Multilayer coil components
The laminated coil component design with overlapping and inclined pad portions addresses the challenge of ensuring reliable electrical connections and compactness by maintaining coil integrity and inner diameter, enhancing stability and yield.
Patent Information
- Application Number
- JP2021194216
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-11-30
- Publication Date
- 2025-12-01
- Estimated Expiration
- 2041-11-30
AI Technical Summary
Existing laminated coil components face challenges in achieving desired coil characteristics while ensuring reliable electrical connections and compactness, as increasing the area of pad portions for connection reliability can reduce the inner diameter of the coil.
The laminated coil component design includes coil conductors with overlapping regions and inclined pad portions that protrude away from the coil axis, allowing for both sufficient contact area and distance from the element body, thereby maintaining coil integrity and compactness.
This design ensures reliable electrical connections and compactness by maintaining the inner diameter of the coil, enabling stable coil arrangement and improved yield.
Smart Images

Figure 0007777966000001 
Figure 0007777966000002 
Figure 0007777966000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to a laminated coil component. [Background technology]
[0002] There is disclosed a laminated coil component including an element body and a coil disposed inside the element body (for example, Patent Document 1). In Patent Document 1, the coil has a coil axis extending in a predetermined direction. The coil includes multiple coil conductors and a connecting conductor that connects adjacent coil conductors. The multiple coil conductors are stacked in the coil axis direction and define the inner circumference of the coil when viewed from the coil axis direction. The multiple coil conductors include pad portions in contact with the connecting conductors and main bodies connected to the pad portions and extending in the circumferential direction of the coil axis. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Utility Model Application Publication No. 06-060114 Summary of the Invention [Problem to be solved by the invention]
[0004] In a laminated coil component having the above-described configuration, it is conceivable to ensure the area of the pad portion in contact with the connecting conductor so as to ensure the reliability of the electrical connection between the pad portion and the connecting conductor. However, the larger the area of the pad portion, the more difficult it becomes to achieve a desired configuration for the laminated coil component.
[0005] For example, when attempting to compact a multilayer coil component, reducing the distance between the side surface of the element body and the coil conductor in the coil axis direction is also considered. In this case, if the distance between the side surface of the element body and the coil conductor is designed without taking manufacturing tolerances into consideration, there is a risk that the pad portion will be exposed from the side surface of the element body during manufacturing. If the distance between the side surface of the element body and the coil conductor is simply increased to prevent the pad portion from being exposed from the side surface of the element body, the inner diameter of the coil will be reduced. If the pad portion protrudes toward the coil axis as viewed in the coil axis direction, as in Patent Document 1, the inner diameter of the coil will be reduced by the amount of the pad portion protruding. Coil characteristics are related to the inner diameter of the coil, and reducing the inner diameter of the coil will change the coil characteristics.
[0006] An object of one aspect of the present invention is to provide a laminated coil component that can achieve desired characteristics in a coil while ensuring the reliability of electrical connection of coil conductors and making the laminated coil component compact. [Means for solving the problem]
[0007] A laminated coil component according to one aspect of the present invention includes an element body and a coil. The coil is disposed inside the element body. The coil has a coil axis extending in a predetermined direction. The coil includes a plurality of coil conductors and at least one connecting conductor. The plurality of coil conductors are stacked in the coil axis direction. The at least one connecting conductor connects adjacent coil conductors in the coil axis direction. The plurality of coil conductors include first, second, and third coil conductors. The first, second, and third coil conductors have overlapping regions as viewed from the coil axis direction and are arranged in order in the coil axis direction. The second coil conductor includes a main body portion and a pad portion. The main body portion extends in the circumferential direction of the coil axis. The pad portion is connected to the main body portion and connected to the first coil conductor via the connecting conductor. The pad portion protrudes away from the coil axis more than the third coil conductor as viewed from the coil axis direction and is inclined with respect to an imaginary plane perpendicular to the coil axis direction.
[0008] In this laminated coil component, the pad portion included in the second coil conductor protrudes from the third coil conductor in a direction away from the coil axis as viewed in the coil axis direction and is inclined with respect to an imaginary plane perpendicular to the coil axis direction. In this case, it is possible to ensure both the area of the pad portion in contact with the connecting conductor and the distance between the side surface of the element body and the coil conductor, while suppressing a reduction in the inner diameter of the coil. By ensuring the area of the pad portion in contact with the connecting conductor and the distance between the side surface of the element body and the coil conductor, it is possible to ensure both the reliability of the electrical connection of the coil conductor and the compactness of the laminated coil component. Therefore, it is possible to achieve desired characteristics in the coil while ensuring the reliability of the electrical connection of the coil conductor and the compactness of the laminated coil component.
[0009] In the above-described one aspect, a part of the pad portion of the second coil conductor may be included in the region of the third coil conductor when viewed in the coil axial direction, which makes it possible to further reduce the size of the laminated coil component while achieving desired coil characteristics.
[0010] In the above aspect, the second coil conductor may further include a pad portion connected to the third coil conductor via a connecting conductor. In this case, the pad portion of the second coil conductor connected to the first coil conductor protrudes beyond the third coil conductor connected to another pad portion. In this case, the laminated coil component can be made even more compact, while ensuring space for arranging the connecting conductor connecting the first coil conductor and the second coil conductor.
[0011] In the above-described one aspect, the pad portion connected to the first coil conductor and the pad portion connected to the third coil conductor may be arranged in line-symmetric or point-symmetric positions in the laminated coil component when viewed in the coil axis direction. In this case, the coils can be stably arranged in the laminated coil component. With this structure, the yield can be improved.
[0012] In one of the above aspects, the coil may include a plurality of pad portions each contacting a different connecting conductor and including a pad portion of the second coil conductor. The plurality of pad portions may be arranged in line-symmetric or point-symmetric positions in the laminated coil component when viewed in the coil axis direction. In this case, the coil can be stably arranged in the laminated coil component. This structure can improve yield.
[0013] In the above-described aspect, the width of the pad portion may be greater than the width of the main body portion, in which case the area of the pad portion in contact with the connecting conductor can be ensured and the reduction in the inner diameter of the coil can be further suppressed.
