Coil device
By placing a magnetic material between conductors and optimizing core leg ratios and symmetry, the coil device achieves reduced magnetic coupling with maintained inductance, miniaturization, and secure mounting, addressing the issue of low inductance in devices with increased core gaps.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2020-03-02
- Publication Date
- 2026-03-30
AI Technical Summary
Existing coil devices with increased core gaps to reduce coupling coefficient suffer from low inductance values, compromising their inductance characteristics.
Incorporating a magnetic material between the conductors and adjusting the ratio and symmetry of core leg portions to reduce magnetic coupling while maintaining or enhancing inductance, with specific configurations to prevent conductor protrusion and ensure secure mounting.
The solution effectively reduces magnetic coupling while maintaining good inductance characteristics, allows for miniaturization, and prevents short-circuit failures, enabling higher current flow and secure fixation to mounting substrates.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a coil device used as a coupling inductor or the like.
Background Art
[0002] As a smoothing coil for a switching power supply such as a DC / DC converter, a coil device called a coupling inductor may be used. The coupling inductor has a pair of conductors, and each conductor is magnetically coupled with a predetermined coupling coefficient. In recent years, there has been a demand for a coupling inductor having a relatively small coupling coefficient. As a technique for realizing this type of coupling inductor, for example, the technique described in Patent Document 1 can be cited.
[0003] The coil device described in Patent Document 1 has a first core, a second core combined with the first core, and a pair of conductors disposed between the first core and the second core. The first core and the second core are provided with a middle leg portion and a pair of outer leg portions disposed on both sides thereof. By increasing the gap amount between the first core and the second core at the position of the outer leg portion, it is possible to reduce the coupling coefficient between the conductors.
[0004] However, when the gap amount between the first core and the second core is increased as in the coil device described in Patent Document 1, the inductance value becomes low, and good inductance characteristics cannot be obtained.
Prior Art Documents
Patent Documents
[0005]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0006] This invention has been made in view of the above circumstances, and its objective is to provide a coil device that can reduce magnetic coupling between conductors while ensuring good inductance characteristics. [Means for solving the problem]
[0007] To achieve the above objective, the coil device according to the present invention is The first core and, The second core is combined with the first core, The first core and the second core are each adjacent to a first conductor and a second conductor, respectively. At least one of the first core and the second core has a middle leg portion and a pair of outer leg portions arranged on both sides of the middle leg portion, A magnetic material is placed between the first conductor and the second conductor.
[0008] In the coil device according to the present invention, a magnetic material is placed between the first conductor and the second conductor. In this case, compared to the case where no magnetic material is placed between the first and second conductors, the coupling force between the first and second conductors is reduced, making it possible to reduce the magnetic coupling between the first and second conductors. Furthermore, by placing a magnetic material between the first and second conductors, the magnetic material contributes to the inductance of the coil device, making it possible to increase the inductance value of the coil device as a whole. Therefore, according to the coil device according to the present invention, it is possible to reduce the magnetic coupling between conductors while ensuring good inductance characteristics.
[0009] Preferably, the ratio of the cross-sectional area of the middle leg to the cross-sectional area of the outer leg is 1:1 to 1:4. In this case, the middle leg functions as a magnetic material placed between the first conductor and the second conductor as described above. With this configuration, it is possible to sufficiently reduce the coupling coefficient between the first conductor and the second conductor, thereby reducing magnetic coupling between conductors while ensuring good inductance characteristics.
[0010] Preferably, the ratio of the width of the middle leg to the width of the outer leg is 1:1 to 1:4. When the ratio of the cross-sectional area of the middle leg to the cross-sectional area of the outer leg is 1:1 to 1:4, setting the ratio of the width of the middle leg to the width of the outer leg within this range makes it possible to match the protruding widths of the middle leg and the outer leg, resulting in good symmetry between the first core and the second core. Therefore, a coil device with good inductance characteristics can be effectively obtained.
[0011] Preferably, the first core is positioned above the second core and is larger than the second core. This configuration makes it possible to prevent the first and second conductors from protruding outside the first core when they are placed between the first and second cores, thereby contributing to miniaturization of the coil device.
[0012] Preferably, the first core has a first middle leg and a first outer leg, and the second core has a second middle leg and a second outer leg, with a first recess formed between the first middle leg and the first outer leg, and a second recess formed between the second middle leg and the second outer leg, wherein the height of the first middle leg from the bottom surface of the first recess is different from the height of the second middle leg from the bottom surface of the second recess. In this case, when the first core and the second core are combined, the joint between the first middle leg and the second middle leg is positioned at an arbitrary height between the bottom surface of the first recess and the bottom surface of the second recess, making it possible to position the first and second middle legs between the first and second conductors. Therefore, in this case as well, magnetic coupling between conductors can be reduced while ensuring good inductance characteristics.
[0013] Preferably, a first mounting portion is provided at the longitudinal end of the first conductor, and a second mounting portion is provided at the longitudinal end of the second conductor, the first mounting portion extending toward the side where one of the pair of outer legs is located, and the second mounting portion extending toward the side where the other of the pair of outer legs is located, in the opposite direction to the first mounting portion. With this configuration, it is possible to separate the first mounting portion and the second mounting portion, thereby preventing short-circuit failures from occurring between the first and second mounting portions. Furthermore, it is possible to secure sufficient mounting area for each of the first and second mounting portions, and the coil device can be firmly fixed to the mounting substrate.
[0014] Preferably, at least one of the first core and the second core includes a metallic magnetic material. With this configuration, the coupling coefficient between the first conductor and the second conductor can be effectively reduced to a desired value.
