JP2005108976A - Toroidal type coil and current sensor - Google Patents

Toroidal type coil and current sensor Download PDF

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JP2005108976A
JP2005108976A JP2003337582A JP2003337582A JP2005108976A JP 2005108976 A JP2005108976 A JP 2005108976A JP 2003337582 A JP2003337582 A JP 2003337582A JP 2003337582 A JP2003337582 A JP 2003337582A JP 2005108976 A JP2005108976 A JP 2005108976A
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core
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cases
holes
protrusions
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JP3818995B2 (en
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Tsutomu Kotani
勉 小谷
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TDK Corp
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<P>PROBLEM TO BE SOLVED: To reduce material costs and the number of assembling processes in order to lower manufacturing costs while the magnetic characteristic is stabilized by eliminating, as much as possible, an influence of external stress to a core. <P>SOLUTION: A core 14 is formed by laminating seven sheets of a high permeability plate 12, and a plurality of holes 18 are respectively arranged at portions provided oppositely to each other of each high permeability plate 12. An upper case 22 and a lower case 24 made of resin in the U-shaped cross-section are arranged to the upper and lower portions of the core 14. At the part opposing to the hole 18 of a pair of cases 22, 24, projected portions 22A, 24A formed in the shape of polygonal prism are provided, resulting in the shape where the hole 18 of the core 14 is engaged with the projected portions 22A, 24A. <P>COPYRIGHT: (C)2005,JPO&NCIPI

Description

本発明は、コアへの外部応力の影響を受け難くして磁気特性の安定化を図りつつ、材料費及び組み立て工数を低減して製造コストを削減したトロイダル状に巻線されたトロイダル型コイル及び、このトロイダル型コイルを用いた電流センサに係る。   The present invention provides a toroidal coil wound in a toroidal shape that is less affected by external stress on the core and stabilizes magnetic properties, while reducing material costs and assembly man-hours to reduce manufacturing costs. The present invention relates to a current sensor using the toroidal coil.

従来より、トロイダル状に捲線が巻き付けられたトロイダル型コイルが電流センサなどに使われている。また、ケース内にゲル状の樹脂を入れることで、パーマロイ製のシート材が積層されて形成されたコアに加わる外部応力を緩和して、磁気特性の安定化を図った構造のトロイダル型コイルが、特開平7−239347号公報に開示されている。   Conventionally, a toroidal coil in which a winding wire is wound in a toroidal shape is used for a current sensor or the like. In addition, by placing a gel-like resin in the case, the toroidal coil with a structure that stabilizes the magnetic properties by relaxing external stress applied to the core formed by laminating permalloy sheet materials JP-A-7-239347.

他方、例えば特開平8−224938号公報には円柱状のボスを形成して位置決めの為に用いる構造が示されているが、単に円柱状のボスにより位置決めすることは、あらゆる分野で実施されているごく一般的な技術内容である。
特開平7−239347号公報 特開平8−224938号公報
On the other hand, for example, JP-A-8-224938 discloses a structure in which a cylindrical boss is formed and used for positioning. However, positioning using a cylindrical boss is performed in various fields. It is a very general technical content.
JP 7-239347 A JP-A-8-224938

しかし、特開平7−239347号公報に開示された構造のトロイダル型コイルでは、磁気特性の安定化を図る為にゲル状の樹脂をケース内に入れる必要があるので、材料費が増加するだけでなく、組み立て工数が増加して組み立ての作業性が低下していた。
一方、巻線時においては、コアを挟んだ状態で一対のケースを保持する必要がある為、一対のケースをテープ等で固定してから捲線を巻き付けなければならならず、上記と同様に組み立て工数が増加する要因となっていた。
However, in the toroidal type coil having the structure disclosed in Japanese Patent Laid-Open No. 7-239347, it is necessary to put a gel-like resin in the case in order to stabilize the magnetic characteristics, so that the material cost only increases. As a result, the assembly man-hours increased, and the assembly workability decreased.
On the other hand, at the time of winding, it is necessary to hold a pair of cases with the core sandwiched between them. The man-hour increased.

本発明は上記事実を考慮し、コアへの外部応力の影響を受け難くして磁気特性の安定化を図りつつ、材料費及び組み立て工数を低減して製造コストを削減したトロイダル型コイル及び電流センサを提供することを目的とする。   In consideration of the above facts, the present invention makes it difficult to be affected by external stress on the core and stabilizes the magnetic characteristics, while reducing the material cost and assembly man-hour to reduce the manufacturing cost and the current sensor. The purpose is to provide.

