JP4059828B2 - Non-contact power feeding device - Google Patents

Non-contact power feeding device Download PDF

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JP4059828B2
JP4059828B2 JP2003322139A JP2003322139A JP4059828B2 JP 4059828 B2 JP4059828 B2 JP 4059828B2 JP 2003322139 A JP2003322139 A JP 2003322139A JP 2003322139 A JP2003322139 A JP 2003322139A JP 4059828 B2 JP4059828 B2 JP 4059828B2
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power supply
pickup
power
leg
magnetic
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JP2005094861A (en
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眞 植平
聡 ▲高▼繁
晋吾 小山
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Tsubakimoto Chain Co
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Tsubakimoto Chain Co
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Priority to KR1020040068237A priority patent/KR100670409B1/en
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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J50/00Circuit arrangements or systems for wireless supply or distribution of electric power
    • H02J50/10Circuit arrangements or systems for wireless supply or distribution of electric power using inductive coupling
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F27/00Details of transformers or inductances, in general
    • H01F27/28Coils; Windings; Conductive connections
    • H01F27/30Fastening or clamping coils, windings, or parts thereof together; Fastening or mounting coils or windings on core, casing, or other support

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Current-Collector Devices For Electrically Propelled Vehicles (AREA)

Description

本発明は、高周波電源に接続された一次側回路である給電線から、物理的に非接触の状態で磁気結合させた二次側回路たるピックアップ部を介して各負荷に給電を行うようにした非接触給電装置に関する。   In the present invention, power is supplied to each load from a power supply line that is a primary circuit connected to a high-frequency power source via a pickup unit that is a secondary circuit that is magnetically coupled in a physically non-contact state. The present invention relates to a non-contact power supply apparatus.

モノレール方式の搬送設備は、工場内又は倉庫内において広く用いられており、搬送車に搭載した走行用のモータへの駆動電力は、案内レールに沿って敷設された給電線を介して供給される。   Monorail transport equipment is widely used in factories or warehouses, and driving power to a motor for traveling mounted on a transport vehicle is supplied via a feeder line laid along the guide rail. .

給電線を用いた給電装置の一つとして、搬送車に設けたピックアップ部を給電線から非接触の状態で近接させ、給電線に交流電流を流したときにピックアップ部に発生する誘導起電力を電力として取得する非接触給電装置が知られている(例えば、特許文献1参照)。給電線の両端を高周波電源に接続して一次側回路を構成し、ピックアップ部を含む受電用回路(二次側回路)は、給電線に流れる交流電流の周波数で共振する共振回路を有している。   As one of the power supply devices using a power supply line, an induced electromotive force generated in the pickup section when an AC current is passed through the power supply line by bringing the pickup section provided in the transport vehicle close to the power supply line in a non-contact state. There is known a non-contact power supply device that acquires power as an electric power (see, for example, Patent Document 1). A power receiving circuit (secondary circuit) including a pickup unit includes a resonance circuit that resonates at the frequency of an alternating current flowing in the power supply line. Yes.

図12は従来の非接触給電装置の構成例を示す模式的断面図である。図中60は、H字形断面を有する案内レールであり、互いに平行な2つの側板部の間に、夫々に垂直をなす中板部を渡して構成されており、中板部の一側面には案内レール60の長手方向に多数のL字形の支持腕(不図示)が取付けられており、これらの支持腕を介して工場又は倉庫の天井に吊り下げられている。   FIG. 12 is a schematic cross-sectional view showing a configuration example of a conventional non-contact power feeding apparatus. In the figure, reference numeral 60 denotes a guide rail having an H-shaped cross section, which is configured by passing an intermediate plate portion perpendicular to each other between two side plate portions parallel to each other. A large number of L-shaped support arms (not shown) are attached in the longitudinal direction of the guide rail 60, and are suspended from the ceiling of the factory or warehouse via these support arms.

