JP6504754B6 - Electric blower and vacuum cleaner using the same - Google Patents
Electric blower and vacuum cleaner using the same Download PDFInfo
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Description
本発明は、電動送風機およびそれを用いた電気掃除機に関するものである。 The present invention relates to an electric blower and a vacuum cleaner using the same.
近年、需要が急速に高まっているコードレス掃除機においては、低電圧のバッテリー駆動においても十分な出力を得るために、ブラシレスモータを用いた電動送風機が搭載されている。ブラシレスモータにおいては、冷却効果を高めるため、特許文献1,2のような構成が記載されている。 In recent years, in a cordless vacuum cleaner whose demand is rapidly increasing, an electric blower using a brushless motor is mounted in order to obtain a sufficient output even in a low voltage battery drive. In the brushless motor, in order to enhance the cooling effect, configurations as described in Patent Documents 1 and 2 are described.
特許文献1には、モータハウジング側面に通風口を開ける冷却構造が記載されている。 Patent Document 1 describes a cooling structure for opening a vent on the side surface of a motor housing.
特許文献2には、エンドブラケットに設けた軸方向に傾斜した開口部を設けた場合でも、開口部とコイルが径方向から見てほぼ同一の位置に配置されることが記載されている。 Patent Document 2 describes that even when an axially inclined opening provided in an end bracket is provided, the opening and the coil are disposed at substantially the same position when viewed from the radial direction.
こうした小型の高速ブラシレスモータにおいては、損失の大部分が軸受けの機械損になる。そのため、モータの内側にまで冷却風を導く必要がある一方で、従来冷却が必要であったコイルなどの冷却の必要性は低下する。 In such small high-speed brushless motors, most of the losses are mechanical losses of the bearings. Therefore, while it is necessary to guide the cooling air to the inside of the motor, the need for cooling such as a coil, which has conventionally been required for cooling, is reduced.
こうしたモータに上記特許文献1のようなモータハウジング側面に通風口を開ける冷却構造を採用した場合、モータ内への冷却風量が不足し、軸受けの温度上昇を招く恐れがある。 When a cooling structure in which the air vent is opened on the side surface of the motor housing as described in Patent Document 1 is adopted as such a motor, the amount of cooling air flowing into the motor may be insufficient, which may cause the temperature rise of the bearing.
また、上記特許文献2のように、エンドブラケットに設けた軸方向に傾斜した開口部を設けた場合でも、開口部とコイルが径方向から見てほぼ同一の位置に配置されると、コイルに冷却風があたることで大きな通風損失を招く恐れがある。また、エンドブラケットに軸方向に傾斜しない開口部を設けた側の軸受けには冷却風が十分に当たらないため、片側の軸受けの温度上昇を招く恐れがある。 In addition, even when the axially inclined opening provided in the end bracket is provided as in Patent Document 2 above, when the opening and the coil are disposed at substantially the same position when viewed from the radial direction, Cooling air may cause a large ventilation loss. In addition, since the cooling air does not sufficiently strike the bearing on the end bracket provided with the opening that is not inclined in the axial direction, the temperature of the bearing on one side may be increased.
本発明は、上記問題点を解決するためになされたものであって、その目的は通風損失を下げ、軸受けを十分に冷却することで高効率かつ高寿命な電動送風機およびそれを用いた電気掃除機を提供することにある。 The present invention has been made to solve the above-mentioned problems, and its object is to reduce the air flow loss and sufficiently cool the bearings, thereby achieving a high efficiency and long life electric blower and an electric cleaning using the same. To provide a machine.
