plurality of through conductors extending between the end surfaces along a direction in which the pair of end surfaces face each other and having end portions exposed at the end surfaces, and an auxiliary conductor extending between ends of the plurality of through conductors and is exposed at the end surface.
Since the multi-layer inductor includes the auxiliary conductor connected to the external electrode at the end surface of the element body, even when a failure occurs in a part of the through conductor, overheating at the joint surface between the internal electrode and the external electrode is prevented, and cutting and/or fusion starting from the joint surface is prevented. Therefore, high reliability can be achieved.
In the multi-layer inductor according to another aspect, the internal electrode is located in one interlayer of the plurality of magnetic material layers.
In the multi-layer inductor according to another aspect, the internal electrode is located in a plurality of interlayers of the plurality of magnetic material layers.
In the multi-layer inductor according to another aspect, the plurality of through conductors include a pair of through conductors arranged along a stacking direction of the element body.
In the multi-layer inductor according to another aspect, the plurality of through conductors include, a first through conductor and a second through conductor located in the same interlayer of the plurality of magnetic material layers; and a third through conductor and a fourth through conductor located in the same interlayer different from the interlayer in which the first through conductor and the second through conductor are located and aligned with the first through conductor and the second through conductor, respectively, in the stacking direction of the element body.
In the multi-layer inductor according to another aspect, a length of the auxiliary conductor in a first direction orthogonal to a stacking direction of the element body and a facing direction of the pair of end surfaces are 20 to 50% of a length of the element body in the first direction.
In the multi-layer inductor according to another aspect, a length of the auxiliary conductor in a second direction parallel to a direction in which the pair of end surfaces face each other are 2% to 20% of a length of the element body in the second direction.
Hereinafter, embodiments for carrying out the present disclosure will be described with reference to the accompanying drawings. In the description of the drawings, the same or equivalent elements are denoted by the same reference numerals, and redundant description will be omitted.
The configuration of a multi-layer inductor according to an embodiment will be described with reference to
The element body 12 has a substantially rectangular parallelepiped outer shape and includes a pair of end surfaces 12a and 12b facing each other in the extending direction of the element body 12. The element body 12 further includes four side surfaces 12c to 12f extending in the facing direction of the end surface 12a and 12b to connect the end surfaces 12a and 12b to each other. The side surface 12d is a mounting surface facing the mounting substrate when the multi-layer inductor 10 is mounted, and the side surface 12c facing the side surface 12d is a top surface when the multi-layer inductor 10 is mounted. The dimensions of the element body 12 are, for example, 2.5 mm length×2 mm width×0.9 mm thickness, where a dimension in the facing direction of the end faces 12a and 12b is a length (L), a dimension in the facing direction of the side faces 12e and 12f is a width (W), and a dimension in the facing direction of the side faces 12c and 12d is a thickness.
The element body 12 has a configuration in which an internal electrode 20 is provided inside a magnetic body 18. As shown in
The magnetic body 18 is made of a magnetic material such as ferrite. The magnetic body 18 is obtained by stacking and sintering a plurality of magnetic body pastes (for example, ferrite pastes) that become the magnetic material layers 19. That is, the element body 12 has a printed stacking structure in which the magnetic material layers 19 on which the magnetic material paste is printed are stacking, and is a sintered element body in which the sintered magnetic material layers 19 are stacked. The number of magnetic material layers 19 constituting the element body 12 is, for example, 150. In the actual element body 12, the plurality of magnetic material layers 19 are integrated to such an extent that the boundaries between the layers cannot be visually recognized.
As shown in
The internal electrode 20 includes a pair of through conductors 22 and 24 extending along the facing direction of the end surfaces 12a and 12b. The through conductors 22 and 24 extend between the end surfaces 12a and 12b (i.e., from the end surface 12a to the end surface 12b of the element body 12). The through conductor 22 has an end portion 22a on the end surface 12a side and an end portion 22b on the end surface 12b side, and similarly, the through conductor 24 has an end portion 24a on the end surface 12a side and an end portion 24b on the end surface 12b side. The through conductor 22 is exposed to the end surface 12a at the end portion 22a, and is exposed to the end surface 12b at the end portion 22b. Similarly, the through conductor 24 is exposed to the end surface 12a at the end portion 24a, and is exposed to the end surface 12b at the end portion 24b.
In the present embodiment, each of the through conductors 22 and 24 has a slip shape having a uniform width and a uniform height. As shown in
The internal electrode 20 further includes a pair of auxiliary conductors 26 and 28. The auxiliary conductor 26 extends between the end portion 22a of the through conductor 22 and the end portion 24a of the through conductor 24. The auxiliary conductor 28 extends between the end portion 22b of the through conductor 22 and the end portion 24b of the through conductor 24. The auxiliary conductors 26 and 28 are provided integrally with the pair of through conductors 22 and 24. The auxiliary conductors 26 and 28 extend along the end surfaces 12a and 12b and are exposed to the end surfaces 12a and 12b over the entire length in the widthwise direction (the facing direction of the side surfaces 12e and 12t) of the element body 12. In the present embodiment, each of the auxiliary conductors 26 and 28 has a slip shape extending in the widthwise direction of the element body 12, and has a uniform width and a uniform height. In the present embodiment, the auxiliary conductors 26 and 28 have the same dimensions, for example, 0.1 mm length×0.4 mm width×0.1 mm thickness. The lengths of the auxiliary conductors 26 and 28 may be in the range of 0.1 to 1.0 mm.
The pair of external electrodes 14A and 14B are provided on the end surfaces 12a and 12b of the element body 12, respectively. The external electrode 14A covers the entire region of the end surface 12a, and is jointed in direct contact with the through conductors 22 and 24 and the auxiliary conductor 26 of the internal electrode 20 exposed to the end surface 12a. Similarly, the external electrode 14B covers the entire region of the end surface 12b, and is jointed in direct contact with the through conductors 22 and 24 and the auxiliary conductor 28 of the internal electrode 20 exposed to the end surface 12b. In the present embodiment, as shown in
Each of the external electrodes 14A and 14B is formed of one or more electrode layers. A metallic material such as Ag, for example, can be adopted as an electrode material constituting each of the external electrodes 14A and 14B. In the present embodiment, as shown in
In the multi-layer inductor 10 according to the present embodiment, as shown in
In addition, since the joint surface S between the internal electrode 20 and the external electrodes 14A and 14B is enlarged, high connectivity between the internal electrode 20 and the external electrodes 14A and 14B is realized, and a situation in which the internal electrode 20 and the external electrodes 14A and 14B peel off is effectively prevented.
Furthermore, the lengths W 1 of the auxiliary conductors 26 and 28 in the widthwise direction (first direction) of the element body 12 may be 20 to 50% of the length W of the element body 12 in the first direction.
The lengths L1 of the auxiliary conductors 26 and 28 in the facing direction of the end surfaces 12a and 12b (second direction) may be 2 to 20% of the length L of the element body 12 in the second direction.
The internal electrode 20 described above may include a plurality of internal electrodes 20A and 20B as shown in
Also in the configurations shown in
As shown in
Number | Date | Country | Kind |
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2021-049136 | Mar 2021 | JP | national |