請求項1によるトロイダル型コイルは、高透磁率材料製の板材が積層されて形成されたコアを樹脂製の一対のケース間に収め、これら一対のケースの周囲に捲線が巻き付けられたトロイダル型コイルであって、
コアに複数の孔部を設けると共に、一対のケースのこれら複数の孔部に対向する部分にそれぞれ多角錐状に形成された突部を設け、
これら突部をコアの孔部にそれぞれ係合させつつ挿入して、一対のケース間にコアを収納したことを特徴とする。
The toroidal coil according to claim 1 is a toroidal coil in which a core formed by laminating plates made of a high magnetic permeability material is placed between a pair of resin cases, and a winding is wound around the pair of cases. Because
A plurality of holes are provided in the core, and protrusions formed in a polygonal pyramid shape are provided in portions facing the plurality of holes of the pair of cases,
The protrusions are inserted while being engaged with the holes of the core, respectively, and the core is housed between a pair of cases.

請求項1に係るトロイダル型コイルによれば、高透磁率材料製の板材が積層されて形成されたコアを樹脂製の一対のケース間に収め、これら一対のケースの周囲に捲線が巻き付けられた構造になっている。また、一対のケースにそれぞれ複数ずつ形成された多角錐状の突部をコアに設けた複数の孔部にそれぞれ係合させつつ挿入して、一対のケース間にコアを収納した構造ともなっている。   According to the toroidal type coil according to claim 1, the core formed by laminating the plates made of a high magnetic permeability material is placed between a pair of resin cases, and a winding is wound around the pair of cases. It has a structure. In addition, a plurality of polygonal pyramid-shaped protrusions each formed on a pair of cases are inserted while being engaged with a plurality of holes provided in the core, and the core is housed between the pair of cases. .

つまり、本請求項では、それぞれ多角錐状の複数の突部を複数の孔部にそれぞれ係合させつつ挿入することで、コアと一対のケースの内面との間に隙間を設けた状態としつつ、一対のケース間でコアがこれら突部により支持された形になる。   That is, in this claim, while inserting a plurality of protrusions each having a polygonal pyramid shape into engagement with a plurality of holes, a gap is provided between the core and the inner surfaces of the pair of cases. The core is supported by these protrusions between the pair of cases.

従って、一対のケースの内面とコアとの間の隙間寸法が安定化するだけでなく、コアに外部応力が加わらないようになる為、コアの磁気特性が安定化して、トロイダル型コイルの歩留まりの向上及び磁気特性の向上が見込めるようになる。さらに、本請求項では、複数の孔部がコアに設けられると共に、多角錐状に形成された突部が複数の孔部に対応して一対のケースに複数ずつ設けられたことで、一対のケース間でコアがこれら複数ずつの突部により確実に支持された形になる。この為、一対のケースの内面とコアとの間の隙間寸法がより安定化するだけでなく、コアに外部応力が確実に加わらないようになる。   Accordingly, not only is the clearance dimension between the inner surface of the pair of cases and the core stabilized, but external stress is not applied to the core, so that the magnetic characteristics of the core are stabilized and the yield of the toroidal coil is reduced. Improvement and improvement in magnetic properties can be expected. Further, in the present invention, a plurality of hole portions are provided in the core, and a plurality of protrusions formed in a polygonal pyramid shape are provided in a pair of cases corresponding to the plurality of hole portions. The core is securely supported by the plurality of protrusions between the cases. For this reason, not only is the clearance dimension between the inner surface of the pair of cases and the core more stable, but also external stress is not reliably applied to the core.

これに伴って、本請求項では、従来例のようにコアに加わる応力を緩和する為にゲル状の樹脂をケース内に注入する必要がなくなる。そしてこの結果として、材料費及び組み立て工数が低減されて作業性が高まり、トロイダル型コイルのトータルな製造コストの削減が見込めるようになる。   Accordingly, in this claim, it is not necessary to inject a gel-like resin into the case in order to relieve the stress applied to the core as in the conventional example. As a result, the material cost and the assembly man-hour are reduced, the workability is improved, and the total manufacturing cost of the toroidal coil can be expected to be reduced.

