Reactor

The reactor design secures lead wires efficiently by routing them linearly above the core using a resin member with guide portions, addressing inefficiencies in existing fixation methods and improving production efficiency.

JP7849239B2Active Publication Date: 2026-04-21TAMURA KK
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
TAMURA KK
Filing Date
2022-07-27
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

The existing methods for fixing lead wires in reactors are inefficient, leading to increased parts and time-consuming work, which affects production efficiency.

Method used

A reactor design that includes a resin member with a fastening portion and guide portions to securely route the lead wire linearly above the core, using an intermediate guide portion to hold the wire and prevent interference with the coil.

Benefits of technology

The design allows for easy and efficient fixation of lead wires without increasing the number of parts, reducing production time and costs while maintaining insulation and preventing wire movement.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a reactor which can easily fix a lead wire of an external device without increasing the number of components.SOLUTION: In a reactor, a reactor body 1 includes a core 4, a coil 2 mounted on the core 4, a resin member 5 coating the periphery of the core 4, and a fastening part 53 for fastening the coil 2 to an external terminal 61 of an external device electrically connected to the coil 2. The external terminal 61 is connected to a lead wire for connecting the external terminal 61 and the external device. The lead wire 62 is linearly wired above the core 4, along the core 4 where the coil 2 is not mounted. The resin member 5 has a guide part 54 which is provided on a side opposite to the fastening part 53 so as to sandwich the core 4 wired with the lead wire 62 above and holds the lead wire 62, and an intermediate guide part 55 which is provided between a fastening part 63 and the guide part 54 and holds the lead wire 62.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0002]

[0001] The present invention relates to a reactor.

Background Art

[0002] Reactors are used in various applications such as OA equipment, solar power generation systems, automobiles, and uninterruptible power supplies. A reactor is, for example, an electromagnetic component that converts electrical energy into magnetic energy for storage and release. For this type of reactor, in order to insulate the core and the coil, it is known that the periphery of the core is covered with a resin member, and a coil is mounted on the outer periphery of the resin member.

[0003] Power is supplied to the reactor from an external device. The external device has an external terminal that is electrically connected to the coil and a lead wire that connects the external terminal and the external device. When the external terminal is connected to a bus bar or the like, the external device and the reactor are electrically connected. In this way, power is supplied from the external device to the reactor, a current flows through the coil, a magnetic flux that penetrates the coil is generated, and a closed magnetic circuit is formed in the core.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0005] If the lead wire is wired without being fixed, there is a risk that it will move due to vibration and interfere with the members of the reactor or electrical equipment other than the reactor. Therefore, it is necessary to fix the lead wire so that it does not move. For the lead wire, a method of fixing it with a binding band or the like at a predetermined fixing position is used. As a result, there are problems such as an increase in the number of parts and time-consuming fixing work, resulting in poor production efficiency.

[0006] The present invention was made to solve the above problems, and its objective is to provide a reactor that can easily secure the lead wires of external equipment without increasing the number of parts. [Means for solving the problem]

[0007] To achieve the above objective, an embodiment of the present invention provides a reactor comprising: a core; a coil mounted on the core; a resin member covering the periphery of the core; and a fastening portion for fastening an external terminal of an external device electrically connected to the coil, wherein the external terminal is connected to a lead wire connecting the external terminal to the external device, the lead wire is routed linearly above the core along the core where the coil is not mounted, and the resin member is provided on the opposite side of the fastening portion so as to sandwich the core with the lead wire routed above it, and has a guide portion for holding the lead wire, and an intermediate guide portion provided between the fastening portion and the guide portion for holding the lead wire. [Effects of the Invention]

[0008] According to the present invention, a reactor can be obtained that can easily secure the lead wires of external devices without increasing the number of parts. [Brief explanation of the drawing]

[0009] [Figure 1] This is a perspective view showing the overall structure of the reactor body. [Figure 2] This diagram shows the mold core; (a) is a perspective view showing the overall structure, and (b) is a perspective view showing the mold core disassembled. [Figure 3] This is a magnified view of the intermediate guide section. [Figure 4] This is a schematic diagram showing the radius R from the bending point to the bending center. [Figure 5] This is a perspective view showing the overall configuration of the reactor, with the reactor body housed in a case. [Modes for carrying out the invention]