[0015] Preferably, the first conductor and the second conductor are made of conductive plate pieces. This configuration makes it possible to increase the allowable current flowing through the first conductor and the second conductor. [Brief explanation of the drawing]
[0016] [Figure 1A] Figure 1A is a perspective view of a coil device according to a first embodiment of the present invention. [Figure 1B] Figure 1B is a side view of the coil device shown in Figure 1A, viewed from the X-axis direction. [Figure 1C] Figure 1C is a side view of the coil device shown in Figure 1A, viewed from the Y-axis direction. [Figure 2] Figure 2 is an exploded perspective view of the coil device shown in Figure 1A. [Figure 3A] Figure 3A is a cross-sectional view of the coil device shown in Figure 1A along the line IIIA-IIIA. [Figure 3B] Figure 3B is a cross-sectional view of the coil device shown in Figure 1A, along the line IIIB-IIIB. [Figure 3C]FIG. 3C is a cross-sectional view taken along line IIIC-IIIC of the coil device shown in FIG. 3A. [Figure 4] FIG. 4 is a side view of the coil device according to the second embodiment of the present invention when viewed from the X-axis direction. [Figure 5] FIG. 5 is a perspective view of the coil device according to the third embodiment of the present invention.
BEST MODE FOR CARRYING OUT THE INVENTION
[0017] Hereinafter, the present invention will be described based on the embodiments shown in the drawings.
[0018] First Embodiment As shown in FIG. 1A, a coil device 10 according to a first embodiment of the present invention includes a first core 20, a second core 30 combined with the first core 20, and a first conductor 40 and a second conductor 50 disposed adjacent to each other between the first core 20 and the second core 30. The coil device 10 is, for example, a coupled inductor and is used as a smoothing coil for a switching power supply such as a DC / DC converter. The switching power supply is used in a power supply circuit in a server, a mobile terminal, or the like.
[0019] The coil device 10 has an overall substantially rectangular parallelepiped shape, and the relationship among its width W1 in the X-axis direction (corresponding to the width of the first core 20 in the X-axis direction), width W2 in the Y-axis direction, and height H1 is W2 > W1 > H1. That is, the overall shape of the coil device 10 is a substantially flat shape (thin shape). The width W1 in the X-axis direction is preferably 5.0 to 20.0 mm, the width W2 in the Y-axis direction is preferably 5.0 to 20.0 mm, and the height H1 is preferably 2.0 to 10.0 mm.
[0020] The first core 20 and the second core 30 contain a metallic magnetic material and are obtained, for example, by compression molding a metallic magnetic powder containing metallic magnetic particles. The metallic magnetic material is not particularly limited, but examples include Fe-Ni alloy powder, Fe-Si alloy powder, Fe-Si-Cr alloy powder, Fe-Co alloy powder, Fe-Si-Al alloy powder, amorphous iron, etc. However, the materials constituting the first core 20 and the second core 30 are not limited to these and may be composed of, for example, ferrite. Examples of ferrites include Ni-Zn ferrite and Mn-Zn ferrite. The relative permeability of the first core 20 and the second core 30 is preferably 40 to 60. The materials constituting the first core 20 and the second core 30 may be the same or different.
[0021] As shown in Figure 2, the first core 20 and the second core 30 have corresponding shapes, with the second core 30 positioned below the first core 20 in the Z-axis direction. The first core 20 and the second core 30 have an E-shaped cross-section when viewed in the YZ cross-section, forming a so-called E-shaped core.
[0022] The first core 20 includes a first base portion 21, a pair of first outer legs 22a, 22b, a first middle leg portion 23, and a pair of first recesses 24a, 24b. The first base portion 21 has a substantially flat plate shape and is formed longitudinally in the Y-axis direction.
[0023] A pair of first outer legs 22a and 22b are positioned on both sides of the first middle leg 23. Each of the pair of first outer legs 22a and 22b has the same shape and protrudes downward in the Z-axis direction from both ends of the first base 21 in the Y-axis direction. As shown in Figure 1B, the Z-axis length L1 of the first outer leg 22a positioned on one side in the Y-axis direction (height of the first outer leg 22a from the bottom surface of the first recess 24a, described later) is equal to the Z-axis length L2 of the first outer leg 22b positioned on the other side in the Y-axis direction (height of the first outer leg 22b from the bottom surface of the first recess 24b, described later).
[0024] The first mid-leg portion 23 protrudes downward in the Z-axis direction from the center of the first base portion 21 in the Y-axis direction. The length of the first mid-leg portion 23 in the Z-axis direction (height of the first mid-leg portion 23 from the bottom surface of the recesses 24a and 24b, described later) L3 is equal to the lengths L1 and L2 of the first outer legs 22a and 22b in the Z-axis direction.
[0025] As shown in Figure 2, the second core 30 has a second base portion 31, a pair of second outer legs 32a, 32b, a second middle leg portion 33, and a pair of second recesses 34a, 34b. The second base portion 31 has a substantially flat plate shape and is formed longitudinally in the Y-axis direction.
[0026] A pair of second outer legs 32a and 32b are positioned on both sides of the second middle leg 33. Each of the pair of second outer legs 32a and 32b has the same shape and protrudes upward in the Z-axis direction from both ends of the second base 31 in the Y-axis direction. As shown in Figure 1B, the Z-axis length L4 of the second outer leg 32a positioned on one side in the Y-axis direction (height of the second outer leg 32a from the bottom surface of the second recess 34a, described later) is equal to the Z-axis length L5 of the second outer leg 32b positioned on the other side in the Y-axis direction (length of the second outer leg 32b from the bottom surface of the second recess 34b, described later).