[0014] In the above-described one aspect, the plurality of coil conductors may be arranged in a ring shape having a plurality of corners when viewed from the coil axis direction, and the pad portion may form one of the corners.
[0015] In the above-described one aspect, the pad portion of the second coil conductor may overlap a corner of the third coil conductor. The radius of curvature of the corner formed by the pad portion of the second coil conductor may be smaller than the radius of curvature of the portion of the third coil conductor that overlaps with the pad portion of the second coil conductor as viewed in the coil axial direction. In this case, it is easier to ensure the area of the pad portion in contact with the connecting conductor and to prevent a reduction in the inner diameter of the coil. [Effects of the Invention]
[0016] One aspect of the present invention provides a laminated coil component that can achieve desired characteristics in the coil while ensuring the reliability of electrical connection of coil conductors and making the laminated coil component compact. [Brief explanation of the drawings]
[0017] [Figure 1] FIG. 1 is a perspective view of a laminated coil component according to an embodiment of the present invention. [Figure 2] FIG. 2 is a cross-sectional view of the laminated coil component. [Figure 3]1A to 1H are diagrams showing some of the layers constituting the laminated coil component. [Figure 4] FIG. 2 is a partial cross-sectional view of the laminated coil component. [Figure 5] 10(a) to 10(d) are diagrams showing some of the layers constituting a laminated coil component according to a modified example of the present embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0018] Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings. In the description of the drawings, the same or equivalent elements are designated by the same reference numerals, and redundant description will be omitted.
[0019] First, a schematic configuration of a laminated coil component 1 according to this embodiment will be described with reference to FIGS. 1 to 4. FIG. 1 is a perspective view of the laminated coil component 1 according to this embodiment. The X-axis direction, the Y-axis direction, and the Z-axis direction intersect with one another. The laminated coil component according to this embodiment is formed by laminating multiple layers in the Z-axis direction. The boundaries between the layers are integrated to the extent that they are not visible. In this embodiment, the X-axis direction, the Y-axis direction, and the Z-axis direction are perpendicular to one another.
[0020] As shown in FIG. 1 , the laminated coil component 1 includes an element body 2 and external electrodes 3 and 4. For example, if the external electrode 3 is a first external electrode, the external electrode 4 corresponds to a second external electrode. The laminated coil component 1 is mounted, for example, by soldering to an electronic device. The electronic device includes, for example, a circuit board or an electronic component. In this embodiment, the element body 2 is formed by a plurality of element body layers stacked in the Z-axis direction.
[0021] The element body 2 has, for example, insulating properties. The element body 2 is made of, for example, a magnetic material. The magnetic material includes, for example, at least one selected from a Ni-Cu-Zn ferrite material, a Ni-Cu-Zn-Mg ferrite material, and a Ni-Cu ferrite material. The magnetic material that makes up the element body 2 may include an Fe alloy or the like. The element body 2 may be made of a non-magnetic material. The non-magnetic material includes, for example, at least one selected from a glass ceramic material and a dielectric material.
[0022] The element body 2 has, for example, a rectangular parallelepiped shape. The rectangular parallelepiped shape includes a rectangular parallelepiped shape with chamfered corners and ridges, and a rectangular parallelepiped shape with rounded corners and ridges. The shape of the element body 2 is not limited to a rectangular parallelepiped shape. For example, the element body 2 may have a cylindrical shape.
[0023] The element body 2 has, as its outer surfaces, a pair of end faces 2a and 2b, a pair of side faces 2c and 2d, and a pair of side faces 2e and 2f. For example, the area of each of the side faces 2e and 2f is larger than the area of any of the end face 2a, the end face 2b, the side face 2c, and the side face 2d. For example, the pair of end faces 2a and 2b, the pair of side faces 2c and 2d, and the pair of side faces 2e and 2f are each flat.
[0024] The pair of end faces 2a, 2b face each other in the Z-axis direction. The pair of side faces 2c, 2d face each other in the X-axis direction. The pair of side faces 2e, 2f face each other in the Y-axis direction. The element body 2 has, for example, a length in the X-axis direction that is smaller than its length in the Z-axis direction. The element body 2 has, for example, a length in the X-axis direction that is smaller than its lengths in the Z-axis and Y-axis directions. The length ratios of the element body 2 in the X-axis, Y-axis, and Z-axis directions are not limited to these. The Z-axis direction is, for example, the longitudinal direction.
[0025] The pair of external electrodes 3, 4 are arranged spaced apart from each other on the outer surface of the element body 2. The pair of external electrodes 3, 4 face each other in the Z-axis direction. The pair of external electrodes 3, 4 are spaced apart from each other in the Z-axis direction.
[0026] The pair of external electrodes 3, 4 are formed by a known method. The pair of external electrodes 3, 4 are made of, for example, a metal material. The metal material is, for example, copper, silver, gold, nickel, or chromium. The pair of external electrodes 3, 4 are formed, for example, by plating an electrode layer. The electrode layer is made of, for example, a conductive paste. The conductive paste is applied, for example, by a dipping method, a printing method, or a transfer method. The plating method is, for example, electrolytic plating or electroless plating. This plating method forms a plating layer on the outer surface of the conductive paste.
[0027] The external electrode 3 includes, for example, portions 3a, 3b, and 3c. The portion 3a of the external electrode 3 is provided on the end face 2a. The portion 3b of the external electrode 3 is provided on a pair of side faces 2c and 2d. The portion 3c of the external electrode 3 is provided on a pair of side faces 2e and 2f. The portion 3a of the external electrode 3 covers, for example, the entire end face 2a. The portions 3b and 3c of the external electrode 3 cover, for example, the pair of side faces 2c and 2d and parts of the pair of side faces 2e and 2f. The portion 3a of the external electrode 3 is connected to the portions 3b and 3c of the external electrode 3.
[0028] On each of the side surfaces 2c and 2d, the area covered by the portion 3b of the external electrode 3 has, for example, a rectangular shape. On each of the side surfaces 2e and 2f, the area covered by the portion 3c of the external electrode 3 has, for example, a rectangular shape. In this specification, "connected" means connected in a state of direct contact. "Directly contacting" means connected to each other without going through other members shown in this specification. "Directly contacting" does not exclude connection via members not explicitly shown in this specification.