[0010] (Embodiment) A reactor according to an embodiment will be described with reference to the drawings. Figure 1 is a perspective view showing the overall configuration of the reactor body. In each drawing, thickness, dimensions, positional relationships, ratios, or shapes may be emphasized for ease of understanding, and the present invention is not limited to such emphasis. Furthermore, the direction perpendicular to the winding axis of the coil and the direction in which the legs of the core are aligned side by side is called the width direction, the direction perpendicular to the winding axis of the coil and the width direction is called the height direction or up-down direction, and when the reactor body is housed in a case, the direction toward the bottom surface of the case is called the down direction, and the direction away from the bottom surface of the case is called the up direction. These directions are expressions to show the positional relationships of each component of the reactor and do not limit the positional relationships and directions in which the reactor is installed on the object to be installed.

[0011] The reactor 10 is an electromagnetic component that converts electrical energy into magnetic energy for storage and release, and is used in various applications such as office automation equipment, solar power generation systems, and automobiles. As shown in Figure 1, the reactor 10 comprises a reactor body 1. The reactor body 1 has a coil 2, a busbar 3, a core 4, and a resin member 5.

[0012] Coil 2 has a wound body 21 made by winding a conductive material, which is coated with an insulating coating such as enamel, into a cylindrical shape. The wound body 21 is formed by winding it spirally along the winding axis, shifting the winding position with each turn. The wound body 21 is mounted on the core 4.

[0013] The conductive member of coil 2 is, for example, a flat rectangular wire, and it is a spiral edgewise coil formed by winding the conductive member so that its wide surface extends in a direction perpendicular to the winding axis of coil 2. However, the wire material and winding method of coil 2 are not limited to an edgewise coil of flat rectangular wire and may take other forms. A lead wire 22 extends parallel to the winding axis from the end face of the winding body 21 which is perpendicular to the winding axis.

[0014] The busbar 3 is a plate-shaped conductive material made of copper, aluminum, or the like. The busbar 3 connects the lead wire 22 of the coil 2 to the external terminal 61 of an external device (not shown). One end of the busbar 3 is connected to the lead wire 22 by welding or the like. The other end of the busbar 3 has a circular mounting hole that extends to a fastening part 53 (described later) and connects to the external terminal 61 (see Figure 5). When power is supplied from the external device, current flows to the coil 2 via the busbar 3, generating a magnetic flux.

[0015] Core 4 can be made of a compacted magnetic core, a ferrite core, laminated steel sheet, or a metal composite core. A metal composite core is a magnetic material formed by mixing magnetic powder and resin, and then hardening the resin. Core 4 becomes the magnetic path through which the magnetic flux generated by coil 2 passes.

[0016] Figure 2(a) is a perspective view of the molded core, and Figure 2(b) is an exploded perspective view of the molded core. The core 4 is formed by joining two core members 41 and 42. Core member 41 has a middle leg 43, an outer leg 44, and a yoke portion 45. The coil 2 is wound around the middle leg 43. A pair of outer legs 44 are provided and are positioned side by side with the middle leg 43. The pair of outer legs 44 are positioned so as to sandwich the middle leg 43. The yoke portion 45 connects the middle leg 43 and the pair of outer legs 44. Thus, core member 41 has a roughly E-shape. Core member 42 has a rectangular parallelepiped shape. The core member 42 and the middle leg 43 and outer leg 44 of core member 41 are joined together with adhesive to form the annular core 4.

[0017] A magnetic gap may be provided at this joint. A magnetic gap may be a plate-shaped spacer or an air gap. A plate-shaped spacer may be made of a non-magnetic material, a ceramic such as alumina or zirconia, a non-metal, resin, carbon fiber, or a composite of two or more of these materials formed into a flat plate shape, or gap paper. An air gap is a gap without magnetic material.