[0027] The second middle leg portion 33 protrudes upward in the Z-axis direction from the center of the second base portion 31 in the Y-axis direction. The length of the second middle leg portion 33 in the Z-axis direction (the height of the second middle leg portion 33 from the bottom surface of the recesses 34a and 34b, described later) L6 is equal to the lengths L4 and L5 of the second outer legs 32a and 32b in the Z-axis direction.
[0028] As shown in Figure 3C, the second middle leg portion 33 extends continuously along the X-axis direction from one end to the other of the second core 30 in the X-axis direction, separating the first conductor 40 and the second conductor 50. The same applies to each of the pair of outer legs 32a and 32b, which extend continuously along the X-axis direction from one end to the other of the second core 30 in the X-axis direction. Although detailed illustrations are omitted, this also applies to the first middle leg portion 23 and the pair of first outer legs 22a and 22b.
[0029] As shown in Figures 1A and 1C, the first core 20 is positioned above the second core 30 and is larger than the second core 30. More specifically, the Y-axis length of the first core 20 is approximately equal to the Y-axis length of the second core 40, while the X-axis length of the first core 20 is greater than the X-axis length of the second core 30.
[0030] In the example shown in Figure 1C, one end of the first core 20 in the X-axis direction is located further out in the X-axis direction than one end of the second core 30 in the X-axis direction, and the other end of the first core 20 in the X-axis direction is located further out in the X-axis direction than the other end of the second core 30 in the X-axis direction. Therefore, the first core 20 protrudes outside the second core 30 in the X-axis direction, and when the coil device 10 is viewed from above, the second core 30, the first conductor 40 (especially the first mounting parts 42a, 42b), and the second conductor 50 (especially the second mounting parts 52a, 52b) are hidden (covered) by the first core 20 and are not visible.
[0031] Below one end of the first core 20 in the X-axis direction, a second mounting portion 52a of the second conductor 50 (or a first mounting portion 42a of the first conductor 40, not shown) is located, and below the other end of the first core 20 in the X-axis direction, a second mounting portion 52b of the second conductor 50 (or a first mounting portion 42b of the first conductor 40, not shown) is located.
[0032] When one end of the second core 30 in the X-axis direction is used as a reference, the protrusion length L7 of the first core 20 toward that end in the X-axis direction is approximately equal to or greater than the plate thickness T1 of the second conductor 50 (L7≧T1). The same applies to the protrusion length of the first core 20 toward the other end in the X-axis direction when the other end of the second core 30 in the X-axis direction is used as a reference.
[0033] As shown in Figure 2, a first recess 24a is formed between the first middle leg portion 23 and the first outer leg portion 22a, and a first recess 24b is formed between the first middle leg portion 23 and the first outer leg portion 22b. The first recess 24a and the first recess 24b are formed adjacent to each other in the Y-axis direction, with the first middle leg portion 23 in between. The depth of the first recess 24a in the Z-axis direction and the depth of the first recess 24b in the Z-axis direction are approximately equal.
[0034] A second recess 34a is formed between the second middle leg portion 33 and the second outer leg portion 32a, and a second recess 34b is formed between the second middle leg portion 33 and the second outer leg portion 32b. The second recess 34a and the second recess 34b are formed adjacent to each other in the Y-axis direction, with the second middle leg portion 33 in between. The depth of the second recess 34a in the Z-axis direction and the depth of the second recess 34b in the Z-axis direction are approximately equal.
[0035] As shown in Figure 1B, when the first core 20 and the second core 30 are combined in the Z-axis direction, a first gap 61 is formed between the first middle leg portion 23 and the second middle leg portion 33, and a second gap 62 is formed between the first outer leg portions 22a, 22b and the second outer leg portions 32a, 32b. The Z-axis width of the first gap 61 and the Z-axis width of the second gap 62 are approximately equal.
[0036] The Z-axis width (gap spacing) of the gaps 61 and 62 is sufficiently small compared to the Z-axis lengths L1 and L4 of the outer legs 22a and 32a, the Z-axis lengths L2 and L5 of the outer legs 22b and 32b, or the Z-axis lengths L3 and L6 of the middle legs 23 and 33, preferably 0.0 to 0.3 mm. By adjusting the Z-axis width of the gaps 61 and 62, the inductance value of the coil device 10 can be controlled.
[0037] The first core 20 and the second core 30 are joined together by joining the first outer legs 22a and 22b of the first core 20 and the second outer legs 32a and 32b of the second core 30 with a bonding material such as an adhesive. For example, by using Micropearl (Sekisui Chemical Co., Ltd.) or a resin containing resin beads as an adhesive, gaps 61 and 62 can be easily formed between the first core 20 and the second core 30. Alternatively, the first middle leg 23 and the second middle leg 33 may be joined with the bonding material, or only the first outer leg 22a (or first outer leg 22b) and the second outer leg 32a (or second outer leg 32b) may be joined with the bonding material.
[0038] The joints between the first outer leg portion 22a and the second outer leg portion 32a, the joints between the first outer leg portion 22b and the second outer leg portion 32b, and the joints between the first middle leg portion 23 and the second middle leg portion 33 are located within the region in the Z-axis direction between the bottom surfaces of the recesses 24a and 24b and the bottom surfaces of the recesses 34a and 34b.
[0039] As shown in Figure 1A, one end of the first outer legs 22a and 22b in the X-axis direction is positioned to extend outward in the X-axis direction beyond one end of the second outer legs 32a and 32b in the X-axis direction, and one end of the first middle leg 23 in the X-axis direction is positioned to extend outward in the X-axis direction beyond one end of the second middle leg 33 in the X-axis direction. Detailed illustrations are omitted, but the other end of the first outer legs 22a and 22b in the X-axis direction is positioned to extend outward in the X-axis direction beyond the other end of the second outer legs 32a and 32b in the X-axis direction, and the other end of the first middle leg 23 in the X-axis direction is positioned to extend outward in the X-axis direction beyond the other end of the second middle leg 33 in the X-axis direction.