[0029] The external electrode 4 includes, for example, portions 4a, 4b, and 4c. The portion 4a of the external electrode 4 is provided on the end face 2b. The portion 4b of the external electrode 4 is provided on a pair of side faces 2c and 2d. The portion 4c of the external electrode 4 is provided on a pair of side faces 2e and 2f. The portion 4a of the external electrode 4 covers, for example, the entire end face 2b. The portions 4b and 4c of the external electrode 4 cover, for example, the pair of side faces 2c and 2d and parts of the pair of side faces 2e and 2f. The portion 4a of the external electrode 4 is connected to the portions 4b and 4c of the external electrode 4. On each of the side faces 2c and 2d, the area covered by the portion 4b of the external electrode 4 has, for example, a rectangular shape. On each of the side faces 2e and 2f, the area covered by the portion 4c of the external electrode 4 has, for example, a rectangular shape.
[0030] The laminated coil component 1 further includes a coil 10 disposed inside the element body 2, as shown in FIG. 2, FIGS. 3(a) to 3(h), and FIG. 4. The coil 10 has a coil axis AX extending in the Z-axis direction. That is, the Z-axis direction corresponds to the coil axis direction. FIG. 2 is a cross-sectional view of the laminated coil component taken along a plane parallel to the XY-axis plane. FIGS. 3(a) to 3(h) show some of the layers constituting the laminated coil component 1. FIG. 4 is a cross-sectional view of the laminated coil component taken along a plane parallel to the YZ-axis plane. The position of the cross section shown in FIG. 4 corresponds to the position of the cross section taken along line IV-IV of the laminated coil component 1 shown in FIG. 2.
[0031] The coil 10 includes a plurality of coil conductors 7 and at least one connecting conductor 8. The coil conductor 7 corresponds to an internal conductor layer. The connecting conductor 8 is, for example, a via. For example, the coil 10 is formed by a plurality of coil conductors 7 and a plurality of connecting conductors 8. The coil 10 electrically connects the external electrode 3 and the external electrode 4. In other words, the pair of external electrodes 3, 4 are electrically connected to each other via the plurality of coil conductors 7. At least two of the plurality of connecting conductors 8 included in the coil 10 overlap when viewed from the Z-axis direction. In this specification, "overlapping" means having an overlapping region, and includes cases where only a portion of the conductors overlap.
[0032] As shown in Fig. 2, the multiple coil conductors 7 are stacked in the Z-axis direction. A connecting conductor 8 penetrates the element body 2 located between the pair of coil conductors 7, connecting the pair of coil conductors 7 adjacent to each other in the Z-axis direction. The multiple coil conductors 7 are electrically connected to each other via the multiple connecting conductors 8. The multiple coil conductors 7 and the multiple connecting conductors 8 are made of a conductive material. The conductive material includes, for example, at least one selected from Ag and Pd.
[0033] The multiple coil conductors 7 define an inner circumference 10a and an outer circumference 10b of the coil 10 when viewed from the Z-axis direction. At least two of the multiple coil conductors 7 included in the coil 10 have overlapping regions when viewed from the Z-axis direction. In this embodiment, each coil conductor 7 includes a pad portion 11 and a main body portion 12. The main body portion 12 extends in the circumferential direction of the coil axis AX. The pad portion 11 and the main body portion 12 included in the same coil conductor 7 are connected to each other.
[0034] The pad portion 11 and the connecting conductor 8 are in contact with each other. The pad portion 11 is connected via the connecting conductor 8 to the pad portion 11 of the coil conductor 7 adjacent to the coil conductor 7 including the pad portion 11. When viewed from the Z-axis direction, the pad portion 11 only partially overlaps with the main body portion 12 of the coil conductor 7 adjacent to the coil conductor 7 including the pad portion 11. When viewed from the Z-axis direction, the pad portion 11 protrudes further than the coil conductor 7 adjacent to the coil conductor 7 including the pad portion 11 in a direction away from the coil axis AX. When viewed from the Z-axis direction, the pad portion 11 includes a protruding portion that protrudes further than the coil conductor 7 adjacent to the coil conductor 7 including the pad portion 11 in a direction away from the coil axis AX, and an overlapping portion that overlaps the coil conductor 7 adjacent to the coil conductor 7 including the pad portion 11. When viewed from the Z-axis direction, the length by which the pad portion 11 protrudes from the adjacent coil conductor 7 in the direction away from the coil axis AX is greater than the length by which the pad portion 11 protrudes from the adjacent coil conductor 7 in the direction approaching the coil axis AX.
[0035] As shown in FIG. 4 , at least one of the multiple pads 11 included in the coil 10 is inclined with respect to an imaginary plane perpendicular to the Z-axis direction. Hereinafter, a pad inclined with respect to an imaginary plane perpendicular to the Z-axis direction will also be referred to as an "inclined pad." The "imaginary plane" corresponds to the XY-axis plane. For example, the pad 11 inclined with respect to this imaginary plane is inclined in the Z-axis direction so as to move away from the pad 11 connected to the pad 11 via the connecting conductor 8 as it moves away from the coil axis AX. For example, the protruding portion of the pad 11 is inclined so as to be farther away from the pad 11 connected to the pad 11 via the connecting conductor 8 than the overlapping portion of the pad 11.
[0036] The multiple coil conductors 7 are arranged, for example, in a ring shape having multiple corners 15 when viewed from the Z-axis direction. In other words, the multiple coil conductors 7 have polygonal inner and outer peripheries when viewed from the Z-axis direction. The element body 2 surrounded by the multiple coil conductors 7 has a polygonal shape when viewed from the Z-axis direction. In the configuration shown in FIG. 2 , the multiple coil conductors 7 are arranged in a ring shape having four corners 15 when viewed from the Z-axis direction, and the element body 2 surrounded by the multiple coil conductors 7 has a rectangular shape when viewed from the Z-axis direction. In this embodiment, the pad portion 11 forms one of the multiple corners 15. The inclined pad portion forms one of the multiple corners 15. The main body portion 12 forms at least one of the multiple corners 15.
