Coil parts
The coil component design with a high-permeability magnetic core fixed inside the edgewise coil addresses instability issues by using winding ends to maintain core positioning, achieving stable inductance and low DC resistance.
Patent Information
- Application Number
- JP2024549024
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-09-30
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2042-09-30
AI Technical Summary
Existing coil components face issues with unstable inductance due to dimensional errors and improper positioning of high-permeability magnetic cores, leading to changes in magnetic flux flow, especially in large current circuits where high magnetic permeability and low DC resistance are required.
A coil component design featuring an edgewise coil with a high-permeability magnetic core positioned inside, fixed by winding end portions of the coil that ensure the core remains contained, using a fixing means like winding ends or adhesives to stabilize the magnetic core within the coil.
Stabilizes magnetic flux flow, ensuring consistent inductance and easy molding, while maintaining high magnetic permeability and reducing DC resistance.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a coil component including a magnetic core and a coil. [Background technology]
[0002] Coil components used in large current circuits need to have improved superposition characteristics and reduced DC resistance, which requires the coil components to be large. In particular, the magnetic materials used in large coil components are required to have high magnetic permeability. Furthermore, for example, a coil component may be a metal composite, which is made by mixing metal powder with resin, and then putting this into a mold together with a coil and a magnetic core, and compression molding the mixture. The molding machine for molding large coil components also needs to increase the molding pressure as the coil components become larger, resulting in a significant increase in cost.
[0003] To address the problems associated with the increased molding pressure mentioned above, molding materials and molding methods that can be molded at low molding pressure are needed.Magnetic materials that can be molded at low pressure can be achieved by using relatively spherical metallic magnetic powder, compounding a relatively large amount of thermosetting resin that melts at around 100°C or above, and molding this at a temperature above the melting point of the resin. Such materials that can be thermoformed at low pressure have the drawback that high magnetic permeability cannot be obtained because the metal powder is spherical and a large amount of non-magnetic resin components are blended.
[0004] On the other hand, magnetic materials that can be thermoformed at low pressure do not have high magnetic permeability, which means they cannot meet the characteristics required for large coil components.
[0005] One solution to this problem is to place a pre-formed and sintered high-permeability magnetic core in part of the magnetic circuit of the coil component, and then embed this magnetic core and the coil in a single piece using the above-mentioned magnetic material that can be thermally molded at low pressure. From the perspective of stable characteristics, this method is best suited to placing a high-permeability magnetic core in the center of the core part of the coil.
[0006] The coil can be positioned in the mold by holding the ends of the rectangular wire of the coil using the rectangular wire with the mold. On the other hand, to prevent rust and moisture absorption, the high-permeability magnetic core must be enclosed in a material that can be thermoformed at low pressure without being exposed on the product surface. This makes it impossible to position the high-permeability magnetic core in contact with the inner surface of the mold. As a result, it has been difficult to position the high-permeability magnetic core in the center of the coil.
[0007] For example, in the coil component described in Patent Document 1, a molded body of a high-permeability magnetic material serving as a magnetic core has a flange, and the magnetic core and the coil are positioned by being mounted on the upper surface of the flange. [Prior art documents] [Patent documents]
[0008] [Patent Document 1] Japanese Patent Publication No. 2020-167304 Summary of the Invention [Problem to be solved by the invention]
[0009] However, in the coil component of Patent Document 1, the flange of the magnetic core is larger than the center of the coil, so the high-permeability magnetic core including the flange cannot be enclosed by the coil. As a result, dimensional errors in each production run can cause changes in the flow of magnetic flux, resulting in unstable inductance.
[0010] Furthermore, when a magnetic core is embedded in a coil, the method described in Patent Document 1 cannot be used, and the magnetic core and the coil cannot be positioned properly. As a result, the magnetic core may transition from being contained within the coil to being protruding from the coil, which changes the flow of magnetic flux and makes the inductance unstable.