一方、巻線時においては、複数の突部を複数の孔部にそれぞれ係合させることにより、コアを介して一対のケースが保持される為、コアを挟んで一対のケースを保持する必要がなくなるので、一対のケースをテープ等で固定しなくとも良くなり、これによっても組み立て工数が低減されるようになる。   On the other hand, at the time of winding, a pair of cases are held via the core by engaging the plurality of protrusions with the plurality of holes, respectively, so it is necessary to hold the pair of cases across the core. This eliminates the need to fix the pair of cases with a tape or the like, which also reduces the number of assembly steps.

以上より本請求項によれば、コアへの外部応力の影響を受け難くして磁気特性の安定化を図りつつ、材料費及び組み立て工数を低減して製造コストを削減したトロイダル型コイルが得られるようになる。   As described above, according to the present invention, it is possible to obtain a toroidal coil that reduces the manufacturing cost by reducing the material cost and the assembly man-hour while stabilizing the magnetic characteristics by being hardly influenced by the external stress to the core. It becomes like this.

請求項2に係るトロイダル型コイルによれば、請求項1のトロイダル型コイルと同様の構成の他に、高透磁率材料の各板材の相互に対向する部分に凹凸部を設け、これら凹凸部を相互に嵌め合わせて、これら各板材を相互に係合しつつ積層するという構成を有している。   According to the toroidal type coil according to claim 2, in addition to the same configuration as the toroidal type coil according to claim 1, the concave and convex portions are provided in the mutually facing portions of the respective plates of the high magnetic permeability material. It has a configuration in which these plate members are stacked while being fitted to each other and engaged with each other.

従って、本請求項によれば、高透磁率材料による各板材に例えば半抜き状となる凹凸部を設け、これら凹凸部を相互に嵌め合わせて、各板材を相互に係合しつつ必要枚数積層した後、プレス及び熱処理等して一体型のコアとした。この結果として、各板材を積層してコアを形成した際に、これら各板材が相互に確実に密着するので、テープ等によりこのコアの数箇所を固定する必要が無くなり、組み立て工数がより一層低減されるようになる。   Therefore, according to this claim, for example, a semi-recessed uneven portion is provided on each plate material made of a high magnetic permeability material, and these uneven portions are fitted to each other, and the necessary number of layers are stacked while engaging each plate material. After that, an integrated core was formed by pressing and heat treatment. As a result, when the cores are formed by laminating the respective plate materials, the respective plate materials are securely adhered to each other, so there is no need to fix several portions of the core with tape or the like, and the assembly man-hour is further reduced. Will come to be.

請求項3に係るトロイダル型コイルによれば、請求項1のトロイダル型コイルと同様の構成の他に、コアと一対のケースとの間の係合部分を除いたコアと各ケースとの間に、所定の大きさの隙間が存在するという構成を有している。従って、本請求項によれば、コアと一対のケースの内面との間に隙間が確実に設けられることになる結果として、一対のケースの内面とコアとの間の隙間寸法がより一層安定化するだけでなく、コアに外部応力がより一層確実に加わらないようになる。   According to the toroidal type coil according to claim 3, in addition to the same configuration as the toroidal type coil of claim 1, between the core and each case excluding the engaging portion between the core and the pair of cases. , There is a configuration in which a gap of a predetermined size exists. Therefore, according to this claim, the gap between the inner surface of the pair of cases and the core is further stabilized as a result of the gap being reliably provided between the core and the inner surfaces of the pair of cases. In addition, external stress is not more reliably applied to the core.

請求項4による電流センサは、高透磁率材料製の板材が積層されて形成されたコアに電流を検出し得るセンサ本体を取り付け、このセンサ本体と共にコアを樹脂製の一対のケース間に収め、これら一対のケースの周囲に捲線が巻き付けられたトロイダル型コイルを用いた電流センサであって、
コアに複数の孔部を設けると共に、一対のケースのこれら複数の孔部に対向する部分にそれぞれ多角錐状に形成された突部を設け、
これら突部をコアの孔部にそれぞれ係合させつつ挿入して、一対のケース間にコアを収納したことを特徴とする。
The current sensor according to claim 4 is provided with a sensor body capable of detecting current attached to a core formed by laminating plates made of a high magnetic permeability material, and the core is housed between a pair of cases made of resin together with the sensor body, A current sensor using a toroidal coil in which a wire is wound around the pair of cases,
A plurality of holes are provided in the core, and protrusions formed in a polygonal pyramid shape are provided in portions facing the plurality of holes of the pair of cases,
The protrusions are inserted while being engaged with the holes of the core, respectively, and the core is housed between a pair of cases.