上記の問題を解決するために、本発明では、シャフトを有したロータと、コアとコイルを有したステータと、前記シャフトを回転可能にする軸受けを保持するエンドブラケットを有したモータを有した電動送風機であって、前記エンドブラケットの軸受けハウジングから外周に向かって延びたブリッジとコイルをシャフトの軸方向から見てほぼ同じ方向の位置に配置し、隣り合う前記ブリッジの間に形成される開口部には隣り合う前記コイルで形成される空隙が配置され、前記開口部には、前記コイルが臨まないこととを特徴とする。 In order to solve the above problems, in the present invention, an electric motor having a rotor having a shaft, a stator having a core and a coil, and an end bracket for holding a bearing that makes the shaft rotatable is provided. A blower, wherein a bridge extending from the bearing housing of the end bracket toward the outer periphery and a coil are disposed in substantially the same direction as viewed from the axial direction of the shaft, and an opening formed between the adjacent bridges An air gap formed by the adjacent coils is disposed in the space , and the opening does not face the coil .
本発明によれば、通風損失を下げ、軸受けを十分に冷却することで高効率かつ高寿命な電動送風機およびそれを用いた電気掃除機を提供することが出来る。 According to the present invention, it is possible to provide a highly efficient and long-lived electric blower and an electric vacuum cleaner using the same by lowering the air flow loss and sufficiently cooling the bearings.
以下に、本発明の実施の形態を示す。 Hereinafter, embodiments of the present invention will be described.
図1に、本実施形態の電動送風機1の断面図を示す。電動送風機1は、コア2とコイル3を有したステータ4と、シャフト5を有するロータ6と、シャフト5を回転可能にする軸受け7を保持するエンドブラケット8を有している。シャフト5にはインペラ9が取り付けられており、エンドブラケット8の一つにはディフューザ10が取り付けられており、ディフューザ10のエンドブラケット8側にはリターン11が設けられており、インペラ9とディフューザ10を覆うようにファンケーシング12が配置されている。また、この電動送風機1の最大回転数は7万回転以上である。 FIG. 1 shows a cross-sectional view of the electric blower 1 of the present embodiment. The electric blower 1 includes a stator 4 having a core 2 and a coil 3, a rotor 6 having a shaft 5, and an end bracket 8 for holding a bearing 7 that makes the shaft 5 rotatable. An impeller 9 is attached to the shaft 5, a diffuser 10 is attached to one of the end brackets 8, a return 11 is provided on the end bracket 8 side of the diffuser 10, and the impeller 9 and the diffuser 10 are provided. The fan casing 12 is disposed to cover the Further, the maximum number of revolutions of the electric blower 1 is 70,000 or more.
このような電動送風機1のうち、ファンケーシング12、インペラ9、ディフューザ10などを除いた電動機部分17のみの斜視図および俯瞰図を図2(a)および(b)に示す。電動機部分17には、エンドブラケット8とコイル3とを備える。エンドブラケット8は、軸受け7を固定する軸受けハウジング13と、その軸受けハウジング13から外周側に伸びたブリッジ14により構成されている。更に詳述すると、エンドブラケット8は、軸受け7を覆う軸受け覆い部分13aと、軸受け覆い部分13aの外周でディフューザ10が取り付けられる部分であるディフューザ取り付け部分13bと、ステータ4の一部を覆う反エンドブラケット18が取り付けられる部分である反エンドブラケット取り付け部分13cと、ディフューザ取り付け部分13bと反エンドブラケット取り付け部分13cとをつなぐブリッジ14と、からなる。 Of such an electric blower 1, a perspective view and an overhead view of only the motor portion 17 excluding the fan casing 12, the impeller 9, the diffuser 10 and the like are shown in FIGS. 2 (a) and 2 (b). The motor portion 17 comprises an end bracket 8 and a coil 3. The end bracket 8 is composed of a bearing housing 13 for fixing the bearing 7 and a bridge 14 extending outward from the bearing housing 13. More specifically, the end bracket 8 has a bearing cover portion 13a for covering the bearing 7, a diffuser mounting portion 13b which is a portion on the outer periphery of the bearing cover portion 13a to which the diffuser 10 is attached, and an opposite end for covering a part of the stator 4. It comprises an anti-end bracket attachment portion 13c, which is a portion to which the bracket 18 is attached, and a bridge 14 connecting the diffuser attachment portion 13b and the anti-end bracket attachment portion 13c.