中板部の他側面には、案内レール60の長手方向の全長に亘って互いに対をなす支持具64a,64bが複数取り付けられており、各支持具64a,64bの先端には高周波電源(不図示)へ接続された給電線のうち往路側給電線20aと復路側給電線20bとが夫々支持されている。   On the other side surface of the middle plate portion, a plurality of support members 64a and 64b that are paired with each other over the entire length in the longitudinal direction of the guide rail 60 are attached. Outward-side power supply line 20a and return-path-side power supply line 20b among the power supply lines connected to the figure are respectively supported.

前述のピックアップ部は、ピックアップコア63と該ピックアップコア63に巻回してあるピックアップコイル61a,61bとを備えている。ピックアップコア63は、磁性材料により形成されたものであり、板状の基部63dに3つの脚部63a,63b,63cを適宜間隔を隔てて立設してある。ピックアップコイル61a,61bは真中の脚部63bに巻回してあり、給電線に交流電流が流れた場合、磁気結合による誘電起電力がピックアップコイル61a,61bに発生し、これを電力として取得する構成となっている。
特表平6−506099号公報
The pickup section described above includes a pickup core 63 and pickup coils 61a and 61b wound around the pickup core 63. The pickup core 63 is made of a magnetic material, and has three leg portions 63a, 63b, and 63c that are erected at appropriate intervals on a plate-like base portion 63d. The pickup coils 61a and 61b are wound around the middle leg 63b, and when an alternating current flows through the feeder line, a dielectric electromotive force is generated in the pickup coils 61a and 61b and is acquired as electric power. It has become.
Japanese National Publication No. 6-506099

ところで、このような従来の非接触給電装置にあっては、受電効率を大きくするためには、脚部間の間隔を狭くして磁気抵抗を減らす必要があるが、脚部間の間隔を狭くした場合、給電線の外径を小さくする必要があるため導体が小さくなり、給電線の抵抗損失が大きくなるという問題点を有していた。   By the way, in such a conventional non-contact power supply device, in order to increase the power receiving efficiency, it is necessary to reduce the magnetic resistance by reducing the interval between the legs, but the interval between the legs is reduced. In this case, since it is necessary to reduce the outer diameter of the feeder line, the conductor becomes smaller, and the resistance loss of the feeder line is increased.

また、二次側回路のピックアップコイル61a,61bは、一般にリッツ線を密に巻回してあるため、内部に熱が蓄積され易く、リッツ線の絶縁膜の耐熱能力の限界を越えないように供給電力を制限せざるを得ないという問題点を有していた。また、受電効率を良くするために細いリッツ線を巻回しているので、抵抗損失が大きいという問題点を有していた。   Also, since the pick-up coils 61a and 61b of the secondary side circuit are generally wound with litz wire densely, heat is likely to be accumulated inside and supplied so as not to exceed the limit of the heat resistance capability of the insulating film of the litz wire. There was a problem that the power had to be limited. In addition, since a thin litz wire is wound to improve power receiving efficiency, there is a problem that resistance loss is large.

また、往路側給電線20aと復路側給電線20bとの間に脚部63bが介在しているため、往路給電線20aと復路側給電線20bとの間を狭めることが困難である。そのため、給電線の周囲における電界及び磁界の強度を下げることができず、周囲の回路、機器等に影響を及ぼすという問題を有している。   Further, since the leg portion 63b is interposed between the outward power supply line 20a and the backward power supply line 20b, it is difficult to narrow the distance between the outward power supply line 20a and the backward power supply line 20b. For this reason, the strength of the electric field and magnetic field around the feeder line cannot be lowered, and there is a problem in that it affects the surrounding circuits, devices, and the like.