請求項4に係る電流センサによれば、高透磁率材料製の板材が積層されて形成されたコアに電流を検出し得るセンサ本体を取り付け、このセンサ本体と共にコアを樹脂製の一対のケース間に収め、これら一対のケースの周囲に捲線が巻き付けられた構造のトロイダル型コイルを用いた構造になっている。また、請求項1と同様に、一対のケースにそれぞれ形成された多角錐状の突部をコアに設けた複数の孔部にそれぞれ係合させつつ挿入して、一対のケース間にコアを収納した構造ともなっている。   According to the current sensor of claim 4, a sensor body capable of detecting current is attached to a core formed by laminating plates made of a high magnetic permeability material, and the core is attached between the pair of cases made of resin together with the sensor body. And a toroidal coil having a structure in which a wire is wound around the pair of cases. Further, as in claim 1, the polygonal pyramid-shaped protrusions formed on the pair of cases are respectively inserted into the plurality of holes provided in the core, and the core is accommodated between the pair of cases. It has also become a structure.

以上より本請求項によれば、請求項1と同様に、ゲル状の樹脂をケース内に注入する必要がなくなる等して、コアへの外部応力の影響を受け難くして磁気特性の安定化を図りつつ、材料費及び組み立て工数を低減して製造コストを削減した電流センサが得られるようになる。   As described above, according to the present invention, similarly to the first aspect, it is not necessary to inject a gel-like resin into the case. Thus, it is possible to obtain a current sensor with reduced manufacturing costs by reducing material costs and assembly man-hours.

本発明によれば、コアへの外部応力の影響を受け難くして磁気特性の安定化を図りつつ、材料費及び組み立て工数を低減して製造コストを削減したトロイダル型コイル及び電流センサを得ることが可能となる。   According to the present invention, it is possible to obtain a toroidal coil and a current sensor in which the manufacturing cost is reduced by reducing the material cost and the number of assembling steps while stabilizing the magnetic property by being hardly influenced by the external stress on the core. Is possible.

以下、本発明に係るトロイダル型コイル及び電流センサの一実施例を図1から図6に示し、これらの図面に基づきこの一実施例を説明する。
図1に示すように、本実施例に係るトロイダル型コイル10の本体部分をリング状のコア14が構成している。このコア14は、一端が切り欠かれたリング状にそれぞれ形成された高透磁率材料製の板材である高透磁率板12が7枚積層されて、形成されている。尚、この高透磁率板12は、0.5mmの厚みを有したニッケルと鉄の合金であるパーマロイ材により、例えば構成されている。さらに、この高透磁率板12の切り欠かれた部分を一体として形成されたコア14の切欠部14Aには、電流を検出し得るホール素子からなるセンサ本体32が配置されている。
1 to 6 show an embodiment of a toroidal coil and a current sensor according to the present invention, and the embodiment will be described based on these drawings.
As shown in FIG. 1, the ring-shaped core 14 comprises the main-body part of the toroidal type coil 10 which concerns on a present Example. The core 14 is formed by laminating seven high magnetic permeability plates 12 each made of a high magnetic permeability material formed in a ring shape with one end notched. The high permeability plate 12 is made of, for example, a permalloy material that is an alloy of nickel and iron having a thickness of 0.5 mm. Further, a sensor body 32 made of a Hall element capable of detecting a current is disposed in the cutout portion 14A of the core 14 formed integrally with the cutout portion of the high magnetic permeability plate 12.

図1及び図2に示すように、これら各高透磁率板12の相互に対向する部分には、複数(本実施例では3ヵ所)の凹凸部16が、それぞれ配置されている。これら凹凸部16は、それぞれ各高透磁率板12を半抜き状にして形成されているが、最下層の高透磁率板12の凹凸部16は、貫通孔となっている。また、図1及び図3に示すように、これら各高透磁率板12の相互に対向する部分には、複数(本実施例では2ヵ所)の貫通孔である孔部18が、それぞれ配置されている。   As shown in FIGS. 1 and 2, a plurality of (three in this embodiment) uneven portions 16 are respectively arranged on the portions of the high permeability plates 12 facing each other. Each of these concavo-convex portions 16 is formed by cutting each high-permeability plate 12 in a half-cut shape, but the concavo-convex portion 16 of the lowermost high-permeability plate 12 is a through hole. Further, as shown in FIGS. 1 and 3, a plurality of (two in the present embodiment) through-holes 18 are arranged in the mutually opposing portions of each of the high magnetic permeability plates 12. ing.