[0040] As shown in Figure 2, each of the pair of first conductors 40 and second conductors 50 has the same shape and is arranged adjacent to each other at a predetermined distance in the Y-axis direction. The distance between the first conductor 40 and the second conductor 50 in the Y-axis direction is equal to or greater than the Y-axis width of the intermediate leg portions 23 and 33 (see Figure 1B).
[0041] The first conductor 40 and the second conductor 50 are made of conductive plate pieces (conducting plates) and have a substantially U-shape. The Y-axis width of the conductors 40 and 50 is greater than the Y-axis width of the middle legs 23 and 33 and the outer legs 22a and 32a (or outer legs 22b and 32b). Examples of materials that make up the conductors 40 and 50 include good conductors of metals such as copper and copper alloys, silver, and nickel, but the conductive material is not particularly limited. The conductors 40 and 50 are formed, for example, by machining metal plates. However, the method of forming the conductors 40 and 50 is not limited to this and may be changed as appropriate. As shown in Figure 3B, the X-axis length of the first conductor 40 (and the same for the second conductor 50) is greater than the X-axis width of the second core 30 and equal to or smaller than the X-axis width of the first core 20.
[0042] As shown in Figure 2, the first conductor 40 has a first main body portion 41 and first mounting portions 42a and 42b. The first main body portion 41 has a substantially flat shape and is formed longitudinally in the X-axis direction. As shown in Figures 3A and 3B, the first main body portion 41 is positioned inside the space formed by the first recess 24a of the first core 20 and the second recess 34a of the second core 30. More specifically, the first main body portion 41 extends in the X-axis direction inside the space without contacting the bottom surfaces of the first recess 24a and the second recess 34a, and a gap is formed between the first main body portion 41 and the bottom surfaces of the first recess 24a and the second recess 34a.
[0043] As shown in Figure 2, the first mounting portion 42a is formed at one end of the first main body portion 41 in the X-axis direction (longitudinal direction), and the first mounting portion 42b is formed at the other end of the first main body portion 41 in the X-axis direction (longitudinal direction). The first mounting portions 42a and 42b intersect the first main body portion 41 substantially perpendicularly and have surfaces parallel to the YZ plane.
[0044] As shown in FIG. 3C, the first mounting portion 42a is arranged along the side surface of one end side of the second core 30 in the X-axis direction, and the first mounting portion 42b is arranged along the side surface of the other end side of the second core 30 in the X-axis direction. A gap is formed between the mounting portions 42a, 42b and each side surface of the second core 30 in the X-axis direction. As shown in FIG. 1B, the lower ends of the mounting portions 42a, 42b are located below one end in the Z-axis direction of the second base portion 31. Lands (not shown) of the mounting substrate are connected to the mounting portions 42a, 42b by joining members such as solder or conductive adhesive, and the coil device 10 can be connected to the mounting substrate via the mounting portions 42a, 42b (and the mounting portions 52a, 52b described later).
[0045] As shown in FIG. 2, the first mounting portion 42a has first cutout portions 420a, 420b and first side protrusions 421a, 421b. The first cutout portions 420a, 420b are formed on one end side (the side where the second conductor 50 is arranged) of the first mounting portions 42a, 42b in the Y-axis direction. By the first cutout portions 420a, 420b, the lower end portion located on one end side of the first mounting portion 42a in the Y-axis direction is cut out upward in the Z-axis direction and toward the other end side in the Y-axis direction at a predetermined depth.
[0046] The first side protrusions 421a, 421b extend in the Y-axis direction toward the side where the second outer leg portion 32a (that is, one of the pair of second outer leg portions 32a, 32b) is arranged. As shown in FIG. 3C, the protrusion width W3 of the first side protrusions 421a, 421b in the Y-axis direction is substantially equal to the Y-axis direction width W5 of the first outer leg portions 22a, 22b and the second outer leg portions 32a, 32b shown in FIG. 1B. However, W3 < W5 may also be possible, and the protrusion width W3 may be appropriately determined within a range where the first side protrusions 421a, 421b do not protrude outside the second outer leg portion 32a in the Y-axis direction.
[0047] As shown in Figure 2, the second conductor 50 has a second main body portion 51 and second mounting portions 52a and 52b. The second main body portion 51 has the same configuration as the first main body portion 41, so a detailed explanation of it is omitted. The second main body portion 51 is located inside the space formed by the first recess 24b of the first core 20 and the second recess 34b of the second core 30.
[0048] The second mounting portions 52a and 52b are formed at one end and the other end of the second conductor 50 in the X-axis direction, respectively, and have second notches 520a and 520b and second lateral projections 521a and 521b. The second notches 520a and 520b are formed on the other end side in the Y-axis direction of the second mounting portions 52a and 52b (the side where the first conductor 40 is located). The lower end of the second mounting portion 52a located on the other end side in the Y-axis direction is cut out by the second notches 520a and 520b to a predetermined depth upward in the Z-axis direction and toward one end side in the Y-axis direction.
[0049] At the locations where the first notches 420a, 420b and the second notches 520a, 520b are formed, the distance between the first mounting portion 42a and the second mounting portion 52a can be increased. Therefore, when the coil device 10 is connected to a mounting board (not shown), solder bridging between the first mounting portion 42a and the second mounting portion 52a becomes less likely, and the occurrence of short-circuit defects that result from this can be prevented.