軸受け覆い部分13aは、シャフト5が貫通するだけの穴を有し、軸受け7を覆うような略円筒形状である。ディフューザ取り付け部分13bは、軸受け覆い部分13aの外周に接続される略環形状の部分である。反エンドブラケット取り付け部分13cは略環形状の部分である。ブリッジ14は、ディフューザ取り付け部分13bの外周と、反エンドブラケット取り付け部分13cの内周との間に設けられる。本実施形態では、ブリッジ14は略等間隔で(略120°間隔で)3箇所設けられており、隣り合うブリッジ14の間には開口部が設けられている。 The bearing cover portion 13 a has a hole through which the shaft 5 passes and has a substantially cylindrical shape so as to cover the bearing 7. The diffuser attachment portion 13b is a substantially annular portion connected to the outer periphery of the bearing cover portion 13a. The anti-end bracket attachment portion 13c is a substantially annular portion. The bridge 14 is provided between the outer periphery of the diffuser attachment portion 13b and the inner periphery of the opposite end bracket attachment portion 13c. In the present embodiment, three bridges 14 are provided at substantially equal intervals (at approximately 120 ° intervals), and openings are provided between the adjacent bridges 14.
コイル3は、エンドブラケット8と反エンドブラケット18で形成される空間内に位置している。ブリッジ14とコイル3は、シャフト5の軸方向から見た場合に、ほぼ同じ方向の位置に配置されている。 The coil 3 is located in the space formed by the end bracket 8 and the anti-end bracket 18. The bridge 14 and the coil 3 are disposed at substantially the same position when viewed from the axial direction of the shaft 5.
図3は、回転数の違いによる機械損と銅損の差を示す図である。特許文献2のような従来の電動送風機の回転数は5万回転以下であるため、図3に示すように、コイルで発生する銅損と軸受けで発生する機械損の割合はほぼ1対1程度であった。そのため、コイルの絶縁被覆を保護するためにコイルの冷却を十分にする必要があり、ブリッジ間の開口部にコイルを配置することで、コイルに冷却風をあてていた。このようなコイルとブリッジの配置においては、コイルの冷却は十分である一方で、通風損失が大きくなる恐れがあった。 FIG. 3 is a diagram showing the difference between mechanical loss and copper loss due to the difference in rotational speed. Since the number of revolutions of the conventional electric blower as described in Patent Document 2 is 50,000 or less, as shown in FIG. 3, the ratio of copper loss generated in the coil and mechanical loss generated in the bearing is about 1 to 1 Met. Therefore, it is necessary to sufficiently cool the coil in order to protect the insulating coating of the coil, and the cooling air is applied to the coil by arranging the coil at the opening between the bridges. In such an arrangement of coils and bridges, while cooling of the coils is sufficient, there is a possibility that the ventilation loss may increase.
