This application is a new U.S. Patent Application that claims benefit of Japanese Patent Application No. 2019-080415, dated Apr. 19, 2019, the disclosure of this application is being incorporated herein by reference in its entirety for all purposes.
The present invention relates to a reactor including an outer peripheral iron core and a method for manufacturing the same.
In recent years, a reactor has been developed that include an outer peripheral iron core and a plurality of iron-core coils disposed inside the outer peripheral iron core. Each of the plurality of iron-core coils includes an iron core and a coil wound around the iron core.
JP 2018-206949 A discloses that a reactor that includes a fixture that fixes both end portions of a plurality of iron cores to each other by passing through an interior of an outer peripheral iron core, the fixture including plate-like members disposed on both end faces of the outer peripheral iron core and including rod-like members that connect the plate-like members to each other by passing through the interior of the outer peripheral iron core.
However, J P 2018-206949 A has a problem in that when two plate-like members are rigidly connected to each other with the rod-like members, the plate members may be bent. In this case, gaps are formed between each of the plurality of iron cores and the respective plate-like members to cause insufficient fixing of the plurality of iron cores. As a result, when the reactor is used, the plurality of iron cores may vibrate to cause noise.
Thus, there is a desire for a reactor capable of firmly holding a plurality of iron cores without generating vibration and noise, and a method for manufacturing the same.
According to a first aspect of the present disclosure, there is provided a reactor including a core main body, the core main body having: an outer peripheral iron core composed of a plurality of outer peripheral iron core portions; at least three iron cores coupled to inner faces of the plurality of outer peripheral iron core portions; and coils wound around the respective at least three iron cores, the at least three iron cores respectively having radial inner end portions positioned near a center of the outer peripheral iron core, converging toward the center of the outer peripheral iron core, a gap being formed between one iron core of the at least three iron cores and another iron core adjacent to the one iron core, the gap being magnetically coupled, the radial inner end portions of the at least three iron cores being spaced apart from each other with the gap being magnetically coupled, the reactor further including a fixture that fixes both end portions of the at least three iron cores together by passing through an interior of the outer peripheral iron core in a region between the outer peripheral iron core and the gap, the fixture having: plate-like members disposed on both end faces of the core main body; and rod-like members connecting the plate-like members to each other by passing through the interior of the outer peripheral iron core, and the plate-like members each including a protrusion extending axially inward of the core main body.
In the first aspect, the protrusion extends axially inward of the core main body. Thus, even when the rod-like members and the plate-like members are connected, the plate-like members are less likely to easily bend. Accordingly, the plurality of iron cores can be firmly held while the generation of vibration and noise is suppressed.
The objects, features and advantages of the present invention will become more apparent from the description of the following embodiments in connection with the accompanying drawings, wherein:
Embodiments of the present invention will be described below with reference to the accompanying drawings. Throughout the drawings, corresponding components are denoted by common reference numerals.
While in the following description, the three phase reactors are primarily described by way of example, an application of the present disclosure is not limited to a three-phase reactor and the present disclosure is widely applicable to a multi-phase reactor in which a constant inductance is required for each phase. In addition, the reactor according to the present disclosure is not limited to that provided on a primary side and a secondary side of an inverter in an industrial robot or a machine tool and can be applied to various apparatuses.
The outer peripheral iron core 20 may have another rotationally symmetric shape, e.g., a circular shape. Additionally, the number of iron core coils may be a multiple of three. In that case, the reactor 6 can be used as a three-phase reactor.
As can be seen from the drawing, the iron core coils 31 to 33 respectively includes iron cores 41 to 43 extending only radially of the outer peripheral iron core 20; and coils 51 to 53 wound around the corresponding iron cores. In
The outer peripheral iron core 20 is composed of a plurality of outer peripheral iron core portions, e.g., three outer peripheral iron core portions 24 to 26 divided in the circumferential direction. The outer peripheral iron core portions 24 to 26 are formed integrally with the iron cores 41 to 43, respectively. The outer peripheral iron core portions 24 to 26 and the iron cores 41 to 43 are each formed by stacking a plurality of steel plates, carbon steel plates, or electromagnetic steel plates or are formed of a dust core. Forming the outer peripheral iron core 20 with the plurality of outer peripheral iron core portions 24 to 26 as described above enables, even when the outer peripheral iron core 20 is large, the outer peripheral iron core 20 described above to be easily manufactured. The number of iron cores 41 to 43 and the number of outer peripheral iron core portions 24 to 26 may not be necessarily equal to each other.
The coils 51 to 53 are disposed in coil spaces 51a to 53a formed between the outer peripheral iron core portions 24 to 26 and the corresponding iron cores 41 to 43. In the coil spaces 51a to 53a, inner circumferential faces and outer circumferential faces of the coils 51 to 53 are adjacent to inner walls of the coil spaces 51a to 53a.