[0050] The second lateral projections 521a and 521b extend in the Y-axis direction toward the side where the second outer leg 32b (i.e., the other of the pair of second outer legs 32a and 32b) is located, and the projection direction of the second lateral projections 521a and 521b is opposite to that of the first lateral projections 421a and 421b. The projection width of the second lateral projections 521a and 521b in the Y-axis direction is approximately equal to the projection width of the first lateral projections 421a and 421b in the Y-axis direction.
[0051] As shown in Figure 1B, in this embodiment, a first middle leg portion 23 and a second middle leg portion 33 are arranged as magnetic material between the first conductor 40 (first mounting portions 42a, 42b) and the second conductor 50 (second mounting portions 52a, 52b). In conventional coupled inductors, no magnetic material is placed between the conductors in order to enhance the magnetic coupling between them. In contrast, in the coil device 10 according to this embodiment, a magnetic material is placed (interposed) between the first conductor 40 and the second conductor 50 to reduce the coupling force between them.
[0052] As described above, the first and second intermediate legs 23 and 33 are formed continuously from one end to the other in the X-axis direction of the first and second cores 20 and 30, respectively (Figure 3C), and are joined in the Z-axis direction. Therefore, the space in which the first main body 41 of the first conductor 40 is housed (the space enclosed by the first recess 24a and the second recess 34a) and the space in which the second main body 51 of the second conductor 50 is housed (the space enclosed by the first recess 24b and the second recess 34b) are separated by the intermediate legs 23 and 33 without substantially communicating with each other (these spaces are only connected by a small gap provided by the first gap 61).
[0053] The ratio of the cross-sectional area of the middle legs 23 and 33 along the YZ plane (the sum of the cross-sectional areas of the first middle leg 23 and the second middle leg 33) to the cross-sectional area of the outer legs 22a and 32a along the YZ plane (the sum of the cross-sectional areas of the first outer leg 22a and the second outer leg 32a) is preferably 1:1 to 1:4. Similarly, the ratio of the cross-sectional area of the middle legs 23 and 33 along the YZ plane (the sum of the cross-sectional areas of the first middle leg 23 and the second middle leg 33) to the cross-sectional area of the outer legs 22b and 32b along the YZ plane (the sum of the cross-sectional areas of the first outer leg 22b and the second outer leg 32b) is preferably 1:1 to 1:4.
[0054] For example, by setting the above ratio to approximately 1:1, it is possible to set the coupling coefficient between the first conductor 40 and the second conductor 50 to approximately 0.14 to 0.24. Also, by setting the above ratio to approximately 1:2, it is possible to set the coupling coefficient between the first conductor 40 and the second conductor 50 to approximately 0.25 to 0.35. Furthermore, by setting the above ratio to approximately 1:4, it is possible to set the coupling coefficient between the first conductor 40 and the second conductor 50 to approximately 0.45 to 0.55.
[0055] Therefore, by adjusting the above ratio to any ratio between 1:1 and 1:4 (provided that the cross-sectional area of the middle legs 23 and 33 is smaller than the cross-sectional area of the outer legs 22a, 32a or 22b, 32b), the coupling coefficient between the first conductor 40 and the second conductor 50 can be adjusted to the desired value as described above. By setting the above ratio to approximately 2:1, it is possible to reduce the coupling coefficient between the first conductor 40 and the second conductor 50 to approximately 0.13 to 0.17, and if necessary, the cross-sectional area of the middle legs 23 and 33 may be made larger than the cross-sectional area of the outer legs 22a, 32a or 22b, 32b.
[0056] In this embodiment, the Z-axis lengths L1 and L4 of the outer legs 22a and 32a, the Z-axis lengths L2 and L5 of the outer legs 22b and 32b, and the Z-axis lengths L3 and L6 of the middle legs 23 and 33 are approximately equal. Therefore, by setting the ratio of the width W4 of the middle legs 23 and 33 to the width W5 of the outer legs 22a and 32a (or outer legs 22b and 32b) to 1:1 to 1:4, it is possible to set the ratio of the cross-sectional area of the middle legs 23 and 33 to the cross-sectional area of the outer legs 22a and 32a (or outer legs 22b and 32b) to 1:1 to 1:4.
[0057] The width W4 of the middle legs 23, 33 is preferably 0.3 to 2.0 mm. The width W5 of the outer legs 22a, 32a (or outer legs 22b, 32b) is preferably 0.3 to 8.0 mm.
[0058] In this embodiment, since a magnetic material (middle legs 23, 33) is placed between the first conductor 40 and the second conductor 50, the magnetic fields generated from the first conductor 40 and the second conductor 50 pass through the inside of the magnetic material (middle legs 23, 33) placed between the first conductor 40 and the second conductor 50.
[0059] In manufacturing the coil device 10, the first core 20 and the second core 30 shown in Figure 2 are prepared, along with the first conductor 40 and the second conductor 50. Next, the first main body portions 41 and 51 of the conductors 40 and 50 are placed inside the first recesses 24a and 24b (or first recesses 24a and 24b) of the second core 30 (or the first core 20). Then, the first middle leg portion 23 and the second middle leg portion 33 are combined, and the first outer leg portions 22a and 22b and the second outer leg portions 32a and 32b are combined to combine the first core 20 and the second core 30. At this time, the coil device 10 can be obtained by joining the first outer leg portions 22a and 22b and the second outer leg portions 32a and 32b with an adhesive or the like.