そして、各高透磁率板12の凹凸部16同士を相互に嵌め合わせて、これら各高透磁率板12を相互に係合しつつ積層してプレス及び熱処理等することで、これらが一体となってコア14が形成されている。尚この際、孔部18は図3に示すように相互に同一位置に配置されているので、コア14を貫通した形となる。   Then, the concavo-convex portions 16 of the respective high permeability plates 12 are fitted to each other, and the respective high permeability plates 12 are laminated while being engaged with each other, and are pressed, heat-treated, etc., so that they are integrated. The core 14 is formed. At this time, since the holes 18 are arranged at the same position as shown in FIG. 3, the holes 18 penetrate the core 14.

図1に示すように、このコア14の上下部分には、それぞれ樹脂製で断面がU字形とされる上ケース22及び下ケース24が配置されていて、これら一対のケース22、24の孔部18に対向する部分には、それぞれ多角錐状に形成された突部22A、24Aが設けられており、コア14の孔部18とこの突部22A、24Aが嵌合する形になっている。   As shown in FIG. 1, an upper case 22 and a lower case 24 each made of a resin and having a U-shaped cross section are disposed on the upper and lower portions of the core 14, and the holes of the pair of cases 22 and 24 are arranged. Protrusions 22A and 24A each formed in a polygonal pyramid shape are provided in a portion facing 18 and the hole 18 of the core 14 and the protrusions 22A and 24A are fitted.

つまり、図5に示すこの突部22A、24Aは、略三角形の断面になっており、突部22A、24Aの先端における外接円の直径D1は、図2に示すコア14の孔部18の直径D0とほぼ同一とされているが、突部22A、24Aの根元における外接円の直径D2はさらに大きな形になっていて、この突部22A、24Aは先端が平らな三角錐状とされている。また、図3に示すように、突部22A、24Aの根元部分の下部には、この突部22A、24Aの根元部分より大径とされたコア受け部22B、24Bがそれぞれ設けられている。   That is, the protrusions 22A and 24A shown in FIG. 5 have a substantially triangular cross section, and the diameter D1 of the circumscribed circle at the tips of the protrusions 22A and 24A is the diameter of the hole 18 of the core 14 shown in FIG. Although it is almost the same as D0, the diameter D2 of the circumscribed circle at the bases of the protrusions 22A and 24A has a larger shape, and the protrusions 22A and 24A have a triangular pyramid shape with a flat tip. . As shown in FIG. 3, core receiving portions 22B and 24B each having a larger diameter than the base portions of the protrusions 22A and 24A are provided below the base portions of the protrusions 22A and 24A, respectively.

そして、これら突部22A、24Aをコア14の孔部18に係合させつつ挿入して、これら突部22A、24Aをコア14の孔部18にそれぞれ圧入することで、突部22A、24Aに孔部18の周囲の部分が食い込む形となる。これに伴い本実施例では、コア14と一対のケース22、24の内面との間に隙間を設けた状態でコア14が固定されつつ、一対のケース22、24間にコア14が収納されている。   Then, these protrusions 22A and 24A are inserted while being engaged with the holes 18 of the core 14, and the protrusions 22A and 24A are press-fitted into the holes 18 of the core 14, respectively. A portion around the hole portion 18 bites in. Accordingly, in this embodiment, the core 14 is housed between the pair of cases 22 and 24 while the core 14 is fixed in a state where a gap is provided between the core 14 and the inner surfaces of the pair of cases 22 and 24. Yes.

つまり、図4に示すように、一対のケース22、24間にコア14を収めた形で一対のケース22、24をコア14にセットした状態において、突部22A、24A及び孔部18から成る係合部分を除いた一対のケース22、24の内面とコア14との間に所定の大きさの隙間G1が存在するだけでなく、一対のケース22、24の側壁内面とコア14の側面との間にも隙間G2が存在している。また、コア14の孔部18との嵌合後における相互に対向する上下の突部22A、24Aの間にも、隙間G3が存在している。   That is, as shown in FIG. 4, in a state where the pair of cases 22, 24 are set on the core 14 in a form in which the core 14 is accommodated between the pair of cases 22, 24, the protrusions 22 A, 24 A and the hole 18 are formed. A gap G1 having a predetermined size exists between the inner surface of the pair of cases 22 and 24 excluding the engaging portion and the core 14, and the inner surface of the side walls of the pair of cases 22 and 24 and the side surface of the core 14 A gap G2 also exists between the two. Further, a gap G3 also exists between the upper and lower protrusions 22A and 24A facing each other after fitting with the hole 18 of the core 14.