In addition, each of the radial inner end portions of the iron cores 41 to 43 is positioned near the center of the outer peripheral iron core 20. In the drawing, the radial inner end portion of each of the iron cores 41 to 43 converges toward the center of the outer peripheral iron core 20 and has a tip angle of about 120 degrees. The radial inner end portions of the iron cores 41 to 43 are spaced apart from each other with gaps 101 to 103 being magnetically coupled.
In other words, the radial inner end portion of the iron core 41 is spaced apart from the radial inner end portions of the respective two adjacent iron cores 42 and 43 with the gaps 101 and 102. The same applies to the other iron cores 42 and 43. The gaps 101 to 103 are equal to each other in dimension.
As described above, the configuration illustrated in
In addition, the core main body 5 of the present disclosure has a difference in magnetic path length between phases that is less than that in reactors with configurations in the related art. Thus, the present disclosure enables reducing inductance unbalance due to the difference in magnetic path length.
Referring again to
The plate-like members 91 and 92 also may be formed of an insulating material, such as a resin. This case suppresses the generation of heat in the reactor 6 compared to when the plate-like members 91 and 92 are formed of metal. Still, the rod-like member 93 is preferably made of metal. This increases the strength of the rod-like member 93 against tension applied when the rod-like member 93 is fixed, so the fixing of the core can be held more firmly.
As can be seen from
The plurality of rod-like members 93 pass through an interior of the outer peripheral iron core 20 in respective regions between the outer peripheral iron core 20 and the gaps 101 to 103. The rod-like member 93 is slightly larger in height than the core main body 5 (height in a stacking direction). The rod-like member 93 is also provided at both end portions with respective thread parts. This allows each rod-like member 93 to be screwed into a hole formed in the corresponding plate members 91 and 92.
Then, the plate-like member 91 and the rod-like members 93 are moved toward one end face of the core main body 5 such that the rod-like members 93 pass through the regions between the outer peripheral iron core 20 and the respective gaps 101 to 103. When the plate-like member 91 reaches the one end face of the core main body 5, a leading end of each of the rod-like members 93 protrudes from the other end face of the core main body 5. Then, the plate-like member 92 is disposed on a side of the other end face of the core main body 5, and the rod-like members 93 are each rotated and screwed into the plate-like member 92. To connect the plate-like members 91 and 92 to the rod-like members 93, other fasteners such as screws, bolts, and the like may be used.
As described above, the plate-like members 91 and 92 each have an area allowing the gaps 101 to 103 to be covered. Thus, when the core main body 5 is sandwiched in the axial direction between the plate-like members 91 and 92 with the rod-like members 93, both end portions of the plurality of iron cores 41 to 43 are firmly held together.
With reference to
Each of the plate members 91 and 92 including the protrusions 95 preferably has the same shape. In addition, the protrusions 95 may be provided only in one of the plate-like members 91 and 92. Further, the protrusion 95 may protrude from at least one of the three corner portions of each of the plate members 91 and 92.
As can be seen from
Then,
Then,
As can be seen from the drawings, the outer peripheral iron core 20 is formed of four outer peripheral iron core portions 24 to 27 that are circumferentially divided. The iron core coils 31 to 34 respectively include iron cores 41 to 44 extending radially and coils 51 to 54 wound around the corresponding iron cores. The iron cores 41 to 44 each have a radial outer end portion formed integrally with the corresponding outer peripheral iron core portions 21 to 24. The number of the iron cores 41 to 44 and the number of the outer peripheral iron core portions 24 to 27 may not be necessarily equal to each other.
In addition, the iron cores 41 to 44 each have a radial inner end portion positioned near the center of the outer peripheral iron core 20. In
The plate-like member 91 illustrated in
Even in this case, the protrusions 95 extend inward in the axial direction of the core main body 5, so the plate members 91 and 92 are less likely to easily bend even when the rod-like members 93 and the plate-like members 91 and 92 are connected. Thus, the plurality of iron cores 41 to 43 can be firmly held by the fixture 90 while the generation of vibration and noise during use of the reactor 6 is suppressed.
As can be seen from
As can be seen in
As illustrated in
According to a first aspect, there is provided a reactor including a core main body (5), the core main body having: an outer peripheral iron core (20) composed of a plurality of outer peripheral iron core portions (21 to 24); at least three iron cores (41 to 44) coupled to inner faces of the plurality of outer peripheral iron core portions; and coils (51 to 54) wound around the at least three iron cores, the at least three iron cores respectively having radial inner end portions positioned near a center of the outer peripheral iron core, converging toward the center of the outer peripheral iron core, a gap (101 to 104) being formed between one iron core of the at least three iron cores and another iron core adjacent to the one iron core, the gap being magnetically coupled, the radial inner end portions of the at least three iron cores being spaced apart from each other with the gap being magnetically coupled, the reactor further including a fixture (90) that fixes both end portions of the at least three iron cores together by passing through an interior of the outer peripheral iron core in a region between the outer peripheral iron core and the gap, the fixture having: plate-like members (91, 92) disposed on both end faces of the core main body; and rod-like members (93) connecting the plate-like members to each other by passing through the interior of the outer peripheral iron core, and the plate-like members each including a protrusion (95) extending axially inward of the core main body.