[0060] In the coil device 10 according to this embodiment, a magnetic material (intermediate legs 23, 33) is placed between the first conductor 40 and the second conductor 50. In this case, compared to the case where no magnetic material is placed between the first conductor 40 and the second conductor 50, the coupling force between the first conductor 40 and the second conductor 50 is reduced, making it possible to reduce the magnetic coupling between the first conductor 40 and the second conductor 50. Furthermore, by placing the magnetic material between the first conductor 40 and the second conductor 50, the magnetic material contributes to the inductance of the coil device 10, making it possible to increase the inductance value of the coil device 10 as a whole. Therefore, according to the coil device 10 according to this embodiment, it is possible to reduce the magnetic coupling between the first conductor 40 and the second conductor 50 while ensuring good inductance characteristics.
[0061] Furthermore, in this embodiment, the ratio of the cross-sectional area of the middle legs 23, 33 to the cross-sectional area of the outer legs 22a, 32a (or outer legs 22b, 32b) is 1:1 to 1:4. In this case, the middle legs 23, 33 function as magnetic materials placed between the first conductor 40 and the second conductor 50 as described above. By adopting this configuration, it is possible to sufficiently reduce the coupling coefficient between the first conductor 40 and the second conductor 50, thereby reducing the magnetic coupling between the first conductor 40 and the second conductor 50 while ensuring good inductance characteristics.
[0062] Furthermore, in this embodiment, the ratio of the width of the middle legs 23, 33 to the width of the outer legs 22a, 32a (or outer legs 22b, 32b) is 1:1 to 1:4. When the ratio of the cross-sectional area of the middle legs 23, 33 to the cross-sectional area of the outer legs 22a, 32a (or outer legs 22b, 32b) is 1:1 to 1:4, by setting the ratio of the width of the middle legs 23, 33 to the width of the outer legs 22a, 32a (or outer legs 22b, 32b) to the above range, it becomes possible to match the protruding widths of the middle legs 23, 33 and the outer legs 22a, 32a (or outer legs 22b, 32b), resulting in good symmetry between the first core 20 and the second core 30. Therefore, a coil device 10 with good inductance characteristics can be effectively obtained.
[0063] Furthermore, in this embodiment, the first core 20 is positioned above the second core 30 and is larger than the second core 30. Therefore, when the first conductor 40 and the second conductor 50 are placed between the first core 20 and the second core 30, it is possible to prevent the first conductor 40 and the second conductor 50 from protruding outside the first core 20, thereby contributing to the miniaturization of the coil device 10.
[0064] Furthermore, in this embodiment, the longitudinal ends of the first conductor 40 are provided with first mounting portions 42a and 42b, and the longitudinal ends of the second conductor 50 are provided with second mounting portions 52a and 52b. The first mounting portions 42a and 42b extend toward the side where the outer legs 22a and 32a are located, and the second mounting portions 52a and 52b extend toward the side where the outer legs 22b and 32b are located, in the opposite direction to the first mounting portions 42a and 42b. As a result, it is possible to separate the first mounting portions 42a and 42b from the second mounting portions 52a and 52b, thereby preventing short-circuit failures from occurring between the first mounting portions 42a and 42b and the second mounting portions 52a and 52b. Furthermore, it becomes possible to secure sufficient mounting area for each of the first mounting sections 42a, 42b and the second mounting sections 52a, 52b, allowing the coil device 10 to be firmly fixed to the mounting substrate (not shown).
[0065] Furthermore, in this embodiment, at least one of the first core 20 and the second core 30 includes a metallic magnetic material. Therefore, the coupling coefficient between the first conductor 40 and the second conductor 50 can be effectively reduced to a desired value (for example, preferably around 0.1 to 0.5, and more preferably around 0.3 to 0.5).
[0066] Furthermore, in this embodiment, the first conductor 40 and the second conductor 50 are made of conductive plate pieces. Therefore, the allowable current flowing through the first conductor 40 and the second conductor 50 can be increased.
[0067] Second Embodiment The coil device 110 according to the second embodiment shown in Figure 4 has the same configuration as the coil device 10 according to the first embodiment, and provides the same effects, except for the points described below. In Figure 4, components common to each component in the coil device 10 of the first embodiment are denoted by the same reference numerals, and their descriptions are partially omitted.
[0068] As shown in Figure 4, the coil device 110 has a first core 120 and a second core 130. The first core 120 has a substantially flat plate shape (substantially rectangular parallelepiped shape) and constitutes a so-called I-shaped core.
[0069] The second core 130 has second outer legs 132a, 132b, a second middle leg 133, and second recesses 134a, 134b. The length of the second outer legs 132a, 132b in the Z-axis direction is longer than the length of the second outer legs 32a, 32b in the Z-axis direction in the first embodiment. The length of the middle leg 133 is longer than the length of the middle leg 33 in the Z-axis direction in the first embodiment. The depth of the second recesses 134a, 134b in the Z-axis direction is deeper than the depth of the second recesses 34a, 34b in the Z-axis direction in the first embodiment.
[0070] In this embodiment, at least one of the first core 120 and the second core 130 (only the second core 130 in the illustrated example) constitutes an E-type core having a second middle leg portion 133 and a pair of second outer leg portions 132a, 132b. Alternatively, the first core 120 may be configured as an E-type core and the second core 130 as an I-type core.
[0071] With this configuration, it becomes possible to combine the first core 120, which is made of an I-type core, and the second core 130, which is made of an E-type core, with gaps 61 and 62 in between, thereby constructing a coil device 110 having an EI-type core. In this embodiment, the magnetic material placed between the first conductor 40 and the second conductor 50 is composed only of the second middle leg portion 133.
[0072] In this embodiment as well, a magnetic material (second middle leg portion 133) is arranged between the first conductor 40 and the second conductor 50. Therefore, the same effects as in the first embodiment can be obtained.