[0037] In this embodiment, the corners 15 of each coil conductor 7 are curved. The corners 17 formed by the pad portions 11 are curved. The corners 18 formed by the main body portions 12 are curved. The pad portions 11 overlap the corners 18. When viewed from the Z-axis direction, the corners 17 of the overlapping pad portions 11 and the main body portions 12 protrude further away from the coil axis AX than the corners 18. The radius of curvature of the corners 17 formed by the pad portions 11 is smaller than the radius of curvature of the corners 15 formed by the main body portions 12. For example, the corners 17 of the pad portions 11 are inclined in the Z-axis direction so as to be farther away from the pad portion 11 connected to the pad portion 11 via the connecting conductor 8 than the portion of the pad portion 11 that is located closer to the coil axis AX than the corners 17.
[0038] The width W1 of the pad portion 11 is larger than the width W2 of the main body portion 12. The width W1 of the pad portion 11 is the length of the pad portion 11 in the width direction. The width W2 of the main body portion 12 is the length of the main body portion 12 in the width direction. The width direction is, for example, a direction perpendicular to the extension direction of each coil conductor 7 and the Z-axis direction. The extension direction of each coil conductor 7 is the direction in which the main body portion 12 of each coil conductor 7 is continuous. In other words, the width W1 of the pad portion 11 and the width W2 of the main body portion 12 are each the lengths in a direction perpendicular to the direction in which the coil conductor 7 is continuous in a small region of the coil conductor 7 as seen from the Z-axis direction.
[0039] In this embodiment, each coil conductor 7 includes a pair of pad portions 11 connected to both ends of a main body portion 12. The pair of pad portions 11 includes a pad portion 11a and a pad portion 11b. The pad portion 11a and the pad portion 11b are each in contact with a connecting conductor 8. Of the multiple coil conductors 7, the pad portion 11a and the pad portion 11b of coil conductors 7 adjacent to each other in the Z-axis direction are connected to each other by the connecting conductor 8. The main body portion 12 is connected to the pair of pad portions 11a and 11b included in one coil conductor 7. The pad portion 11a is connected to one end of the main body portion 12, and the pad portion 11b is connected to the other end of the main body portion 12.
[0040] The pad portions 11a and 11b have a rectangular shape when viewed from the Z-axis direction, for example. The term "rectangular" includes a shape with rounded corners or a shape with chamfered corners. The shape of the pad portions 11a and 11b does not have to be rectangular. As a modification of this embodiment, the pad portions 11a and 11b may have a circular shape when viewed from the Z-axis direction, for example.
[0041] Of the multiple pads 11 included in the coil 10, the pads 11 that are in contact with different connecting conductors 8 are arranged, for example, in line-symmetric or point-symmetric positions in the laminated coil component 1 when viewed from the Z-axis direction. In this embodiment, the pads 11a and 11b included in the same coil conductor 7 are arranged in line-symmetric or point-symmetric positions in the laminated coil component 1 when viewed from the Z-axis direction.
[0042] Next, the structure of the coil 10 will be described in more detail with reference to FIGS. 3(a) to 3(h). As shown in FIGS. 3(a) to 3(h), the laminated coil component 1 includes multiple layers 1a, 1b, 1c, 1d, 1e, 1f, 1g, and 1h. Each of the layers 1a to 1h has a rectangular shape in a plan view. The thickness direction of each of the layers 1a to 1h corresponds to the Z-axis direction. In the laminated coil component 1, the layers 1a, 1b, 1c, 1d, 1e, and 1f are stacked in this order from the end face 2a side. Furthermore, in the laminated coil component 1, the layers 1c, 1d, 1e, 1f, 1g, and 1h are stacked in this order from the end face 2a side. For example, the laminated coil component 1 is formed by stacking, in order from the end face 2a side, three layers 1a, one layer 1b, multiple sets each consisting of a layer 1c, a layer 1d, a layer 1e, and a layer 1f, one layer 1g, and three layers 1h. For example, in the laminated coil component 1, 13 sets each consisting of a layer 1c, a layer 1d, a layer 1e, and a layer 1f are repeatedly stacked. With this configuration, the coil 10 has a spiral structure that progresses counterclockwise along the coil axis AX in the +Z-axis direction.
[0043] The multilayer coil component 1 includes a plurality of internal terminal layers 20 in addition to an element body 2, a plurality of coil conductors 7, and a plurality of connecting conductors 8. The internal terminal layers 20 are internal conductors disposed inside the element body 2, and are formed, for example, from the same material as the coil conductors 7 and the connecting conductors 8.
[0044] The element body 2 constitutes part of a plurality of layers 1a to 1h. The element body 2 includes a plurality of element layers 9a to 9h stacked in the Z-axis direction. The plurality of element layers 9a to 9h are, for example, ceramic sheets. The element body 2 is formed, for example, by heat treating a plurality of stacked green sheets. The heat treatment temperature is, for example, about 850 to 900°C.
[0045] The multiple coil conductors 7 include coil conductors 21, 22, 23, and 24 that are spaced apart from one another. The multiple coil conductors 21, 22, 23, and 24 are arranged in the Z-axis direction in the order of coil conductor 21, coil conductor 22, coil conductor 23, and coil conductor 24. The multiple coil conductors 21, 22, 23, and 24 are arranged so as to overlap one another when viewed from the Z-axis direction. In other words, the multiple coil conductors 21, 22, 23, and 24 have a region R where they overlap one another when viewed from the Z-axis direction. When coil conductor 24 corresponds to the first coil conductor, coil conductor 21 corresponds to the second coil conductor, and coil conductor 22 corresponds to the third coil conductor.
[0046] At least one connecting conductor 8 includes connecting conductors 31, 32, 33, 34, and 35 that are spaced apart from one another. The connecting conductor 31 connects the pad portion 11 of the internal terminal layer 20 on the layer 1b to the pad portion 11a of the coil conductor 21. The connecting conductor 32 connects the pad portion 11b of the coil conductor 21 to the pad portion 11a of the coil conductor 22. The connecting conductor 33 connects the pad portion 11b of the coil conductor 22 to the pad portion 11a of the coil conductor 23. The connecting conductor 34 connects the pad portion 11b of the coil conductor 23 to the pad portion 11a of the coil conductor 24. When the layer 1f is adjacent to the layer 1g, the connecting conductor 35 connects the pad portion 11b of the coil conductor 24 to the pad portion 11 of the internal terminal layer 20 on the layer 1g. The connecting conductor 35 connects the pad portion 11b of the coil conductor 24 and the pad portion 11a of the coil conductor 21 when the layer 1f is adjacent to the layer 1c.