[0011] The present invention has been made in view of the above-mentioned problems, and provides a coil component in which the magnetic core and the coil can be positioned. [Means for solving the problem]
[0012] The coil component according to the present invention comprises: It is an edgewise coil made of insulating coated rectangular wire. The coil includes a coil, a magnetic core accommodated inside the coil, and a fixing means for fixing the magnetic core to the coil so that the magnetic core is positioned inside the coil in the axial direction. the flat wire constituting the coil has a constant wire width, the magnetic core has an overall cylindrical shape, the upper and lower surfaces, which are both end surfaces in the axial direction of the magnetic core, are circular with an outer diameter equal to that of the magnetic core, both end portions of the coil in the axial direction are located outside the entire magnetic core in the axial direction, and the entire magnetic core is contained within the coil in the axial direction, the fixing means are winding end portions which are windings of the coil at both end portions, The inner diameter of the coil at the winding end portion is smaller than the outer diameter of each of the upper and lower surfaces of the magnetic core that face the winding end portion, and the both end portions of the coil are in surface contact with the upper and lower surfaces of the magnetic core that face the winding end portion, respectively, and press the upper and lower surfaces of the magnetic core from both sides in the axial direction by the elastic restoring force of the coil, and the overlap width between the both end portions of the coil and the magnetic core when viewed in the axial direction is smaller than 1 / 2 of the wire width of the coil. It is characterized by: [Effects of the Invention]
[0013] According to the present invention, the magnetic core can be fixed inside the coil, and the flow of magnetic flux is not changed, making it possible to stabilize the inductance. [Brief explanation of the drawings]
[0014] [Figure 1] FIG. [Figure 2] 2 is a cross-sectional view of the coil component, showing the cross section taken along line AA in FIG. 1. FIG. [Figure 3] FIG. [Figure 4] 10 is a plan view showing a state in which a magnetic core is inserted into the central core portion of the coil. FIG. [Figure 5] FIG. 10 is a plan view showing the state after the winding end of the coil has been bent and deformed. [Figure 6] 2 is a cross-sectional view of a coil component according to a first modified example, showing a cross section corresponding to the AA cross section in FIG. 1. FIG. [Figure 7]1. FIG. 4 is a cross-sectional view of a coil component according to a second modified example, showing a cross section corresponding to the AA cross section in FIG. DETAILED DESCRIPTION OF THE INVENTION
[0015] Hereinafter, an embodiment of the present invention will be described with reference to the drawings. The embodiment described below is merely an example to facilitate understanding of the present invention, and is not intended to limit the present invention. In other words, the shapes, dimensions, arrangements, etc. of the components described below may be changed or improved without departing from the spirit of the present invention, and the present invention naturally includes equivalents thereof. Furthermore, the various components of the present invention do not need to be independent entities, and it is acceptable for multiple components to be configured as a single component, for one component to be divided into multiple components, for one component to be part of another component, or for part of one component to overlap with part of another component, etc.
[0016] In addition, in all drawings, like elements are denoted by like reference numerals, and redundant explanations are omitted where appropriate. Furthermore, although the present specification may refer to an up-down direction, this is set for the sake of convenience in explaining the relative relationships between elements, and does not limit the directions when manufacturing or using the product according to the present invention.
[0017] <Outline of coil components> First, an overview of the coil device 1 will be described mainly with reference to FIGS. FIG. 1 is a plan view of the coil device 1, and FIG. 2 is a cross-sectional view of the coil device 1, showing the cross section AA of FIG.
[0018] The coil component 1 has a coil 3, a magnetic core 2 housed inside the coil 3, and a fixing means (winding end 3b) for fixing the magnetic core 2 to the coil 3 so that the magnetic core 2 is positioned within the coil 3 in the axial direction.
[0019] The fixing means in this embodiment is a winding end portion 3b of a winding 3a that constitutes the coil 3 and intersects with at least a part of the coil 3 in the axial direction. However, the above-mentioned "fixing means" is not limited to this configuration and may be an adhesive (not shown) or the like. In other words, the magnetic core 2 may be fixed to the coil 3 by the adhesive force of the adhesive.