[0018] The resin member 5 covers the periphery of the core 4. The resin member 5 is composed of resin bodies 51 and 52 that respectively cover the core members 41 and 42 by mold molding. That is, a mold core 4A composed of the core member 41 and the resin body 51 and a mold core 4B composed of the core member 42 and the resin body 52 are formed. The coil 2 is attached to the middle leg 43 of the mold core 4A, and the mold core 4A and the mold core 4B are joined to assemble the reactor body 1.

[0019] Examples of the type of resin constituting the resin member 5 include epoxy resin, unsaturated polyester resin, urethane resin, BMC (Bulk Molding Compound), PPS (Polyphenylene Sulfide), PBT (Polybutylene Terephthalate), or a composite thereof. Note that a thermally conductive filler may be mixed into the resin.

[0020] The resin member 5 has a fastening portion 53, a guide portion 54, and an intermediate guide portion 55. The fastening portion 53 connects and fixes the bus bar 3 and the external terminal 61. The fastening portion 53 is a circular hole, and a collar is provided around this hole. The bus bar 3 is arranged on the fastening portion 53 such that the hole of the fastening portion 53 and the mounting hole of the bus bar 3 overlap. The holes of the external terminal 61 are overlapped with the mounting holes of the bus bar 3, and the bus bar 3 and the external terminal 61 are connected and fixed by screwing with a bolt or the like.

[0021] The fastening portion 53 is provided at the corner of the substantially rectangular reactor body 1. A pair of fastening portions 53 is provided. One fastening portion 53a is provided at the corner of the resin body 51, and the other fastening portion 53b is provided at the corner of the resin body 52. This pair of fastening portions 53a and 53b are respectively provided at the diagonal corners of the reactor body 1.

[0022] The guide portion 54 is a member that guides the lead wires 62 of external equipment introduced into the area of ​​the reactor body 1. The area of ​​the reactor body 1 refers to the extension area of ​​the reactor body 1 in the height direction. The guide portion 54 is provided at the corner opposite the fastening portion 53, so as to sandwich the core 4 where the coil 2 is not attached. Note that the corner opposite the fastening portion 53 referred to here is sufficient as long as the guide portion 54 can guide the lead wires 62 of the external equipment, described later, so that they are routed in a straight line above the core 4.

[0023] A pair of guide sections 54 are provided. One guide section 54a is provided at the corner of the resin body 52, and the other guide section 54b is provided at the corner of the resin body 51. The pair of guide sections 54a and 54b are provided at diagonally opposite corners of the reactor body 1. That is, the fastening section 53a and the guide section 54a, and the fastening section 53b and the guide section 54b are arranged opposite each other, with the outer leg 44 in between.

[0024] The guide portion 54 extends outward from the corner of the reactor body 1. The guide portion 54 has a ring shape with a circular hole on its inner surface. The axis of the circular hole in the guide portion 54 is parallel to the height direction. A part of the ring-shaped guide portion 54 is cut out. That is, the guide portion 54 has a notch portion 541. The notch portion 541 only needs to be large enough to allow the lead wire 62 of the external device to be inserted into the inside of the guide portion 54, but it is preferable that it be approximately the same size as the outer diameter of the lead wire 62.

[0025] The notch 541 is preferably located in a position that does not cause the lead wire 62 to try to escape after it has been inserted into the guide portion 54. In this embodiment, the notch 541 of the guide portion 54a is located on the opposite side from the fastening portion 53b, and the notch 541 of the guide portion 54b is located on the fastening portion 53a side. The inner diameter of the ring of the guide portion 54 can be set to an appropriate size depending on the outer diameter of the lead wire 62.

[0026] The intermediate guide portion 55 is provided between the fastening portion 53 and the guide portion 54, and is a member that guides the lead wire 62 extending between the fastening portion 53 and the guide portion 54. The intermediate guide portion 55 is provided at an intermediate point between the fastening portion 53 and the guide portion 54. That is, the intermediate guide portion 55 is provided on the outer leg 44. The intermediate guide portion 55 extends upward from the resin member 5 covering the outer leg 44 at a position facing the coil 2. Figure 3 is an enlarged view of the intermediate guide portion 55. As shown in Figure 3, the intermediate guide portion 55 has a wall portion 551 and an overhang portion 552.