本発明は斯かる事情に鑑みてなされたものであり、基部上に適宜間隔を隔てて並設してある4つの脚部を備えてなる磁性体と、磁性体に巻回してある1又は複数のコイルとを備え、給電線を内側の2つの脚部間に配してあるとともに、給電線の中途に設けた分流部から一側を外側の一方の脚部と内側の脚部との間に配してあり、前記分流部から他側を外側の他方の脚部と内側の脚部との間に配してある構成とすることにより、放熱効果に優れ、外部の回路、機器等に与える磁界及び電界の影響を少なくすることができる非接触給電装置を提供することを目的とする。   The present invention has been made in view of such circumstances, and a magnetic body including four leg portions arranged in parallel at appropriate intervals on a base portion, and one or more wound around the magnetic body. Coil, and the feeder is arranged between the two inner legs, and one side from the shunt provided in the middle of the feeder is between the outer leg and the inner leg. By arranging the other side of the diversion part between the other leg part on the outside and the leg part on the inner side, the heat dissipation effect is excellent, and external circuits, devices, etc. It is an object of the present invention to provide a non-contact power feeding device that can reduce the influence of a magnetic field and an electric field.

本発明の他の目的は、基部上に適宜間隔を隔てて並設してある2つの脚部を備えてなる磁性体と、磁性体に巻回してある1又は複数のコイルと、磁性体を収容する非磁性導体からなる収容部とを備え、給電線を脚部間に配してあるとともに、給電線の中途に設けた分流部から一側及び他側を脚部の外側に配してある構成とすることにより、外部の回路、機器等に与える磁界及び電界の影響を少なくすることができ、受電能力が高い非接触給電装置を提供することにある。   Another object of the present invention is to provide a magnetic body comprising two legs arranged in parallel on the base at an appropriate interval, one or more coils wound around the magnetic body, and a magnetic body. An accommodation portion made of a nonmagnetic conductor to be accommodated, and the feeder line is arranged between the leg portions, and one side and the other side of the diversion portion provided in the middle of the feeder line are arranged outside the leg portion. By providing a certain configuration, it is possible to reduce the influence of a magnetic field and an electric field on an external circuit, device, and the like, and to provide a non-contact power feeding device with high power receiving capability.

発明に係る非接触給電装置は、一次側回路に流れる電流によって生ずる磁束を、磁性体にコイルを巻回してなる二次側回路に鎖交させ、前記一次側回路から前記二次側回路へ電力を供給する非接触給電装置において、前記磁性体は、基部と、該基部上に適宜間隔を隔てて並設してある2つの脚部とを備え、前記一次回路は、中途にて分流部を設けてなる給電線を備え、前記磁性体を収容する非磁性導体からなる収容部と、前記分流部までの往路側を前記2つの脚部の間に配置するために前記収容部の中央部に設けられた第1取付部と、前記分流部から一側及び他側を夫々前記脚部の外側に配置するために前記収容部の内側の側面に接するように設けられた2つの第2取付部とを備え、前記分流部までの往路側を前記第1取付部に、前記分流側から一側及び他側を夫々第2取付部に取付けてあり、前記コイルは、前記2つの脚部の夫々に巻回してあることを特徴とする。 In the non-contact power feeding device according to the present invention, a magnetic flux generated by a current flowing in a primary circuit is linked to a secondary circuit formed by winding a coil around a magnetic material, and the primary circuit is transferred to the secondary circuit. In the non-contact power feeding apparatus for supplying electric power, the magnetic body includes a base and two legs arranged in parallel at an appropriate interval on the base, and the primary circuit is divided in the middle A feeding portion formed of a non-magnetic conductor for housing the magnetic body, and a central portion of the housing portion for disposing the forward path to the diversion portion between the two legs. And two second attachments provided to contact the inner side surface of the accommodating part in order to dispose one side and the other side of the diversion part outside the leg part, respectively. And the forward flow side to the flow dividing portion is connected to the first attachment portion, It is attached to one side and the other side respectively to the second attachment portion from said coil, characterized in that are turning each wound of the two legs.