[0047] In this embodiment, at least one connecting conductor 8 includes a plurality of connecting conductors 32, a plurality of connecting conductors 33, a plurality of connecting conductors 34, and a plurality of connecting conductors 35. For example, the connecting conductors 32, 33, 34, and 35 are arranged so as to overlap with the connecting conductors 32, 33, 34, and 35, which are connected to coil conductors having the same pattern but arranged at different positions from each other, as viewed in the Z-axis direction. For example, the connecting conductors 33 are connected to coil conductors 22 having the same pattern but arranged at different positions from each other, and are arranged so as to overlap with each other as viewed in the Z-axis direction. The connecting conductors 31 and 35 are arranged so as to overlap with each other as viewed in the Z-axis direction.
[0048] The multiple coil conductors 7 constitute parts of the multiple layers 1c to 1f. The multiple internal terminal layers 20 constitute parts of the multiple layers 1a, 1b, 1g, and 1h. The multiple coil conductors 7 and the multiple internal terminal layers 20 are stacked in the Z-axis direction. The multiple connecting conductors 8 connect the coil conductors 7 or the internal terminal layers 20 in the adjacent layers 1a to 1h.
[0049] In each of the layers 1a to 1h, the coil conductor 7 and the internal terminal layer 20 are surrounded by the element layers 9a to 9h when viewed from the Z-axis direction. In adjacent layers 1a to 1h, the coil conductor 7 and the internal terminal layer 20 are arranged so that they at least partially overlap each other when viewed from the Z-axis direction. The coil conductor 7 and the internal terminal layer 20 are arranged at a distance from the end faces 2a and 2b, the side faces 2c and 2d, and the side faces 2e and 2f.
[0050] In the laminated coil component 1, the layer 1a is composed of an element layer 9a and an internal terminal layer 20. The element layer 9a has a shape corresponding to the shape of the internal terminal layer 20 and is provided with a recess into which the internal terminal layer 20 is fitted. In the layer 1a, the internal terminal layer 20 has, for example, a circular shape when viewed from the Z-axis direction.
[0051] In the laminated coil component 1, the layer 1b is composed of an element layer 9b and an internal terminal layer 20. The element layer 9b has a shape corresponding to the shape of the internal terminal layer 20, and is provided with a recess into which the internal terminal layer 20 is fitted. In the layer 1b, the internal terminal layer 20 includes a pad portion 11 similar to the coil conductor 7. In the layer 1b, the internal terminal layer 20 extends in a direction intersecting the X-axis and Y-axis in the XY-axis plane. One end of the internal terminal layer 20 in the layer 1b is connected to the internal terminal layer 20 in the layer 1a via a connecting conductor 8. The pad portion 11 is disposed at the other end of the internal terminal layer 20 in the layer 1b. When viewed from the Z-axis direction, the pad portion 11 of the internal terminal layer 20 in the layer 1b overlaps with the pad portion 11a of the coil conductor 21, the pad portion 11b of the coil conductor 24, and the pad portion 11 of the internal terminal layer 20 in the layer 1g. When viewed from the Z-axis direction, a portion of the pad portion 11 of the internal terminal layer 20 on the layer 1b overlaps with the main body portions 12 of the coil conductors 22 and 23. In other words, when viewed from the Z-axis direction, a portion of the pad portion 11 of the internal terminal layer 20 on the layer 1b is included in the region R of the coil conductors 22 and 23.
[0052] In the laminated coil component 1, the layer 1c is composed of a body layer 9c and a coil conductor 21. The body layer 9c has a shape corresponding to the shape of the coil conductor 21 and is provided with a recess into which the coil conductor 21 is fitted. When viewed from the Z-axis direction, the body portion 12 of the coil conductor 21 has a U-shape that opens in the +X-axis direction. In the coil conductor 21, the pad portion 11a and the pad portion 11b are arranged in order in the +Y-axis direction and are connected to both ends of the body portion 12. The pad portion 11a of the coil conductor 21 is connected to the pad portion 11 of the layer 1b via a connecting conductor 31.
[0053] When viewed from the Z-axis direction, the pad portion 11a of the coil conductor 21 overlaps with the pad portion 11 of the internal terminal layer 20 on the layer 1b, the pad portion 11b of the coil conductor 24, and the pad portion 11 of the internal terminal layer 20 on the layer 1g. When viewed from the Z-axis direction, a portion of the pad portion 11a of the coil conductor 21 overlaps with the main body portions 12 of the coil conductors 22 and 23. When viewed from the Z-axis direction, a portion of the pad portion 11a of the coil conductor 21 is included in the region R of the coil conductors 22 and 23. When viewed from the Z-axis direction, a portion of the pad portion 11b of the coil conductor 21 overlaps with the main body portions 12 of the coil conductors 23 and 24. When viewed from the Z-axis direction, a portion of the pad portion 11b of the coil conductor 21 is included in the region R of the coil conductors 23 and 24.
[0054] When viewed from the Z-axis direction, pad portion 11a of coil conductor 21 overlaps with corner 18 of coil conductor 22. The radius of curvature of corner 17 formed by pad portion 11a of coil conductor 21 is smaller than the radius of curvature of corner 18 of coil conductor 22 that overlaps with pad portion 11a of coil conductor 21 when viewed from the Z-axis direction. Pad portion 11b of coil conductor 21 overlaps with corner 18 of coil conductor 24 when viewed from the Z-axis direction. The radius of curvature of corner 17 formed by pad portion 11b of coil conductor 21 is smaller than the radius of curvature of corner 18 of coil conductor 24 that overlaps with pad portion 11b of coil conductor 21 when viewed from the Z-axis direction.