さらに、コア14を収めた形の一対のケース22、24の周囲に、図6に示すように捲線26が巻き付けられてトロイダル型コイル10が完成する。そして、完成したこのトロイダル型コイル10が収納箱34内に収納され、センサ本体32と接続される回路基板36が収納箱34にねじ止められると共に、コネクタ38がこの回路基板36に接続されて、本実施例に係る電流センサ30が完成されることになる。   Further, a winding wire 26 is wound around a pair of cases 22 and 24 in a shape containing the core 14 as shown in FIG. 6 to complete the toroidal coil 10. The completed toroidal coil 10 is stored in the storage box 34, the circuit board 36 connected to the sensor body 32 is screwed to the storage box 34, and the connector 38 is connected to the circuit board 36. The current sensor 30 according to this embodiment is completed.

次に、本実施例に係るトロイダル型コイル10及び電流センサ30の作用を説明する。
本実施例に係るトロイダル型コイル10によれば、各高透磁率板12の相互に対向する部分に凹凸部16を設け、これら凹凸部16を相互に嵌め合わせて、これら各高透磁率板12を相互に係合しつつ積層することで、コア14が形成されている。さらに、このコア14を樹脂製の一対のケース22、24間に収め、これら一対のケース22、24の周囲に捲線26が巻き付けられた構造になっている。
Next, the operation of the toroidal coil 10 and the current sensor 30 according to this embodiment will be described.
According to the toroidal coil 10 according to the present embodiment, the concavo-convex portions 16 are provided in the mutually opposing portions of the respective high magnetic permeability plates 12, and the concavo-convex portions 16 are fitted to each other, so that each of these high magnetic permeability plates 12. The cores 14 are formed by stacking layers while engaging each other. Further, the core 14 is housed between a pair of cases 22 and 24 made of resin, and a winding wire 26 is wound around the pair of cases 22 and 24.

また、一対のケース22、24にそれぞれ複数ずつ形成された多角錐状の突部22A、24Aをコア14に複数設けた孔部18にそれぞれ係合させて、突部22A、24Aに孔部18を構成する部分を食い込ませつつ、突部22A、24Aをコア14の孔部18に挿入して、一対のケース22、24間にコア14を収納した構造ともなっている。   Further, a plurality of polygonal pyramidal protrusions 22A and 24A formed on the pair of cases 22 and 24 are respectively engaged with a plurality of holes 18 provided in the core 14, and the holes 18 are formed on the protrusions 22A and 24A. The protrusions 22 </ b> A and 24 </ b> A are inserted into the holes 18 of the core 14 and the core 14 is accommodated between the pair of cases 22 and 24.

そして、このトロイダル型コイル10が本実施例に係る電流センサ30の収納箱34内に収納され、コア14の切り欠かれた部分に配置されたセンサ本体32が電流を検出することで、回路基板36及びコネクタ38を介して、この電流センサ30の外部に電流値の検出データを出力可能となっている。   The toroidal coil 10 is housed in the housing box 34 of the current sensor 30 according to the present embodiment, and the sensor body 32 disposed in the notched portion of the core 14 detects the current, whereby the circuit board. Current value detection data can be output to the outside of the current sensor 30 via the connector 36 and the connector 38.

つまり、本実施例では、複数の多角錐状の突部22A、24Aを複数の孔部18にそれぞれ係合させつつ挿入することで、コア14と一対のケース22、24の内面との間に隙間G1、G2を設けた状態としつつ、一対のケース22、24間でコア14がこれら突部22A、24Aにより確実に支持された形になる。   That is, in this embodiment, the plurality of polygonal pyramid-shaped protrusions 22A and 24A are inserted while being engaged with the plurality of hole portions 18 respectively, so that the core 14 and the inner surfaces of the pair of cases 22 and 24 are inserted. While the gaps G1 and G2 are provided, the core 14 is reliably supported by the protrusions 22A and 24A between the pair of cases 22 and 24.