一方、本実施形態の電動送風機1においては、回転数が7万回転以上と従来よりも高回転であるため、図3に示すように、軸受け7で発生する機械損よりもコイル3で発生する銅損の割合が小さく、コイル冷却の必要性が低下する。また、高速回転した場合にコイル3の実質抵抗が増加する場合があるが、コイル3を3本以上の多本持ちにすることで、その抵抗の増加を抑えることが出来る。このようにコイルの銅損を下げる一方で、コイル3とブリッジ14の位置をシャフト5の軸方向から見て同じ方向の位置に配置することで、隣り合うブリッジ14の間に形成される開口部には隣り合うコイル3で形成される空隙が配置されることになるため、通風損失が低下し、電動送風機1の効率が向上する。言い換えると、ブリッジ14間に開口部にはコイル3が臨まないため、通風損失が低下し、電動送風機1の効率が向上する。 On the other hand, in the electric blower 1 of the present embodiment, since the number of rotations is 70,000 or more, which is higher than the conventional one, as shown in FIG. The rate of copper loss is small, reducing the need for coil cooling. In addition, although the substantial resistance of the coil 3 may increase when rotating at a high speed, the increase in resistance can be suppressed by making the coil 3 have three or more coils. Thus, while reducing the copper loss of the coil, by arranging the positions of the coil 3 and the bridge 14 in the same direction as viewed from the axial direction of the shaft 5, an opening formed between the adjacent bridges 14 Since the air gaps formed by the adjacent coils 3 are arranged in the space, the ventilation loss is reduced and the efficiency of the electric blower 1 is improved. In other words, since the coil 3 does not reach the opening between the bridges 14, the ventilation loss is reduced and the efficiency of the electric blower 1 is improved.
さらに、ブリッジ14を軸方向に傾斜させ、その傾斜部の軸方向成分と径方向成分を比較した場合に軸方向成分の方が大きいような構造とすることで、ディフューザ10から電動送風機1内に入る風の一部が軸受け7近くにまで直接流れ込むようになるため、軸受け7の冷却性能が向上し、電動送風機1の寿命が向上する。 Furthermore, the bridge 14 is inclined in the axial direction, and when the axial component of the inclined portion and the radial component are compared, the diffuser 10 allows the electric blower 1 to be in the structure by making the axial component larger. Since a part of the entering wind flows directly to the vicinity of the bearing 7, the cooling performance of the bearing 7 is improved, and the life of the electric blower 1 is improved.
さらに、ブリッジ14を軸方向に傾斜した部分とコイル3のコア2からはみ出た部分と同程度に軸方向に伸びた部分を有する構造にすることで、ブリッジ14間の開口部の面積を大きくする一方でブリッジ14の強度を保つことが出来る。この時、リターン11の高さをブリッジ14の傾斜部の高さ以下とすることで、冷却に必要のない風をエンドブラケット8の排出口15から排出することが可能となり、送風損失を下げることが出来る。 Furthermore, the area of the opening between the bridges 14 is increased by configuring the bridge 14 to have a portion inclined in the axial direction and a portion extending in the axial direction as much as a portion protruding from the core 2 of the coil 3. On the other hand, the strength of the bridge 14 can be maintained. At this time, by making the height of the return 11 equal to or less than the height of the inclined portion of the bridge 14, it is possible to discharge the wind not necessary for cooling from the discharge port 15 of the end bracket 8, thereby reducing the air flow loss. Can do.
また、ステータ4の軸方向両側に軸受け7が配置される場合、従来のように反インペラ側の反エンドブラケット18のブリッジが軸受けハウジングとほぼ同一平面上で構成されている場合と比較して、反インペラ側の反エンドブラケット18のブリッジを軸方向に傾斜させることで、さらに通風損失を下げることが出来る。 In addition, when the bearings 7 are disposed on both sides in the axial direction of the stator 4, as compared with the conventional case where the bridge of the anti-end bracket 18 on the non-impeller side is configured substantially coplanar with the bearing housing By inclining the bridge of the anti-impeller side anti-end bracket 18 in the axial direction, the air flow loss can be further reduced.
図4は、本発明の一実施例に係る電動送風機と基板とを示す外観図である。また、反インペラ側の反エンドブラケット8のブリッジを軸方向に傾斜させた場合、冷却風は径方向に吐き出されるようになるため、図4に示すように、電動送風機下流に配置する制御基板16をシャフト5と垂直な平面内に配置することで、制御基板16の冷却に伴う通風損失を下げることが出来る。 FIG. 4 is an external view showing an electric blower and a substrate according to an embodiment of the present invention. Further, when the bridge of the anti-end bracket 8 on the non-impeller side is inclined in the axial direction, the cooling air is discharged radially, so as shown in FIG. 4, the control board 16 disposed downstream of the electric blower Can be arranged in a plane perpendicular to the shaft 5 to reduce the air flow loss associated with the cooling of the control board 16.