[0055] In the laminated coil component 1, the layer 1d is composed of a body layer 9d and a coil conductor 22. The body layer 9d has a shape corresponding to the shape of the coil conductor 22 and is provided with a recess into which the coil conductor 22 is fitted. When viewed from the Z-axis direction, the body portion 12 of the coil conductor 22 has a U-shape that opens in the +Y-axis direction. In the coil conductor 22, the pad portion 11a and the pad portion 11b are arranged in order in the −X-axis direction and are connected to both ends of the body portion 12. The pad portion 11a of the coil conductor 22 is connected to the pad portion 11b of the layer 1c via a connecting conductor 32.
[0056] When viewed from the Z-axis direction, the pad portion 11a of the coil conductor 22 overlaps with the pad portion 11b of the coil conductor 21. When viewed from the Z-axis direction, a portion of the pad portion 11a of the coil conductor 22 overlaps with the main body portions 12 of the coil conductors 23 and 24. In other words, when viewed from the Z-axis direction, a portion of the pad portion 11a of the coil conductor 22 is included in the region R of the coil conductors 23 and 24. When viewed from the Z-axis direction, a portion of the pad portion 11b of the coil conductor 22 overlaps with the main body portions 12 of the coil conductors 21 and 24. In other words, when viewed from the Z-axis direction, a portion of the pad portion 11b of the coil conductor 22 is included in the region R of the coil conductors 21 and 24.
[0057] When viewed from the Z-axis direction, pad portion 11a of coil conductor 22 overlaps with corner 18 of coil conductor 23. The radius of curvature of corner 17 formed by pad portion 11a of coil conductor 22 is smaller than the radius of curvature of corner 18 of coil conductor 23 that overlaps with pad portion 11a of coil conductor 22 when viewed from the Z-axis direction. Pad portion 11b of coil conductor 22 overlaps with corner 18 of coil conductor 21 when viewed from the Z-axis direction. The radius of curvature of corner 17 formed by pad portion 11b of coil conductor 22 is smaller than the radius of curvature of corner 18 of coil conductor 21 that overlaps with pad portion 11b of coil conductor 22 when viewed from the Z-axis direction.
[0058] In the laminated coil component 1, the layer 1e is composed of a body layer 9e and a coil conductor 23. The body layer 9e has a shape corresponding to the shape of the coil conductor 23 and is provided with a recess into which the coil conductor 23 is fitted. When viewed from the Z-axis direction, the body portion 12 of the coil conductor 23 has a U-shape that opens in the −X-axis direction. In the coil conductor 23, the pad portion 11a and the pad portion 11b are arranged in order in the −Y-axis direction and are connected to both ends of the body portion 12. The pad portion 11a of the coil conductor 23 is connected to the pad portion 11b of the layer 1d via a connecting conductor 33.
[0059] When viewed from the Z-axis direction, the pad portion 11a of the coil conductor 23 overlaps with the pad portion 11b of the coil conductor 22. When viewed from the Z-axis direction, a portion of the pad portion 11a of the coil conductor 23 overlaps with the main body portions 12 of the coil conductors 21 and 24. In other words, when viewed from the Z-axis direction, a portion of the pad portion 11a of the coil conductor 23 is included in the region R of the coil conductors 21 and 24. When viewed from the Z-axis direction, a portion of the pad portion 11b of the coil conductor 23 overlaps with the main body portions 12 of the coil conductors 21 and 22. In other words, when viewed from the Z-axis direction, a portion of the pad portion 11b of the coil conductor 23 is included in the region R of the coil conductors 21 and 22.
[0060] When viewed from the Z-axis direction, pad portion 11a of coil conductor 23 overlaps with corner 18 of coil conductor 24. The radius of curvature of corner 17 formed by pad portion 11a of coil conductor 23 is smaller than the radius of curvature of corner 18 of coil conductor 24 that overlaps with pad portion 11a of coil conductor 23 when viewed from the Z-axis direction. Pad portion 11b of coil conductor 23 overlaps with corner 18 of coil conductor 22 when viewed from the Z-axis direction. The radius of curvature of corner 17 formed by pad portion 11b of coil conductor 23 is smaller than the radius of curvature of corner 18 of coil conductor 22 that overlaps with pad portion 11b of coil conductor 23 when viewed from the Z-axis direction.
[0061] In the laminated coil component 1, the layer 1f is composed of a body layer 9f and a coil conductor 24. The body layer 9f has a shape corresponding to the shape of the coil conductor 24 and is provided with a recess into which the coil conductor 24 is fitted. When viewed from the Z-axis direction, the body portion 12 of the coil conductor 24 has a U-shape that opens in the -Y-axis direction. In the coil conductor 24, the pad portion 11a and the pad portion 11b are arranged in order in the +X-axis direction and are connected to both ends of the body portion 12. The pad portion 11a of the coil conductor 24 is connected to the pad portion 11b of the layer 1e via a connecting conductor 34.
[0062] When viewed from the Z-axis direction, the pad portion 11a of the coil conductor 24 overlaps with the pad portion 11b of the coil conductor 23. When viewed from the Z-axis direction, a portion of the pad portion 11a of the coil conductor 24 overlaps with the main body portions 12 of the coil conductors 21 and 22. In other words, when viewed from the Z-axis direction, a portion of the pad portion 11a of the coil conductor 24 is included in the region R of the coil conductors 21 and 22. When viewed from the Z-axis direction, a portion of the pad portion 11b of the coil conductor 24 overlaps with the main body portions 12 of the coil conductors 22 and 23. In other words, when viewed from the Z-axis direction, a portion of the pad portion 11b of the coil conductor 24 is included in the region R of the coil conductors 22 and 23.
[0063] When viewed from the Z-axis direction, the pad portion 11a of the coil conductor 24 overlaps with the corner 18 of the coil conductor 21. The radius of curvature of the corner 17 formed by the pad portion 11a of the coil conductor 24 is smaller than the radius of curvature of the corner 18 of the coil conductor 21 that overlaps with the pad portion 11a of the coil conductor 24 when viewed from the Z-axis direction. When viewed from the Z-axis direction, pad portion 11b of coil conductor 24 overlaps corner 18 of coil conductor 23. The radius of curvature of corner 17 formed by pad portion 11b of coil conductor 24 is smaller than the radius of curvature of corner 18 of coil conductor 23 that overlaps pad portion 11b of coil conductor 24 when viewed from the Z-axis direction.