従って、一対のケース22、24の内面とコア14との間の隙間G1、G2の寸法が安定化するだけでなく、外部応力がコア14に加わらないようになる為、コア14の磁気特性が安定化して、トロイダル型コイル10の歩留まりの向上及び磁気特性の向上が見込めるようになる。これに伴って、従来例のようにコアに加わる応力を緩和する為にゲル状の樹脂をケース内に注入する必要もなくなる。この結果として、材料費及び組み立て工数が低減されて作業性が高まり、トロイダル型コイル10のトータルな製造コストの削減が見込めるようになる。   Accordingly, not only the dimensions of the gaps G1 and G2 between the inner surfaces of the pair of cases 22 and 24 and the core 14 are stabilized, but external stress is not applied to the core 14, so that the magnetic characteristics of the core 14 are improved. As a result, the yield of the toroidal coil 10 and the improvement of the magnetic characteristics can be expected. Accordingly, it is not necessary to inject a gel-like resin into the case in order to relieve the stress applied to the core as in the conventional example. As a result, material costs and assembly man-hours are reduced, workability is improved, and a reduction in total manufacturing cost of the toroidal coil 10 can be expected.

この一方、巻線時においては、突部22A、24Aを孔部18に係合させることにより、コア14を介して一対のケース22、24が保持される為、コア14を挟んで一対のケース22、24を保持する必要がなくなるので、一対のケース22、24をテープ等で固定しなくとも良くなり、これによってもトロイダル型コイル10の組み立て工数が低減されるようになる。   On the other hand, at the time of winding, since the pair of cases 22 and 24 are held via the core 14 by engaging the protrusions 22A and 24A with the hole 18, the pair of cases with the core 14 in between. Since it becomes unnecessary to hold | maintain 22 and 24, it becomes unnecessary to fix a pair of cases 22 and 24 with a tape etc., and also the assembly man-hour of the toroidal type coil 10 will be reduced by this.

以上より本実施例によれば、コア14への外部応力の影響を受け難くして磁気特性の安定化を図りつつ、材料費及び組み立て工数を低減して製造コストを削減したトロイダル型コイル10及び、このトロイダル型コイル10を利用した電流センサ30が得られるようになる。   As described above, according to the present embodiment, the toroidal coil 10 that reduces the manufacturing cost by reducing the material cost and the assembly man-hour while stabilizing the magnetic property by being hardly influenced by the external stress to the core 14 and Thus, the current sensor 30 using the toroidal coil 10 can be obtained.

他方、本実施例によれば、各高透磁率板12の相互に対向する部分に凹凸部16を設け、これら凹凸部16を相互に嵌め合わせて、これら各高透磁率板12を相互に係合しつつ必要枚数積層した後、プレスして一体型のコア14とした結果として、これら各高透磁率板12が相互に確実に密着する。この為、テープ等によりこのコア14の数箇所を固定する必要が無くなり、組み立て工数がより一層低減されるようになる。   On the other hand, according to the present embodiment, the concavo-convex portions 16 are provided on the portions of the high permeability plates 12 facing each other, the concavo-convex portions 16 are fitted to each other, and the high permeability plates 12 are mutually engaged. After the necessary number of layers are stacked together, the high permeability plates 12 are securely adhered to each other as a result of pressing to form an integral core 14. For this reason, it is not necessary to fix several portions of the core 14 with a tape or the like, and the assembly man-hour is further reduced.

尚、上記実施例では、突部22A、24Aを三角錐状に形成したが、四角錐状等の他の多角錐状に形成しても良い。さらに、上記実施例では、図4に示すように一対のケース22、24内にコア14を収納する際に、コア受け部22B、24Bにコア14が接触しない構造になっているが、これらコア受け部22B、24Bにコア14を接触させて、より確実にコア14を支持するようにしても良い。   In the above embodiment, the protrusions 22A and 24A are formed in a triangular pyramid shape, but may be formed in another polygonal pyramid shape such as a quadrangular pyramid shape. Further, in the above embodiment, when the core 14 is housed in the pair of cases 22 and 24 as shown in FIG. 4, the core 14 is not in contact with the core receiving portions 22B and 24B. The core 14 may be supported more reliably by bringing the core 14 into contact with the receiving portions 22B and 24B.

また、上記実施例において、高透磁率材料をμm≧150,000とし且つ、0.5mmの厚みを有したパーマロイ材により構成したが、板材の透磁率の範囲はμm≧30,000程度のものであれば良く、また、板材の厚みを変更しても良い。   In the above embodiment, the high permeability material is made of permloy material having a thickness of 0.5 mm and μm ≧ 150,000, but the permeability range of the plate material is about μm ≧ 30,000. And the thickness of the plate material may be changed.