[0020] According to the above configuration, the magnetic core 2 can be fixed inside the coil 3 by the fixing means (winding end portion 3b), and the magnetic core 2 does not transition from a state where it is contained in the coil 3 to a state where it is protruded from the coil 3. This prevents a change in the flow of magnetic flux, and stabilizes inductance. This makes it possible to obtain a large coil component 1 that has excellent inductance characteristics and is easy to mold.
[0021] <Coil component configuration> Next, the configuration of each part of the coil device 1 will be described. The magnetic core 2 has a high magnetic permeability μ of 30 H / m or more and 100 H / m or less, and is formed by molding or firing. The magnetic core 2 according to this embodiment is molded or fired from an Fe—Si—Cr alloy (magnetic permeability μ=60 H / m), and has an outer diameter of 15.6 mm and a height of 7.5 mm.
[0022] The coil 3 includes a winding 3a wound around the magnetic core 2. The dimension of the coil 3 in the axial direction is larger than the dimension of the magnetic core 2 in the winding axis direction. The coil 3 according to this embodiment is an edgewise coil made of an insulating coated rectangular wire with a width of 5.0 mm and a thickness of 1.0 mm, for example. The inner diameter of the coil 3 is 16.0 mm, and the number of turns is 8.5.
[0023] 2, both axial ends (winding end portions 3b) of the coil 3 according to this embodiment are located axially outward of the magnetic core 2. The fixing means are the winding end portions 3b, which are the windings of the coil 3 at both ends, and the inner winding diameter of the coil 3 at (at least a part of) the winding end portions 3b is smaller than the outer diameters of the upper and lower surfaces of the magnetic core 2 that face the winding end portions 3b.
[0024] The "winding 3a" is a portion that extends spirally, and the "inner winding diameter" refers to a length twice the radius of curvature of the winding 3a. The inner winding diameter of at least a portion of the end winding 3b is smaller than the outer diameter of the upper and lower surfaces of the magnetic core 2, so that the end winding 3b is positioned on an extension of the axial direction of the magnetic core 2. Furthermore, the height of the high-permeability magnetic core 2 disposed in the center portion 3c is lower than the distance between the two end windings 3b.
[0025] Since the inner diameter of at least a portion of the winding end portions 3b at both ends of the coil 3 is smaller than the outer diameter of the upper and lower surfaces of the magnetic core 2, both winding end portions 3b are positioned so as to overlap on an extension of the axial direction of the magnetic core 2. The total overlap width between the upper and lower winding end portions 3b and the magnetic core 2 is smaller than the wire width of the coil 3. The winding end portions 3b of the winding 3a are formed so that the winding end portions 3b overlap with the turns adjacent thereto above and below. This configuration of the coil 3 makes it possible to prevent the magnetic powder 4 from getting between the windings 3a.
[0026] According to the above configuration, the inner diameter of the winding ends 3b at both ends of the coil 3 (at least a part of it) is smaller than the outer diameter of the upper and lower surfaces of the magnetic core 2, which makes it possible to restrict movement of the magnetic core 2 from both sides in the axial direction. In particular, because the magnetic core 2 can be positioned by the winding ends 3b rather than by adhesive, cracks due to the application of heat, etc., do not occur, unlike in cases where an adhesive with a different thermal expansion coefficient from other materials is used.
[0027] Both ends (winding ends 3b) of the coil 3 may be in surface contact with the upper and lower surfaces of the magnetic core 2, respectively, to press the upper and lower surfaces of the magnetic core 2 from both sides in the axial direction. In other words, the axial length of the coil 3 may be longer than the axial length of the winding ends 3b on both sides, and an elastic restoring force may be applied to the coil 3 inward in the axial direction relative to the magnetic core 2.
[0028] According to the above configuration, the magnetic core 2 and the coil 3 can be brought into close contact with each other, and the relative movement (play) of the magnetic core 2 with respect to the coil 3 can be suppressed. However, this configuration is not limited to this, and as long as the magnetic core 2 can be accommodated within the central core portion 3c of the coil 3, the inductance can be sufficiently stabilized, so there may be a gap between the upper and lower winding ends 3b of the coil 3 and the magnetic core 2.