[0073] Third Embodiment The coil device 210 according to the third embodiment shown in Figure 5 has the same configuration as the coil device 10 according to the first embodiment, and provides similar effects, except for the points described below. In Figure 5, components common to each component in the coil device 10 of the first embodiment are denoted by the same reference numerals, and their descriptions are partially omitted.
[0074] As shown in Figure 5, the coil device 210 has a second core 230. The second core 230 differs from the second core 30 in the first embodiment in that it has a protrusion 35. The protrusion 35 protrudes in the X-axis direction from the side surface on one end of the second core 230 in the X-axis direction toward the outside of the second core 230. Although not shown in the figure, a protrusion is also formed on the side surface on the other end of the second core 230 in the X-axis direction, protruding in the X-axis direction toward the outside of the second core 230.
[0075] The protruding portion 35 is formed to straddle the Z-axis direction between the second base portion 31 and the second middle leg portion 33. That is, the protruding portion 35 causes the approximate center of the second middle leg portion 33 and the second base portion 31 in the Y-axis direction to protrude outward in the X-axis direction from the second core 230.
[0076] The Y-axis width of the protrusion 35 is approximately the same as the Y-axis width of the first and second intermediate leg portions 23 and 33, respectively. The Z-axis length of the protrusion 35 is approximately equal to the sum of the Z-axis lengths of the second base portion 31 and the second intermediate leg portion 33, respectively. The X-axis projection width of the protrusion 35 is approximately equal to the length L7 shown in Figure 1C. At the position where the protrusion 35 is formed, the side surface of one end of the first core 20 in the X-axis direction and the side surface of one end of the second core 230 in the X-axis direction are approximately flush.
[0077] In this embodiment, the first mounting portion 42a is positioned on one side in the X-axis direction with the protrusion 35 in between, and the second mounting portion 52a is positioned on the other side in the X-axis direction with the protrusion 35 in between. By positioning (interposing) the protrusion 35 between the first mounting portion 42a and the second mounting portion 52a in this way, it is possible to effectively prevent short-circuit defects from occurring between the first mounting portion 42a and the second mounting portion 52a.
[0078] It should be noted that the present invention is not limited to the embodiments described above, and can be modified in various ways within the scope of the present invention.
[0079] In the embodiments described above, examples of applying the coil device 10 according to the present invention to a coupled inductor were explained, but the present invention may also be applied to other inductors or other coil devices.
[0080] In the first embodiment described above, the first core 20 and the second core 30 may be configured as a single unit (one core). In this case, the first gap 61 shown in Figure 1B may be omitted, and the second gap 62 may be further omitted. The same applies to the second and third embodiments described above.
[0081] In the first embodiment described above, the magnetic material placed between the first conductor 40 and the second conductor 50 was composed of a part of the cores 20 and 30 (middle leg portions 23 and 33), but the magnetic material may be composed separately from the cores 20 and 30. The same applies to the second and third embodiments described above. For example, in the first embodiment, each of the cores 20 and 30 may be composed of a flat plate-shaped core, and the first conductor 40 and the second conductor 50, which are arranged adjacent to each other, may be sandwiched between these cores 20 and 30, and a separately prepared magnetic material may be placed between the first conductor 40 and the second conductor 50. The magnetic material used in this case may be, for example, a magnetic material corresponding to the shape of the middle leg portion 133 (see Figure 4) in the second embodiment. In this case, the magnetic material may be composed of a different material from the first core 20 and the second core 30.
[0082] In the first embodiment described above, the height of the first middle leg portion 23 from the bottom surface of the first recesses 24a, 24b and the height of the second middle leg portion 33 from the bottom surface of the second recesses 34a, 34b may be different. In this case as well, as shown in Figure 1B, when the first core 20 and the second core 30 are combined, the joint between the first middle leg portion 23 and the second middle leg portion 33 will be positioned at an arbitrary height between the bottom surface of the first recesses 24a, 24b and the bottom surface of the second recesses 34a, 34b, making it possible to position the first middle leg portion 23 and the second middle leg portion 33 between the first conductor 40 and the second conductor 50. Therefore, in this case as well, it is possible to reduce the magnetic coupling between the first conductor 40 and the second conductor 50 while ensuring good inductance characteristics. The same applies to the third embodiment described above.
[0083] Furthermore, when the first core 20 and the second core 30 are combined, it is preferable that the magnetic material placed between the first conductor 40 and the second conductor 50 occupies 50 percent or more of the region in the Z-axis direction between the bottom surfaces of the first recesses 24a and 24b and the bottom surfaces of the second recesses 34a and 34b, and it is even more preferable that it occupies 60 percent or more of the same region.
[0084] In the first embodiment described above, the lengths of the first core 20 and the second core 30 in the Z-axis direction were approximately equal, but they may be different. Also, lengths L1 and L4 shown in Figure 1B may be different, lengths L3 and L6 may be different, and lengths L2 and L5 may be different. The same applies to the second and third embodiments described above.
[0085] In the first embodiment described above, as shown in Figure 1A, the overall shape when the first core 20 and the second core 30 are combined is a roughly rectangular parallelepiped shape consisting of a flattened (thin) shape. However, for example, the length of the second core 30 in the Z-axis direction may be made longer than the length of the first core 20 in the Z-axis direction, and the overall shape may be a cube. In such a shape, the coupling coefficient between the first conductor 40 and the second conductor 50 can be controlled to be higher.
[0086] In this case as well, the coupling coefficient between the first conductor 40 and the second conductor 50 can be adjusted to approximately 0.2 to 0.5 by adjusting the ratio of the cross-sectional areas of the middle legs 23 and 33 (the sum of the cross-sectional areas of the first middle leg 23 and the second middle leg 33) to the cross-sectional areas of the outer legs 22a and 32a (the sum of the cross-sectional areas of the first outer leg 22a and the second outer leg 32a) to any ratio between 1:1 and 1:4. At this time, the materials constituting the first core 20 and the second core 30 may be changed as needed.