According to a second aspect, the first aspect is configured such that an inner side face of the protrusion is in contact with the iron core corresponding to the protrusion.
According to a third aspect, the first or second aspect is configured such that the plate-like members and the protrusion are each formed of an insulating material.
According to a fourth aspect, any one of the first to third aspects is configured such that the rod-like members are each inserted into a tube member (96) between the plate-like members.
According to a fifth aspect, there is provided a reactor including a core main body (5), the core main body having: an outer peripheral iron core (20) composed of a plurality of outer peripheral iron core portions (21 to 24); at least three iron cores (41 to 44) coupled to inner faces of the plurality of outer peripheral iron core portions; and coils (51 to 54) wound around the at least three iron cores, the at least three iron cores respectively having radial inner end portions positioned near a center of the outer peripheral iron core, converging toward the center of the outer peripheral iron core, a gap (101 to 104) being formed between one iron core of the at least three iron cores and another iron core adjacent to the one iron core, the gap being magnetically coupled, the radial inner end portions of the respective at least three iron cores being spaced apart from each other with the gap being magnetically coupled, the reactor further including a fixture (90) that fixes both end portions of the at least three iron cores together by passing through an interior of the outer peripheral iron core in a region between the outer peripheral iron core and the gap, the fixture having: plate-like members (91, 92) disposed on both end faces of the core main body; and rod-like members (93) connecting the plate-like members to each other by passing through the interior of the outer peripheral iron core, the rod-like members each being inserted into a tube member (96) between the plate-like members.
According to a sixth aspect, the fifth aspect is configured such that the rod-like members are each made of metal.
According to a seventh aspect, any one of the first to sixth aspects is configured such that the number of the at least three iron core coils is a multiple of three.
According to an eighth aspect, any one of the first to sixth aspects is configured such that the number of the at least three iron core coils is an even number of four or more.
According to a ninth aspect, a method for manufacturing a reactor includes: preparing at least three iron cores coupled to a plurality of outer peripheral iron core portions constituting an outer peripheral iron core; inserting the at least three iron cores respectively into the at least three coils; forming a core main body by assembling the plurality of outer peripheral iron core portions; attaching a rod-like member to a first plate-like member provided with a protrusion extending inward in an axial direction of the core main body; disposing the first plate-like member on one end of the outer peripheral iron core, by passing the rod-like member through an interior of the outer peripheral iron core; and fixing both end portions of the at least three iron cores together by attaching a second plate-like member to the rod-like member protruding from the other end of the outer peripheral iron core, thereby manufacturing the reactor.
According to a tenth aspect, a method for manufacturing a reactor includes: preparing at least three iron cores coupled to a plurality of outer peripheral iron core portions constituting an outer peripheral iron core; inserting the at least three iron cores respectively into the at least three coils; forming a core main body by assembling the plurality of outer peripheral iron core portions; attaching a rod-like member to a first plate-like member; inserting the rod-like member into a tube member; disposing the first plate-like member on one end of the outer peripheral iron core by passing the rod-like member inserted into the tube member through an interior of the outer peripheral iron core; and fixing both end portions of the at least three iron cores together by attaching a second plate-like member to the rod-like member protruding from the other end of the outer peripheral iron core, thereby manufacturing the reactor.
In the first and ninth aspects, the protrusion extends axially inward of the core main body. Thus, even when the rod-shaped members and the plate-like members are connected, the plate-like members are less likely to easily bend. Accordingly, the plurality of iron cores can be firmly held while the generation of vibration and noise is suppressed.
In the second aspect, the plurality of iron cores can be held more firmly.
In the third aspect, the generation of heat in the reactor can be suppressed.
In the fourth aspect, the plurality of iron cores can be firmly held.
In the fifth and tenth inventions, the outer circumferential face of the tube member is in contact with the side face of the iron core, so the plate members are less likely to easily bend. Thus, the plurality of iron cores can be firmly held by the fixture while the generation of vibration and noise during use of the reactor is suppressed.
In the sixth aspect, the strength of the rod-like member against tension applied when the rod-like member is fixed increases, so the fixing of the core can be held more firmly.
In the seventh aspect, the reactor can be used as a three-phase reactor.
In the eighth aspect, the reactor can be used as a single-phase reactor.
While the invention has been described with reference to specific embodiments, it will be understood, by those skilled in the art, that various changes or modifications may be made thereto without departing from the scope of the claims described later.
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JP2019-080415 | Apr 2019 | JP | national |
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Number | Date | Country | |
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20200357562 A1 | Nov 2020 | US |