[0029] As shown in FIGS. 1 and 2, the coil component 1 further includes a coating (magnetic powder 4) having a lower magnetic permeability than the magnetic core 2, and the magnetic powder 4 encases the coil 3 and the magnetic core 2.
[0030] Specifically, the magnetic powder 4 is a mixture of metal magnetic powder and thermosetting resin. More specifically, the magnetic powder 4 contains an alloy mainly composed of Fe-Si-Cr with an average particle size of approximately 10 μm, and a thermosetting epoxy resin, with the resin content being 3%.
[0031] The above phrase "the magnetic powder 4 encapsulates the coil 3 and the magnetic core 2" specifically means that the magnetic powder 4 encapsulates the coil 3 and the magnetic core 2 without exposing them to the surface of the magnetic powder 4, except for the coil ends of the coil 3. According to the above configuration, the above-mentioned effects can be obtained even in the coil component 1 that includes a coating. Conversely, the coil component 1 does not necessarily have to include the magnetic powder 4.
[0032] In addition, a coreless coil component (not shown) was produced without inserting a high-permeability core as the central core, with the other steps being the same as those used in the manufacturing method of coil component 1, and the DC resistance of the coreless coil component was compared with that of coil component 1. Specifically, the coil component 1 and the coreless coil component were designed to have the same product outer dimensions of 30 mm length, 30 mm width, and 15 mm height, and the same inductance of 15.0 μH.
[0033] On the other hand, in order to make the product outer dimensions of the coreless coil component and coil component 1 equal, differences were made in the configurations of the coreless coil component and coil component 1. Specifically, the coreless coil component has an edgewise coil made of an insulating coated rectangular wire with a width of 5.0 mm and a thickness of 0.7 mm (thinner than coil component 1). The inner diameter of the coil of this component is 16.0 mm, and the number of turns is 11.5 (more than coil component 1). The coil was formed so that both ends, which form the lead-out portions, extend parallel to each other.
[0034] The DC resistance of the coil component without a core was 4.2 mΩ, whereas the DC resistance of the coil component 1 according to this embodiment was 2.3 mΩ, and good DC superposition characteristics were obtained.
[0035] <Manufacturing procedure for coil parts> Next, a manufacturing procedure for the coil device 1 will be described with reference mainly to FIGS. Figure 3 is a plan view showing the coil 3, Figure 4 is a plan view showing the state in which the magnetic core 2 is inserted into the central core portion 3c of the coil 3, and Figure 5 is a plan view showing the state after the winding end portion 3b of the coil 3 has been bent and deformed.
[0036] First, a rectangular wire is wound around a central core (not shown) which is a winding jig to form the winding 3a of the coil 3 shown in Fig. 3. At this time, each turn of the winding 3a is wound closely together to prevent the magnetic powder 4 from getting in and causing a decrease in inductance characteristics. As shown in Figure 3, before the magnetic core 2 is accommodated in the central core portion 3c of the coil 3, the ends of the coil 3 that are pulled out from the magnetic powder 4 are each formed to open outward (toward the other side) at an angle of approximately 10°.
[0037] In this embodiment, the winding jig is removed, and a high-permeability magnetic core 2 is inserted into the central core 3c of the coil 3 as shown in Figure 4. Then, as shown in Figure 5, the two winding end portions 3b at both ends of the coil 3 are wound tightly inside the inner diameter of the coil (the central core 3c, the outer periphery of the magnetic core 2).
[0038] Specifically, while the magnetic core 2 is temporarily fixed with a fixing jig (not shown), the winding ends 3b at both ends are crimped so as to bend inward (towards the shaft center) so that they extend parallel to each other as shown in Fig. 5. More specifically, when crimping the winding ends 3b at both ends, the winding ends 3b at both ends are deformed so that they approach each other so that they extend parallel to each other due to their elastic recovery. As shown in Figures 2 and 5, the winding ends 3b at the upper and lower ends of the coil 3 are positioned closer to the center than the circumferential surface of the inserted high-permeability magnetic core 2, thereby fixing the magnetic core 2 to the winding ends 3b and positioning it.