本発明の一実施例に係るトロイダル型コイルを構成する部品を示す分解斜視図である。It is a disassembled perspective view which shows the components which comprise the toroidal type coil which concerns on one Example of this invention. 本発明の一実施例に係るトロイダル型コイルに適用されるコアの要部を拡大した断面図であって、図1の2−2矢視線図である。It is sectional drawing to which the principal part of the core applied to the toroidal type coil which concerns on one Example of this invention was expanded, Comprising: It is the 2-2 arrow line drawing of FIG. 本発明の一実施例に係るトロイダル型コイルの要部の分解状態を拡大して示す断面図である。It is sectional drawing which expands and shows the decomposition | disassembly state of the principal part of the toroidal type | mold coil which concerns on one Example of this invention. 本発明の一実施例に係るトロイダル型コイルの要部を拡大して示す断面図である。It is sectional drawing which expands and shows the principal part of the toroidal type coil which concerns on one Example of this invention. 本発明の一実施例に係るトロイダル型コイルに適用されるケースの突部を拡大して示す図であって、(A)は平面図であり、(B)は正面図である。It is a figure which expands and shows the protrusion of the case applied to the toroidal type coil which concerns on one Example of this invention, Comprising: (A) is a top view, (B) is a front view. 本発明の一実施例に係る電流センサを示す分解斜視図である。It is a disassembled perspective view which shows the current sensor which concerns on one Example of this invention.

符号の説明Explanation of symbols

10 トロイダル型コイル
12 高透磁率板
14 コア
16 凹凸部
18 孔部
22 上ケース
22A 突部
24 下ケース
24A 突部
26 捲線
30 電流センサ
32 センサ本体
DESCRIPTION OF SYMBOLS 10 Toroidal type coil 12 High permeability board 14 Core 16 Uneven part 18 Hole part 22 Upper case 22A Protrusion 24 Lower case 24A Protrusion 26 Lead wire 30 Current sensor 32 Sensor main body

Claims (4)

高透磁率材料製の板材が積層されて形成されたコアを樹脂製の一対のケース間に収め、これら一対のケースの周囲に捲線が巻き付けられたトロイダル型コイルであって、
コアに複数の孔部を設けると共に、一対のケースのこれら複数の孔部に対向する部分にそれぞれ多角錐状に形成された突部を設け、
これら突部をコアの孔部にそれぞれ係合させつつ挿入して、一対のケース間にコアを収納したことを特徴とするトロイダル型コイル。
A toroidal coil in which a core formed by laminating a plate made of a high magnetic permeability material is placed between a pair of resin cases, and a winding is wound around the pair of cases,
A plurality of holes are provided in the core, and protrusions formed in a polygonal pyramid shape are provided in portions facing the plurality of holes of the pair of cases,
A toroidal coil, wherein the protrusion is inserted while being engaged with the hole of the core, and the core is housed between a pair of cases.
高透磁率材料の各板材の相互に対向する部分に凹凸部を設け、
これら凹凸部を相互に嵌め合わせて、これら各板材を相互に係合しつつ積層することを特徴とする請求項1記載のトロイダル型コイル。
An uneven part is provided in the part of each plate of the high magnetic permeability material facing each other,
2. The toroidal coil according to claim 1, wherein the concave and convex portions are fitted to each other, and the respective plate materials are laminated while being engaged with each other.
コアと一対のケースとの間の係合部分を除いたコアと各ケースとの間に、所定の大きさの隙間が存在することを特徴とする請求項1記載のトロイダル型コイル。   2. The toroidal coil according to claim 1, wherein a gap of a predetermined size exists between the core and each case excluding an engagement portion between the core and the pair of cases. 高透磁率材料製の板材が積層されて形成されたコアに電流を検出し得るセンサ本体を取り付け、このセンサ本体と共にコアを樹脂製の一対のケース間に収め、これら一対のケースの周囲に捲線が巻き付けられたトロイダル型コイルを用いた電流センサであって、
コアに複数の孔部を設けると共に、一対のケースのこれら複数の孔部に対向する部分にそれぞれ多角錐状に形成された突部を設け、
これら突部をコアの孔部にそれぞれ係合させつつ挿入して、一対のケース間にコアを収納したことを特徴とする電流センサ。

A sensor body capable of detecting an electric current is attached to a core formed by laminating plates made of a high permeability material, and the core is placed between a pair of resin cases together with the sensor body, and a wire is wound around the pair of cases. Is a current sensor using a toroidal coil wound with
A plurality of holes are provided in the core, and protrusions formed in a polygonal pyramid shape are provided in portions facing the plurality of holes of the pair of cases,
A current sensor characterized in that the cores are housed between a pair of cases by inserting the protrusions while engaging the holes in the cores.

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