[0027] The wall portion 551 extends upward from the upper surface of the resin body 51 covering the outer leg 44. The length of the wall portion 551 in the extending direction is greater than or equal to the outer diameter of the lead wire 62. The wall portion 551 is positioned opposite the coil 2. The canopy portion 552 extends from the extended end of the wall portion 551 in a direction perpendicular to the wall portion 551 and faces the upper surface of the resin body 51 covering the outer leg 44. The canopy portion 552 extends in the opposite direction from the coil 2, that is, in the direction away from the coil 2. It is preferable that the length of the canopy portion 552 in the extending direction is longer than the outer diameter of the lead wire 62. No member is provided between the tip of the canopy portion 552 and the upper surface of the resin body 51, and a gap S is provided. In other words, the gap S is provided at a position further away from the coil 2 than the wall portion 551 and faces the wall portion 551. The lead wire 62 is inserted through this gap S and housed in the space enclosed by the upper surface of the resin body 51, the wall portion 551, and the canopy portion 552.

[0028] Furthermore, the resin member 5 has a fixing portion 56. The fixing portion 56 fixes the reactor body 1 to the case 7. The case 7 also has a fixing portion at a position corresponding to the fixing portion 56, and the reactor body 1 is fixed to the case 7 by overlapping the fixing portion 56 of the resin member 5 and the fixing portion of the case 7 and fastening them with screws or the like.

[0029] The external device (not shown) is a component that is electrically connected to the coil 2 and supplies power to the reactor 10. The external device has an external terminal 61 and lead wires 62. The external terminal 61 is made of a conductive material. A mounting hole is formed in the external terminal 61, and the external terminal 61 is mounted on the bus bar 3 such that the mounting hole overlaps with the mounting hole of the bus bar 3.

[0030] The lead wire 62 is a component that connects the external terminal 61 to the external device. That is, one end of the lead wire 62 is connected to the external terminal 61, and the other end is connected to the external device. The lead wire 62 is routed from the fastening part 53 along the winding axis direction above the outer leg 44. That is, the lead wire 62 extends in a straight line along the winding axis direction. Here, "straight line" does not mean a perfectly straight line, but rather a state where there is no significant curvature or bending, and includes a state where there is some curvature or bending in order to be held by the guide part 54 or the intermediate guide part 55.

[0031] The lead wire 62 consists of a metal wire and a covering portion that covers it. The metal wire can be, for example, copper, nickel, aluminum, silver, gold, or two or more of these. The metal wire can be a single wire or a stranded wire made by twisting multiple wires together. The covering portion covers the metal wire with an insulating material such as vinyl, silicone rubber, or fluororubber.

[0032] As shown in Figure 4, when the diameter of the lead wire 62 including the covering is d (mm) and the radius from the bending position to the bending center C is R (mm), then R > 3d is satisfied. It is preferable to satisfy this condition. Because the lead wire 62 has high rigidity, it is difficult to deform, such as by bending.

[0033] Figure 5 is a perspective view showing the overall configuration of the reactor 10. As shown in Figure 5, the reactor 10 includes a case 7. The case 7 houses the reactor body 1. The case 7 is made of a lightweight metal with high thermal conductivity, such as an aluminum alloy, and has heat dissipation properties. Note that the case 7 does not necessarily have to be metal; it may be made of a resin with excellent thermal conductivity, a resin with a metal heat sink embedded in part of it, or a resin containing a metal filler.

[0034] Case 7 has a box-like shape with an open top. Specifically, Case 7 has a roughly rectangular bottom with four sides, and four side walls rising from the edges of the four sides of the bottom, with an open top. The space enclosed by the bottom and side walls is the storage space for housing the reactor body 1. The reactor body 1 is inserted into the storage space of Case 7 through the opening on the top of Case 7.