[0039] In addition, the method is not limited to the above-described method of simultaneously crimping the winding end portions 3b at both ends of the coil 3. After crimping and forming one winding end portion 3b, the magnetic core 2 may be inserted into the central core portion 3c so that it is positioned above the winding end portion 3b, and then the other winding end portion 3b may be crimped and formed. Furthermore, as in a first modified example described later, only one side (lower side) of the winding 3a may be crimped so that a winding end 3b is positioned closer to the center than the circumferential surface of the magnetic core 2.
[0040] Then, the coil 3 with the manufactured magnetic core 2 inserted therein is set in a mold (not shown). The mold has inner dimensions of 30 mm in length and width. Furthermore, granulated powder (magnetic powder 4) made by mixing metal magnetic powder and resin is poured into the mold.
[0041] Then, a load is applied to the magnetic powder 4 in a mold (not shown) to perform compression molding. The molded body (not shown) is removed from the mold and subjected to a hardening heat treatment for 2 hours in a thermostatic chamber at 150°C. After that, the coating is peeled off from the end of the coil 3 protruding from the molded body and the end is bent to form an external electrode.
[0042] Through the above steps, the coil component 1 shown in FIGS. 1 and 2 can be manufactured, having the high-permeability magnetic core 2 held in the central core portion 3c and having external dimensions of 30 mm length and width and 15 mm height.
[0043] <First Modification> In the above embodiment, both winding ends 3b at the upper and lower ends of coil 3 are crimped so as to be positioned closer to the center than the circumferential surface of magnetic core 2. However, the present invention is not limited to this configuration. Next, a coil device 11 according to a first modified example will be described mainly with reference to Fig. 6. Fig. 6 is a cross-sectional view of the coil device 11 according to the first modified example, which is a view showing a cross section corresponding to the AA cross section in Fig. 1.
[0044] In the coil component 11 according to this example, at least one (lower in this example) end portion (winding end portion 3b) of the coil 3 in the axial direction is located outside the magnetic core 2 in the axial direction. The fixing means for fixing the coil 3 is the winding end 3b, which is the winding 3a of the coil 3 at at least one end (the lower end in this example). The inner diameter of the winding of the coil 3 at (at least a part of) the winding end 3b is smaller than the outer diameter of the upper or lower surface (the lower surface in this example) of the magnetic core 2 that faces the winding end 3b. Furthermore, the overlap width between the winding end 3b and the magnetic core 2 is smaller than half the wire width of the coil 3. By configuring the coil 3 in this way, it is possible to prevent the magnetic powder 4 from getting into the gaps between the windings 3a.
[0045] According to the above configuration, one winding end 3b of the coil 3, which has a smaller winding diameter, is positioned axially outward from the magnetic core 2, and the magnetic core 2 is inserted into the coil 3, thereby enabling relative positioning of the magnetic core 2 and the coil 3.
[0046] With regard to the "upper or lower surface of the magnetic core 2 facing the winding end 3b," it is preferable that the winding end 3b, which has a small inner diameter, is located below the lower surface of the magnetic core 2. With this configuration, the magnetic core 2 and the winding end 3b come into contact with each other due to the weight of the magnetic core 2, making it easy to position the coil 3 and the magnetic core 2 relative to each other when molding the coating (magnetic powder 4).
[0047] <Second Modification> The coil 3 in the above embodiment has been described as being a solenoid wound (single layer structure) made of rectangular wire, but the present invention is not limited to this structure and may be made of round wire, or may be a multi-layer structure rather than a single layer structure.
[0048] Next, a coil device 21 according to a second modified example will be described mainly with reference to Fig. 7. Fig. 7 is a cross-sectional view of the coil device 21 according to the second modified example, which is a view showing a cross section corresponding to the AA cross section in Fig. 1.
[0049] The coil component 21 includes a two-layer coil 23 having a round wire winding 23a. In the coil component 21 of this example, at least one (lower in this example) axial end (winding end 23b) of the coil 23 is located axially outside the magnetic core 2 housed in the central core portion 23c of the coil 23. The fixing means for fixing the coil 23 is at least one end (the lower end in this example), which is a winding end 23b provided on the inner layer of the winding 23a of the coil 23. The inner diameter of the winding of the coil 23 at (at least a part of) the winding end 23b is smaller than the outer diameter of the upper or lower surface (the lower surface in this example) of the magnetic core 2 that faces the winding end 23b.