[0064] In the laminated coil component 1, the layer 1g is composed of an element layer 9g and an internal terminal layer 20. The element layer 9g has a shape corresponding to the shape of the internal terminal layer 20 and is provided with a recess into which the internal terminal layer 20 is fitted. In the layer 1g, the internal terminal layer 20 includes a pad portion 11 similar to the coil conductor 7. In the layer 1g, the internal terminal layer 20 extends in a direction intersecting the X-axis and Y-axis in the XY-axis plane. The pad portion 11 is disposed at one end of the internal terminal layer 20 in the layer 1g, and this pad portion 11 is connected to the pad portion 11b of the layer 1f via a connecting conductor 35. When viewed from the Z-axis direction, the pad portion 11 of the internal terminal layer 20 in the layer 1g overlaps with the pad portion 11a of the coil conductor 21, the pad portion 11b of the coil conductor 24, and the pad portion 11 of the internal terminal layer 20 in the layer 1b. When viewed from the Z-axis direction, a portion of the pad portion 11 of the internal terminal layer 20 on the layer 1g overlaps with the main body portions 12 of the coil conductors 22 and 23. In other words, when viewed from the Z-axis direction, the pad portion 11 of the internal terminal layer 20 on the layer 1g is included in the region R of the coil conductors 22 and 23.
[0065] In the laminated coil component 1, the layer 1h is composed of an element layer 9h and an internal terminal layer 20. The element layer 9h has a shape corresponding to the shape of the internal terminal layer 20 and is provided with a recess into which the internal terminal layer 20 is fitted. In the layer 1h, the internal terminal layer 20 has, for example, a circular shape when viewed from the Z-axis direction. The internal terminal layer 20 of the layer 1h is connected to the pad portion 11 of the layer 1g via a connecting conductor 8.
[0066] FIG. 4 is a cross-sectional view of the laminated coil component 1 taken parallel to the YZ-axis plane and passing through the connecting conductor 35. In the configuration shown in FIG. 4, the pad portion 11b of the coil conductor 21 protrudes from the coil conductor 22 in the −Y-axis direction, away from the coil axis AX, as viewed from the Z-axis direction. As viewed from the Z-axis direction, the length by which the pad portion 11 of the coil conductor 21 protrudes from the coil conductor 23 in the direction away from the coil axis AX is greater than the length by which the pad portion 11 of the coil conductor 21 protrudes from the coil conductor 23 in the direction toward the coil axis AX. The pad portion 11a of the coil conductor 21 is inclined with respect to an imaginary plane perpendicular to the Z-axis direction. In FIG. 4, the pad portion 11b of the coil conductor 24, which is connected to the pad portion 11a of the coil conductor 21 via the connecting conductor 35, extends along an imaginary plane perpendicular to the Z-axis direction.
[0067] As a modification of the configuration shown in Fig. 4, the pad portion 11b of the coil conductor 24, which is connected to the pad portion 11a of the coil conductor 21 via the connecting conductor 35, may be inclined with respect to an imaginary plane perpendicular to the Z-axis direction. In this modification, the pad portion 11a of the coil conductor 21 may extend along an imaginary plane perpendicular to the Z-axis direction. Both the pad portion 11a and the pad portion 11b, which are connected to each other by the connecting conductor 35, may be inclined with respect to an imaginary plane perpendicular to the Z-axis direction. The pad portions 11 of the coil conductors 22, 23, and 24 may have a similar configuration.
[0068] Next, a laminated coil component according to a modification of this embodiment will be described with reference to Figs. 5(a) to 5(d). Figs. 5(a) to 5(d) are views showing some of the layers constituting the laminated coil component according to the modification of this embodiment. This modification is generally similar to or the same as the laminated coil component 1 described above. This modification differs from the embodiment described above in terms of the shape of the coil conductors 7 in layers 1c to 1f. Below, differences from the laminated coil component 1 described above will be mainly described. Figs. 5(a) to 5(d) show layers 1c to 1f, which correspond to the layers shown in Figs. 3(c) to 3(f), respectively.
[0069] In this modification, the multiple coil conductors 7 include coil conductors 41, 42, 43, and 44 that are spaced apart from one another. The coil conductors 41, 42, 43, and 44 correspond to the coil conductors 21, 22, 23, and 24, respectively. The coil conductors 41, 42, 43, and 44 each include a corner 15, which is a corner 17 formed by the pad portion 11 and a corner 58 formed by the main body portion 12. The corner 58 has a chamfered shape. When viewed from the Z-axis direction, the corner 58 has a linear shape extending in a direction inclined with respect to the X-axis and Y-axis. In other words, the corner 58 has a linear shape extending in a direction inclined with respect to the X-axis and Y-axis within the XY-axis plane.
[0070] Next, a description will be given of the effects of the laminated coil component 1 in this embodiment and its modifications. In the laminated coil component 1, the pad portion 11 of the coil conductor 7 protrudes further than the other coil conductors 7 in a direction away from the coil axis AX when viewed from the Z-axis direction, and is inclined with respect to an imaginary plane perpendicular to the Z-axis direction.
[0071] For example, in the laminated coil component 1, the pad portion 11 of the coil conductor 21 protrudes more than the coil conductor 23 in a direction away from the coil axis AX when viewed from the Z-axis direction and is inclined with respect to an imaginary plane perpendicular to the Z-axis direction. In this case, it is possible to both ensure the area of the pad portion 11 in contact with the connecting conductor 8 and ensure the distance between the end faces 2a, 2b and side faces 2e, 2f of the element body 2 and the coil conductor 7, while suppressing a reduction in the inner diameter of the coil 10. If it is possible to both ensure the area of the pad portion 11 in contact with the connecting conductor 8 and ensure the distance between the end faces 2a, 2b and side faces 2e, 2f of the element body 2 and the coil conductor 7, it is possible to both ensure the reliability of the electrical connection of the coil conductor 7 and make the laminated coil component 1 compact. Therefore, it is possible to achieve desired characteristics in the coil 10 while simultaneously ensuring the reliability of the electrical connection of the coil conductor 7 and making the laminated coil component 1 compact.