[0087] As shown in Figure 1A, when a thin coil device 10 is constructed, the sum of the Z-axis length L3 of the first middle leg portion 23 and the Z-axis length L6 of the second middle leg portion 33 shown in Figure 1B is preferably 0.55 to 0.75 mm. Also, the Z-axis length of the first base portion 21 or the second base portion 31 is preferably 0.25 to 0.4 mm.
[0088] In each of the above embodiments, the first notches 420a, 420b and the second notches 520a, 520b may be omitted from the first mounting portions 42a, 42b and the second mounting portions 52a, 52b, respectively.
[0089] In each of the above embodiments, the first conductor 40 and the second conductor 50 may be made of conductors other than conductive plate pieces (for example, wires). [Explanation of Symbols]
[0090] 10,110,210… Coil device 20,120…1st Core 21...First base section 22a, 22b...first outer leg part 23...1st middle leg 24a, 24b…First recess 30,130,230…Second Core 31...Second base section 32a, 32b, 132a, 132b...Second outer leg 33,133…Second middle leg 34a, 34b, 134a, 134b…Second recess 35...Protruding part 40…First conductor 41...First main body 42a, 42b... First implementation section 420a, 420b... First notch 421a, 421b...first lateral protrusion 50...Second conductor 51...Second main body 52a, 52b... Second implementation section 520a, 520b... Second notch 521a, 521b...Second lateral protrusion 61…First Gap 62…Second Gap
Claims
1. The first core and A second core is combined with the first core, The first core and the second core are separated by a first conductor and a second conductor, respectively, At least one of the first core and the second core has a middle leg portion and a pair of outer leg portions arranged on both sides of the middle leg portion, A magnetic material is placed between the first conductor and the second conductor. The second core has a main surface that can face the mounting substrate and a side surface perpendicular to the main surface, The first conductor has a first main body portion disposed between the first core and the second core, and a first mounting portion continuous with the first main body portion and disposed on the side surface, The second conductor has a second main body portion disposed between the first core and the second core, and a second mounting portion continuous with the second main body portion and disposed on the side surface, The first mounting portion has a first lateral projection that protrudes from the first main body portion to one side in the first direction, The second mounting portion has a second lateral projection that protrudes from the second main body portion to the other side in the first direction, The coil device wherein the first mounting portion and the second mounting portion extend parallel to the side surface as a whole, and the lower ends of the first lateral projection and the second lateral projection protrude downward from the main surface without curving along the side surface in the direction from the first core to the second core.
2. The coil device according to claim 1, wherein the ratio of the cross-sectional area of the middle leg portion to the cross-sectional area of the outer leg portion is 1:1 to 1:
4.
3. The coil device according to claim 2, wherein the ratio of the width of the middle leg portion to the width of the outer leg portion is 1:1 to 1:
4.
4. The coil device according to any one of claims 1 to 3, wherein the first core is positioned above the second core and is larger than the second core.
5. The first core has a first middle leg portion and a first outer leg portion, The second core has a second middle leg portion and a second outer leg portion, A first recess is formed between the first middle leg portion and the first outer leg portion. A second recess is formed between the second middle leg portion and the second outer leg portion. The coil device according to any one of claims 1 to 4, wherein the height of the first middle leg portion from the bottom surface of the first recess and the height of the second middle leg portion from the bottom surface of the second recess are different.
6. The longitudinal end of the first conductor is provided with a first mounting portion. The longitudinal end of the second conductor is provided with a second mounting portion. The first mounting portion extends toward the side where one of the pair of outer leg portions is located. The coil device according to any one of claims 1 to 5, wherein the second mounting portion extends in the opposite direction to the first mounting portion toward the side where the other of the pair of outer leg portions is located.
7. The coil device according to any one of claims 1 to 6, wherein at least one of the first core and the second core is a metallic magnetic material.
8. The coil device according to any one of claims 1 to 7, wherein the first conductor and the second conductor are made of conductive plate pieces.
9. The first core and A second core is combined with the first core, The first core and the second core are separated by a first conductor and a second conductor, respectively, At least one of the first core and the second core has a middle leg portion and a pair of outer leg portions arranged on both sides of the middle leg portion, A magnetic material is placed between the first conductor and the second conductor. The second core has a main surface that can face the mounting substrate and a side surface perpendicular to the main surface, The magnetic material has a middle leg portion located between the first conductor and the second conductor, and a projection portion that is continuous with the middle leg portion and protrudes from the side surface along the extending direction of the first conductor or the second conductor. The first conductor has a first main body portion disposed between the first core and the second core, and a first mounting portion continuous with the first main body portion and disposed on the side surface, The second conductor has a second main body portion disposed between the first core and the second core, and a second mounting portion continuous with the second main body portion and disposed on the side surface, The first mounting portion has a first lateral projection that protrudes from the first main body portion to one side in the first direction, The second mounting portion has a second lateral projection that protrudes from the second main body portion to the other side in the first direction, The coil device wherein the first mounting portion and the second mounting portion extend parallel to the side surface as a whole, and the lower ends of the first lateral projection and the second lateral projection protrude downward from the main surface without bending in the direction from the first core to the second core along the side surface.
Citation Information
Patent Citations
JP1991017609U
Inductance device
JP1999040426A
Portable telephone set and call termination control method therefor
JP2000069129A
Coil-embedded inductor
JP2006100335A
inductor
JP2009016797A