[0035] After the reactor body 1 is housed in case 7, a filler material may be filled into case 7. As the filler material, a relatively soft resin with high thermal conductivity is suitable in order to ensure the heat dissipation performance of the reactor body 1 and reduce vibration transmission. Specifically, examples include silicone resin, urethane resin, epoxy resin, and acrylic resin. By filling with a filler material, a filled molded section is formed in the gap between case 7 and reactor body 1 where the filler material has solidified. Therefore, heat generated from the reactor body 1 can be transmitted to case 7 through the filled molded section, improving the heat dissipation performance of the reactor 10.

[0036] (Wiring of lead wires) The external terminal 61 of the external device is placed on the busbar 3 located in the fastening section 53 and fastened with bolts or the like. This connects and fixes the external terminal 61 and the busbar 3. The lead wire 62 connected to the external terminal 61 extends along the outer leg 44 and is housed and held in the space enclosed by the upper surface of the resin body 51, the wall section 551 and the overhang section 552 through the gap S in the intermediate guide section 55. At this time, since the wall section 551 is provided between the lead wire 62 and the coil 2, even if the lead wire 62 moves due to vibration of the reactor 10, the insulation distance with the coil 2 can be maintained.

[0037] Furthermore, the lead wire 62 positioned at the corner opposite to the fastening portion 53 is housed within the guide portion 54 through the notch 541 and held by the guide portion 54. At this time, as shown by the arrows in Figure 1, the lead wire 62 held by the guide portion 54a tends to move towards the fastening portion 53b, and the lead wire 62 held by the guide portion 54b tends to move outward in the winding axis direction of the reactor 10. This direction of movement is also called the escape direction. However, the notches 541 of each guide portion 54 are not provided in this escape direction, and the lead wire 62 is held by the guide portion 54. Therefore, it is possible to prevent the lead wire 62 from coming out of the guide portion 54.

[0038] In particular, in this embodiment, the lead wire 62 satisfies R > 3d, where d (mm) is the diameter of the lead wire 62 including the covering portion, and R (mm) is the radius from the bending position to the bending center. In other words, the lead wire 62 is difficult to bend. Therefore, bending the lead wire 62 for placement takes time and reduces productivity. However, in this embodiment, the lead wire 62 is wired in a straight line along the outer leg 44, so bending by the worker is unnecessary, and productivity is increased. Thus, the present invention is more effective when using a lead wire 62 that is difficult to bend.

[0039] (effect) As described above, the reactor 10 of this embodiment comprises a core 4, a coil 2 mounted on the core 4, a resin member 5 covering the periphery of the core 4, and a fastening portion 53 for fastening the external terminal 61 of an external device electrically connected to the coil 2. The external device has a lead wire 62 connected to the external terminal 61, and the lead wire 62 is routed linearly above the outer leg 44, where the coil 2 is not mounted. The resin member 5 is provided on the opposite side of the fastening portion 53 so as to sandwich the outer leg 44 on which the lead wire 62 is routed above, and has a guide portion 54 for holding the lead wire 62, and an intermediate guide portion 55 provided between the fastening portion 53 and the guide portion 54 for holding the lead wire 62.

[0040] This allows the lead wire 62 to be fixed simply by inserting it into the guide section 54 and the intermediate guide section 55, thereby increasing work efficiency. Furthermore, since it is not fixed with cable ties or the like as in conventional methods, the number of parts can be reduced, and production costs can also be reduced.

[0041] The intermediate guide section 55 is provided opposite the coil 2 and has a wall section 551 rising from the resin member 5 and a canopy section 552 extending from the tip of the wall section 551 in the direction opposite to the coil 2.

[0042] As described above, a wall portion 551 is provided between the lead wire 62 and the coil 2. Therefore, even if the lead wire 62 moves due to vibrations of the reactor 10, the wall portion 551 acts as a barrier, preventing interference with the coil 2. In addition, by providing a canopy portion 552, it is possible to prevent the lead wire 62 from going over the wall portion 551 and interfering with the coil 2.

[0043] The lead wire 62 has a metal wire and a covering portion that covers the metal wire. When the diameter of the lead wire including the covering portion is d (mm) and the radius from the bending position to the bending center is R (mm), R > 3d is satisfied. Therefore, the lead wire 62 is difficult to bend. In this embodiment, since the lead wire 62 extends in a straight line along the outer leg 44, there is no need to bend or curve it significantly, and it is only necessary to fix it to the guide portion 54 or the intermediate guide portion 55. Thus, the lead wire can be easily wired.