図5に、第2の実施形態の電動送風機の断面図を示す。複数の軸受け7をステータ4のインペラ側にまとめて配置することで、エンドブラケット8が一つで済むため、低コスト化が可能となる。また、軸受けハウジング13が軸方向に長くなるため、冷却風のあたる面積が増加し、軸受けの冷却性能が向上する。 FIG. 5 shows a cross-sectional view of the electric blower of the second embodiment. By arranging the plurality of bearings 7 collectively on the impeller side of the stator 4, only one end bracket 8 is required, so cost reduction can be achieved. In addition, since the bearing housing 13 is axially elongated, the area in which the cooling air impinges is increased, and the cooling performance of the bearing is improved.
上述の第1、第2の実施形態に記載の電動送風機を電気掃除機に用いることで、電気掃除機の高効率化や長寿命化を得ることが出来る。 By using the electric blower according to the first and second embodiments described above for the electric vacuum cleaner, it is possible to obtain high efficiency and long life of the electric vacuum cleaner.
1 電動送風機
2 コア
3 コイル
4 ステータ
5 シャフト
6 ロータ
7 軸受け
8 エンドブラケット
9 インペラ
10 ディフューザ
11 リターン
12 ファンケーシング
13 軸受けハウジング
13a 軸受け覆い部分
13b ディフューザ取り付け部分
13c 反エンドブラケット取り付け部分
14 ブリッジ
15 排出口
16 制御基板
17 電動機部分
18 反エンドブラケット
Reference Signs List 1 electric blower 2 core 3 coil 4 stator 5 shaft 6 rotor 7 bearing 8 end bracket 9 impeller 10 diffuser 11 return 12 fan casing 13 bearing housing 13 a bearing cover portion 13 b diffuser attachment portion 13 c anti-end bracket attachment portion 14 bridge 15 outlet 16 Control board 17 Motor part 18 Anti end bracket
Claims (10)
前記エンドブラケットの軸受けハウジングから外周に向かって延びたブリッジと前記コイルを前記シャフトの軸方向から見てほぼ同じ方向の位置に配置し、隣り合う前記ブリッジの間に形成される開口部には隣り合う前記コイルで形成される空隙が配置され、
前記開口部には、前記コイルが臨まないことを特徴とする電動送風機。
An electric blower comprising: a rotor having a shaft; a stator having a core and a coil; and a motor having an end bracket for holding a bearing that makes the shaft rotatable.
The bridge extending toward the outer periphery from the bearing housing of the end bracket and the coil are disposed in substantially the same direction as viewed from the axial direction of the shaft, and adjacent to the opening formed between the adjacent bridges An air gap formed by the coils to be fitted is arranged ,
The electric blower does not have the coil facing the opening .
前記ブリッジが軸方向に傾斜しており、その傾斜部の軸方向成分は径方向成分よりも大きいことを特徴とする電動送風機。
An electric blower according to claim 1, wherein
The motor-driven blower according to claim 1, wherein the bridge is inclined in the axial direction, and an axial component of the inclined portion is larger than a radial component.
前記ステータの軸方向両側に配置したエンドブラケットのブリッジが、どちらも軸方向に傾斜していることを特徴とする電動送風機。
It is an electric blower described in Claim 1 or Claim 2, Comprising:
An electric fan characterized in that bridges of end brackets disposed on both axial sides of the stator are both axially inclined.
前記ブリッジは、軸方向に傾斜した部分と軸方向にコイルエンドと同程度に伸びた部分と、を有することを特徴とする電動送風機。
It is an electric blower described in Claim 2 or Claim 3, Comprising:
An electric fan according to claim 1, wherein the bridge includes an axially inclined portion and a portion axially extended in the same degree as the coil end.
