The present invention relates to a reactor and more particularly to a reactor having a relay member with an input/output terminal.
Reactors are provided between a power supply side (primary side) and an inverter; or between a load side (secondary side) such as a motor, etc. and an inverter and are used to reduce inverter failure or to improve power factor in industrial robots and machine tools and the like.
As a reactor that prevents magnetic flux from leaking to the outside, there has been reported a three-phase reactor including a central iron core, an outer peripheral iron core surrounding the central iron core, and at least three connecting portions magnetically connecting the central iron core and the outer peripheral iron core, where the connecting portions include one or more connecting iron cores, one or more coils wound around the connecting iron cores, and one or more gaps (e.g., JP-A-2017-059805).
In the reactor in the related art, coils in which the positions of two terminals in each coil are the same are used for the three coils, and when connecting each of the terminals to a terminal block with a relay member for each of the three coils, there has been a problem that a shape of the relay member becomes complicated. In addition, when the relay members cross each other, there is a risk of shorting due to vibration or the like.
An object of this invention is to provide a reactor which can prevent a shape of relay members connected to terminals of coils from becoming complex.
A reactor according to the embodiments of the present disclosure includes: an outer peripheral iron core; three leg iron cores provided on an inner surface side of the outer peripheral iron core and spaced apart from each other in a circumferential direction; and three coils wound around each of the three leg iron cores, each of the three coils having an input side coil end and an output side coil end projecting from a same end surface on an end side in the axial direction of the three leg iron cores, where the three coils include two first coils in which a projecting position of the input side coil end and a projecting position of the output side coil end at a portion projecting from the end surface have a first relative positional relationship, and one second coil in which the projecting position of the input side coil end and the projecting position of the output side coil end at the portion projecting from the end surface have a second relative positional relationship opposite to the first relative positional relationship, and a winding direction from the input side coil end to the output side coil end of the first coil and a winding direction from the input side coil end to the output side coil end of the second coil are reversed to each other.
According to a reactor according to the embodiments of the present disclosure, it is possible to prevent a shape of relay members connected to terminals of coils from becoming complicated. Further, since the relay members do not cross each other, the risk of shorting due to vibration or the like can be suppressed.
Hereinafter, a reactor according to the present invention will be described with reference to the drawings. However, the technical scope of the present invention is not limited to these embodiments and includes the present invention described in the claims and elements equivalent thereto.
The outer peripheral iron core 1 may include three outer peripheral iron core portions 11, 12, 13, that is, the first outer peripheral iron core portion 11, the second outer peripheral iron core portion 12, and the third outer peripheral iron core portion 13. The outer peripheral iron core 1 may have a substantially hexagonal annular structure. However, the outer peripheral iron core 1 may have a circular or other polygon shape.
The three leg iron cores 21, 22, 23 are provided on the inner surface side of the outer peripheral iron core 1 and are arranged spaced apart from each other in a circumferential direction. As illustrated in
Three coils 31, 32, 33 are respectively wound around three leg iron cores 21, 22, 23. The three coils 31, 32, 33 each have an input side coil end 31a, 32a, 33a and an output side coil end 31b, 32b, 33b, which project from a same end surface on an end side in the axial direction of the three leg iron cores 21, 22, 23. The three coils 31, 32, 33 include two first coils 31, 33 in which a projecting position of the input side coil end 31a, 33a and a projecting position of the output side coil end 31b, 33b at a portion projecting from the end surface have a first relative positional relationship, and one second coil 32 in which a projecting position of the input side coil end 32a and a projecting position of the output side coil end 32b at a portion projecting from the end surface have a second relative positional relationship opposite to the first relative positional relationship, where a winding direction from the input side coil end to the output side coil end of the first coils 31, 33 and a winding direction from the input side coil end to the output side coil end of the second coil 32 are reversed to each other. The three coils 31, 32, 33 may include flat wire, round wire or litz wire.
As illustrated in
Specifically, focusing on a distance from a center O of the outer peripheral iron core 1, the input side terminal 31a of the first coil 31 is closer to the center O than the output side terminal 31b, but the input side terminal 32a of the second coil 32 is farther from the center O than the output side terminal 32b. Also, although the first coils 31 and 33 are in rotational symmetry with each other about the center O of the outer peripheral iron core 1, the second coil 32 is not in rotational symmetry with the first coils 31, 33.
Furthermore, three input terminals 61a, 62a, 63a to which the input side coil ends 31a, 33a of the first coils 31, 33 and the input side coil end 32a of the second coil 32 are individually connected; and three output terminals 61b, 62b, 63b to which the output side coil ends 31b, 33b of the first coils 31, 33 and the output side coil end 32b of the second coil 32 are individually connected are further provided, where the three input terminals 61a, 62a, 63a and the three output terminals 61b, 62b, 63b may be arranged to gather on opposite sides to each other on an end side in the axial direction.
Furthermore, it is preferable that first relay members 41a, 42a, 43a connecting the input side coil ends 31a, 32a, 33a to the input terminals 61a, 62a, 63a and second relay members 41b, 42b, 43b connecting the output side coil ends 31b, 32b, 33b to the output terminals 61b, 62b, 63b are further provided.
As illustrated in
Then, a reactor having a relay member of a complicated shape in which the first relay member and the second relay member overlap will be described.
As illustrated in
In this regard, the positions of the input side coil end and the output side coil end in the coil where the coil ends have the first relative positional relationship and in the coil where the coil ends have the second relative positional relationship will be described.
By the reactor according to Example 1, the three first relay members and the three second relay members can be arranged so as not to cross each other so that the first relay member and the second relay member may not short out by vibration or the like.
Then, a reactor according to Example 2 will be described.
As illustrated in
The three coils 31, 32, 33 may include flat wire, round wire or litz wire.
According to the reactor according to Example 2, since the input side coil end is directly connected to the input terminal and the output side coil end is directly connected to the output terminal, the process of connecting the first relay member and the second relay member to the input side coil end and the output side coil end respectively can be omitted.
Although the example in which the coils 31 and 33 are used as the first coils and the coil 32 is used as the second coil has been described in the description of above Example 1, the present invention is not limited to such an example, but the coil 31 or coil 33 may be used as the second coil. In addition, even if the input side coil end and the output side coil end are interchanged, the reactors according to Examples of the present disclosure can be realized similarly.
Number | Date | Country | Kind |
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JP2018-195686 | Oct 2018 | JP | national |
Number | Name | Date | Kind |
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20120106210 | Xu | May 2012 | A1 |
20130187741 | Goodrich | Jul 2013 | A1 |
20160125998 | Bhide | May 2016 | A1 |
20170154718 | Maeda | Jun 2017 | A1 |
20180254135 | Tsukada | Sep 2018 | A1 |
20190035530 | Yoshida | Jan 2019 | A1 |
Number | Date | Country |
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201759805 | Mar 2017 | JP |
2017103269 | Jun 2017 | JP |
2018147982 | Sep 2018 | JP |
Entry |
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English Abstract and Machine Translation for Japanese Publication No. JP 2017-103269 A, published Jun. 8, 2017, 31 pgs. |
English Abstract and Machine Translation for Japanese Publication No. JP 2018-147982 A, published Sep. 20, 2018, 29 pgs. |
English Machine Translation for Japanese Publication No. 2017-059805 A, published Mar. 23, 2017, 35 pgs. |
Number | Date | Country | |
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20200126714 A1 | Apr 2020 | US |