[0072] When multiple coil conductors 7 and multiple connecting conductors 8 overlap in the Z-axis direction, stress is applied locally. This may result in cracks occurring in the element body. With the above-described configuration, stress is dispersed, and the occurrence of cracks in the element body 2 can be suppressed.
[0073] For example, a portion of the pad portion 11 of the coil conductor 21 overlaps with the coil conductor 22 when viewed from the Z-axis direction. In other words, a portion of the pad portion 11 of the coil conductor 21 is included in the region R of the coil conductor 22 when viewed from the Z-axis direction. In this case, the desired characteristics can be achieved in the coil 10 while the laminated coil component 1 can be further made more compact.
[0074] For example, the coil 10 includes a plurality of pad portions 11 each in contact with a different connecting conductor 8. The plurality of pad portions 11 are arranged in line-symmetric or point-symmetric positions in the laminated coil component 1 when viewed from the Z-axis direction. For example, the pad portion 11a connected to the coil conductor 24 and the pad portion 11b connected to the coil conductor 22 are arranged in line-symmetric or point-symmetric positions in the laminated coil component 1 when viewed from the Z-axis direction. In this case, the coils can be stably arranged in the laminated coil component. For example, by applying a force evenly in a direction perpendicular to the Z-axis direction during stacking, stacking misalignment can be suppressed. This structure can improve yield.
[0075] For example, the width W1 of the pad portion 11 is larger than the width W2 of the main body portion 12. In this case, the area of the pad portion 11 in contact with the connecting conductor 8 is ensured, and the reduction in the inner diameter of the coil 10 can be further suppressed.
[0076] The multiple coil conductors 7 are arranged in a ring shape having multiple corners 15 when viewed from the Z-axis direction. The pad portion 11 forms one of the multiple corners 15. In this case, the radius of curvature of the corner 17 formed by the pad portion 11 of the coil conductor 21 is smaller than the radius of curvature of the corner 18 of the coil conductor 22 that overlaps with the pad portion 11 of the coil conductor 21 when viewed from the Z-axis direction. In this case, it is possible to more easily ensure the area of the pad portion 11 that contacts the connecting conductor 8 and prevent the inner diameter of the coil 10 from being reduced.
[0077] The above describes embodiments and modifications of the present invention, but the present invention is not necessarily limited to the above-described embodiments and modifications, and various modifications are possible without departing from the spirit of the present invention.
[0078] For example, in the laminated coil component 1, the number of patterns of the plurality of coil conductors 7 is four. However, the number of patterns of the plurality of coil conductors 7 may be less than four, or may be five or more.
[0079] In the laminated coil component 1, when viewed from the Z-axis direction, the pad portion 11 also protrudes from the other coil conductors 7 in the direction approaching the coil axis AX. However, the pad portion 11 does not have to protrude from the other coil conductors 7 in the direction approaching the coil axis AX. [Explanation of symbols]
[0080] 1... multilayer coil component, 2... element body, 7, 21, 22, 23, 24, 41, 42, 43, 44... coil conductors, 8, 31, 32, 33, 34, 35... connecting conductors, 10... coil, 10a... inner circumference, 11, 11a, 11b... pad portion, 12... main body portion, 15, 17, 18, 58... corner, AX... coil axis, R... region, W1, W2... width.
Claims
1. The base body and a coil disposed inside the element body and having a coil axis extending in a predetermined direction, the coil includes a plurality of coil conductors stacked in a coil axis direction and at least one connecting conductor connecting the coil conductors adjacent to each other in the coil axis direction, the plurality of coil conductors include first, second, and third coil conductors that have overlapping regions when viewed from the coil axis direction and are arranged in order in the coil axis direction, The second coil conductor is a main body portion extending in a circumferential direction of the coil axis; a pad portion connected to the main body portion and connected to the first coil conductor via the connecting conductor, the pad portion protruding in a direction away from the coil axis more than the third coil conductor as viewed in the coil axis direction, and inclined with respect to an imaginary plane perpendicular to the coil axis direction so as to move away from the first coil conductor in the coil axis direction with increasing distance from the coil axis.
2. 2. The laminated coil component according to claim 1, wherein a portion of the pad portion of the second coil conductor is included in the region of the third coil conductor when viewed in the coil axis direction.
3. 3. The laminated coil component according to claim 1, wherein the second coil conductor further includes a pad portion connected to the third coil conductor via the connecting conductor.
4. 4. The laminated coil component according to claim 3, wherein the pad portion coupled to the first coil conductor and the pad portion coupled to the third coil conductor are arranged in line-symmetric or point-symmetric positions in the laminated coil component when viewed in the coil axis direction.
5. the coil includes a plurality of pad portions each contacting a different one of the connecting conductors and including the pad portion of the second coil conductor, 5. The laminated coil component according to claim 1, wherein the pad portions are arranged in line-symmetric or point-symmetric positions in the laminated coil component when viewed in the coil axis direction.
6. The laminated coil component according to claim 1 , wherein a width of the pad portion is larger than a width of the main body portion.
7. the plurality of coil conductors are arranged in a ring shape having a plurality of corners when viewed in the coil axis direction, The laminated coil component according to claim 1 , wherein the pad portion forms one of the plurality of corners.
8. the pad portion of the second coil conductor overlaps the corner of the third coil conductor, 8. The laminated coil component according to claim 7, wherein a radius of curvature of the corner formed by the pad portion of the second coil conductor is smaller than a radius of curvature of the corner of the third coil conductor that overlaps with the pad portion of the second coil conductor as viewed in the coil axis direction.
9. A laminated coil component described in any one of claims 1 to 6, wherein the main body portion includes corners that have a chamfered shape when viewed from the coil axis direction.
Citation Information
Patent Citations
multilayer chip inductor
JP1994060114U
Laminated electronic component
JP2001176725A
Laminated component
JP2003297633A
Stacked electronic component and method for manufacturing the same
JP2005109099A
Stacked coil component, and method of manufacturing same
JP2007134568A