前記エンドブラケットに固定されたディフューザに設けられたリターンの高さが、前記ブリッジの傾斜部の高さ以下であることを特徴とする電動送風機。
The electric blower according to any one of claims 2 to 4, wherein
The height of the return provided to the diffuser fixed to the end bracket is equal to or less than the height of the inclined portion of the bridge.
回転数が7万回転以上であることを特徴とする電動送風機
The electric blower according to any one of claims 1 to 5, wherein
Electric blower characterized in that the number of rotations is 70,000 or more
コイルが3本持ち以上であることを特徴とする電動送風機
The electric blower according to claim 6, wherein
Electric blower characterized by having three or more coils
軸受けを前記ステータの片側に配置し、前記ブラケットを1つとしたことを特徴とする電動送風機
It is an electric blower described in any one of Claim 1 thru | or 7, Comprising:
An electric blower characterized in that a bearing is disposed on one side of the stator and the bracket is one.
制御基板を軸方向とほぼ垂直な方向に配置したことを特徴とする電動送風機。
The electric blower according to any one of claims 1 to 8, wherein
An electric blower characterized in that a control substrate is disposed in a direction substantially perpendicular to an axial direction.
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Families Citing this family (7)
Publication number | Priority date | Publication date | Assignee | Title |
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CN105846629B (en) * | 2016-03-28 | 2018-09-07 | 哈尔滨工业大学 | A kind of vacuum cleaning motor of radial magnetizing |
WO2017169033A1 (en) * | 2016-03-29 | 2017-10-05 | 三菱電機株式会社 | Electric fan and electric vacuum cleaner equipped with same |
CN107846104B (en) * | 2016-09-21 | 2020-06-30 | 天佑电器(苏州)有限公司 | Motor packing installation mechanism in medium and small-sized electrical appliances |
WO2018234724A1 (en) * | 2017-06-19 | 2018-12-27 | Tti (Macao Commercial Offshore) Limited | A surface cleaning apparatus and a suction source therefor |
JP2019097373A (en) * | 2017-11-24 | 2019-06-20 | 日本電産株式会社 | Blower and cleaner |
WO2023112829A1 (en) * | 2021-12-14 | 2023-06-22 | 株式会社プロテリアル | Single-phase rotary electric machine, and vacuum cleaner, electric aircraft, and electric machine to which single-phase rotary electric machine is applied |
Family Cites Families (10)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS5722693U (en) * | 1980-07-14 | 1982-02-05 | ||
JPH05231390A (en) * | 1992-02-26 | 1993-09-07 | Matsushita Electric Ind Co Ltd | Electric motor-driven blower |
JP2002044892A (en) * | 2000-07-27 | 2002-02-08 | Matsushita Electric Ind Co Ltd | Electric motor and electric compressor mounted with this electric motor |
WO2003054394A1 (en) * | 2001-12-21 | 2003-07-03 | Matsushita Electric Industrial Co., Ltd. | Electrically powered blower |
US7819641B2 (en) * | 2007-03-05 | 2010-10-26 | Xcelaero Corporation | Reverse flow cooling for fan motor |
JP2009044816A (en) * | 2007-08-07 | 2009-02-26 | Panasonic Corp | Electric blower and electric vacuum cleaner using the same |
JP2009250030A (en) * | 2008-04-01 | 2009-10-29 | Panasonic Corp | Electric blower and vacuum cleaner equipped with the same |
GB2467968B (en) * | 2009-02-24 | 2015-04-22 | Dyson Technology Ltd | Centrifugal compressor with a diffuser |
JP5861124B2 (en) * | 2011-02-10 | 2016-02-16 | パナソニックIpマネジメント株式会社 | Motor rotor and fan driving motor having the same |
JP2012202283A (en) * | 2011-03-25 | 2012-10-22 | Panasonic Corp | Electric blower and electric cleaner using the same |
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