[0050] In addition, the combination of the winding end 23b provided on one axial side of the coil 23 (the lower side in this example) and the turn covering its outer periphery is formed so as to overlap the combination of the turn adjacent to the winding end 23b above in the winding 3a and the turn covering its outer periphery. Specifically, the turn that covers the outer periphery of winding end portion 23b is formed so as to overlap the turn of winding wire 3a that is adjacent to winding end portion 23b above. By configuring the coil 23 in this manner, it is possible to prevent the magnetic powder 4 from entering between the windings 23a.
[0051] As in this example, if winding end portion 23b is formed only at the winding start end portion of coil 23, coil 23 may have any number of layers (any number of layers may be stacked in the direction perpendicular to the axial direction).
[0052] Furthermore, even in a coil with a multilayer structure (a structure in which layers are stacked in a direction perpendicular to the axial direction), winding ends may be provided at the top and bottom (winding start and winding end) ends. For example, such a structure can be realized if the coil has a multilayer structure but ends winding on the innermost layer (a coil in which the final turn of the winding is on the innermost layer).
[0053] The above-described embodiments and modifications encompass the following technical ideas. (1) A coil and a magnetic core accommodated inside the coil; and a fixing means for fixing the magnetic core to the coil so that the magnetic core is positioned within the coil in the axial direction. (2) At least one end of the coil in the axial direction is located outside the magnetic core in the axial direction, The fixing means is a winding end portion which is a winding of the coil at at least one of the ends, and the inner diameter of the winding of the coil at the winding end portion is smaller than the outer diameter of the upper or lower surface of the magnetic core facing the winding end portion. (3) both ends of the coil in the axial direction are located outside the magnetic core in the axial direction, The fixing means are winding ends of the coil at both ends, and the inner diameter of the coil at the winding ends is smaller than the outer diameters of the upper and lower surfaces of the magnetic core that face the winding ends. (4) The coil component according to (3), wherein the two ends of the coil are in surface contact with the upper and lower surfaces of the magnetic core, respectively, and press the upper and lower surfaces of the magnetic core from both sides in the axial direction. (5) Further, the magnetic core has a coating having a lower magnetic permeability than the magnetic core. The coil component according to any one of (1) to (4), wherein the coating encloses the coil and the magnetic core. [Explanation of symbols]
[0054] 1, 11, 21 Coil parts 2 Magnetic core 3, 23 coil 3a, 23a winding 3b, 23b Winding end (fixing means) 3c, 23c center part 4 Magnetic powder (coated body)
Claims
1. A coil that is an edgewise coil formed from an insulating coated rectangular wire; a magnetic core accommodated inside the coil; a fixing means for fixing the magnetic core to the coil so that the magnetic core is positioned within the coil in the axial direction, The flat wire constituting the coil has a constant wire width, The magnetic core has an overall cylindrical shape, an upper surface and a lower surface, which are both end surfaces of the magnetic core in the axial direction, each having a circular shape with an outer diameter equal to the outer diameter of the magnetic core; both ends of the coil in the axial direction are located outside the entire magnetic core in the axial direction, and the entire magnetic core is contained within the coil in the axial direction, the fixing means are winding ends which are the windings of the coil at both end portions, and the inner diameter of the winding of the coil at the winding ends is smaller than the outer diameters of the upper and lower surfaces of the magnetic core which face the winding ends, the both end portions of the coil are in surface contact with the upper surface and the lower surface of the magnetic core that face the winding end portions, respectively, and press the upper surface and the lower surface of the magnetic core from both sides in the axial direction by the elastic restoring force of the coil; A coil component in which the overlap width between the both ends of the coil and the magnetic core when viewed in the axial direction is smaller than 1 / 2 of the wire width of the coil.
2. Further, the magnetic core has a coating having a lower magnetic permeability than the magnetic core. The coil component according to claim 1 , wherein the coating encloses the coil and the magnetic core.
Citation Information
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