[0044] The guide portion 54 has a notch 541 into which the lead wire 62 is inserted, and the size of the notch 541 is approximately the same as the outer diameter of the lead wire 62. This improves the workability of wiring the lead wire 62 and prevents the lead wire 62 from falling out of the guide portion 54.

[0045] If the size of the notch 541 is larger than the outer diameter of the lead wire 62, it is easier to insert the lead wire 62 from the notch 541 into the guide portion 54. However, if the lead wire 62 moves due to vibrations of the reactor 10, there is a risk that the lead wire 62 may fall out of the notch 541. On the other hand, if the size of the notch 541 is smaller than the outer diameter of the lead wire 62, it is possible to prevent the lead wire 62 from falling out even if it moves, but it takes time to insert the lead wire 62 into the guide portion 54. Therefore, by making the size of the notch 541 approximately the same as the outer diameter of the lead wire 62, the wiring work of the lead wire 62 can be performed efficiently, and at the same time, it is possible to prevent the lead wire 62 inserted into the guide portion 54 from falling out of the notch 541.

[0046] (Other embodiments) While embodiments of the present invention have been described herein, these embodiments are presented as examples and are not intended to limit the scope of the invention. The above embodiments can be implemented in various other forms, and various omissions, substitutions, and modifications can be made without departing from the scope of the invention. Embodiments and their variations are included in the scope and essence of the invention, as well as in the claims and their equivalents.

[0047] In this embodiment, the lead wire 62 extends linearly along the outer leg 44 parallel to the winding axis direction, but is not limited to this, and may extend along the yoke portion 45 of the core member 41 or along the core member 42. That is, the lead wire 62 extending from the fastening portion 53a may extend along the yoke portion 45 toward the guide portion 54b of the resin body 51, and the lead wire 62 extending from the fastening portion 53b may extend along the resin body 52 (core member 42) toward the guide portion 54a of the resin body 52.

[0048] In this embodiment, only one intermediate guide portion 55 was provided between the fastening portion 53 and the guide portion 54, but two or more may be provided. [Explanation of symbols]

[0049] 10 Reactors 1. Reactor body 2 coils 21 coiled body 22 Lead wire 3 bus bars 4 cores 41 Core members 42 Core members 43 Middle leg 44 Outer leg 45 York section 4A mold core 4B mold core 5 Resin component 51 Resin body 52 Resin body 53, 53a, 53b Fastening section 54, 54a, 54b Guide section 55 Intermediate guide section 61 External terminals 62 Lead wires S Gap 7 cases

Claims

1. The core and A coil attached to the aforementioned core, A resin member covering the periphery of the core, A fastening portion for fastening the external terminal of an external device that is electrically connected to the coil, Equipped with, The external terminal is connected to a lead wire that connects the external terminal to the external device. The lead wires are routed linearly along the core where the coil is not installed, above the core. The aforementioned resin member is A guide portion is provided on the opposite side of the fastening portion so as to sandwich the core on which the lead wires are wired above, and the guide portion holds the lead wires, An intermediate guide portion is provided between the fastening portion and the guide portion, and holds the lead wire, Having A reactor characterized by...

2. The aforementioned intermediate guide section is A wall portion is provided opposite the coil and rises from the resin member, An overhang portion extending from the tip of the wall portion in the direction opposite to the coil, Having The reactor according to claim 1, characterized by the following:

3. The aforementioned lead wire is Metal wire and A covering portion that covers the aforementioned metal wire, It has, Let d (mm) be the diameter of the lead wire including the covering portion, and R (mm) be the radius from the bending position to the bending center. Then, R > 3d must be satisfied. A reactor according to claim 1 or 2, characterized by the following:

4. The guide portion has a notch into which the lead wire is inserted. The size of the notch is approximately the same as the outer diameter of the lead wire. The reactor according to claim 1 or 2, characterized by the following:

Citation Information

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