発明にあっては、基部上に適宜間隔を隔てて並設してある2つの脚部を備えてなる磁性体と、磁性体に巻回してある複数のコイルと、磁性体を収容する非磁性導体からなる収容部とを備え、給電線を脚部間に配してあるとともに、給電線の中途に設けた分流部から一側及び他側を脚部の外側に配してある。従って、内側の給電線に流れた電流によって生じる磁束及び電界と、外側の2本の給電線に流れた電流によって生じる磁束及び電界とは、内側の給電線に対して外側の給電線が対称的に配置されているため、給電線の外側で互いに打消しあうこととなり、外部の回路、機器等に与える磁界及び電界の影響が少なくなる。また、収容部をアルミニウム、銅等の非磁性導体により形成することによって、給電線及び磁性体から発生する磁界及び電界を効果的に遮へいすることが可能となる。また、コイルが脚部に巻回してあるので、脚部の外側に配してある給電線からも電力を受け取ることができるため、受電能力を向上させることができる。 In the present invention, a magnetic body including two legs arranged in parallel at an appropriate interval on the base, a plurality of coils wound around the magnetic body, and a non-container that houses the magnetic body And a power feeding line between leg portions, and one side and the other side of a shunting portion provided in the middle of the power feeding line are arranged outside the leg portion. Therefore, the magnetic flux and electric field generated by the current flowing through the inner power supply line and the magnetic flux and electric field generated by the current flowing through the two outer power supply lines are symmetrical with respect to the inner power supply line. Therefore, they cancel each other outside the power supply line, and the influence of the magnetic field and electric field on external circuits and devices is reduced. In addition, by forming the accommodating portion with a nonmagnetic conductor such as aluminum or copper, it is possible to effectively shield the magnetic field and electric field generated from the power supply line and the magnetic material. In addition, since the coil is wound around the leg portion, power can be received also from the power supply line arranged outside the leg portion, so that the power receiving ability can be improved.

発明による場合は、基部上に適宜間隔を隔てて並設してある2つの脚部を備えてなる磁性体と、磁性体に巻回してある複数のコイルと、磁性体を収容する非磁性導体からなる収容部とを備え、給電線を脚部間に配してあるとともに、給電線の中途に設けた分流部から一側及び他側を脚部の外側に配してある。従って、内側の給電線に流れた電流によって生じる磁束及び電界と、外側の2本の給電線に流れた電流によって生じる磁束及び電界とは、内側の給電線に対して外側の給電線が対称的に配置されているため、給電線の外側で互いに打ち消しあうこととなり、外部の回路、機器等に与える磁界及び電界の影響が少なくなる。また、収容部をアルミニウム、銅等の非磁性導体により形成することによって、給電線及び磁性体から発生する磁界及び電界を効果的に遮へいすることが可能となる。また、コイルが脚部に巻回してあるので、脚部の外側に配してある給電線からも電力を受け取ることができるため、受電能力を向上させることができる。 In the case of the present invention, a magnetic body comprising two legs arranged side by side on the base at an appropriate interval, a plurality of coils wound around the magnetic body, and a nonmagnetic material that houses the magnetic body And a feeding portion between the legs, and one side and the other side of the branching portion provided in the middle of the feeding line are arranged outside the legs. Therefore, the magnetic flux and electric field generated by the current flowing through the inner power supply line and the magnetic flux and electric field generated by the current flowing through the two outer power supply lines are symmetrical with respect to the inner power supply line. Therefore, they cancel each other outside the feeder line, and the influence of the magnetic field and electric field on external circuits, devices, etc. is reduced. In addition, by forming the accommodating portion with a nonmagnetic conductor such as aluminum or copper, it is possible to effectively shield the magnetic field and electric field generated from the power supply line and the magnetic material. In addition, since the coil is wound around the leg portion, power can be received also from the power supply line arranged outside the leg portion, so that the power receiving ability can be improved.

以下、本発明をその実施の形態を示す図面に基づいて具体的に説明する。   Hereinafter, the present invention will be specifically described with reference to the drawings showing embodiments thereof.

実施の形態1.
図1は本実施の形態に係る非接触給電装置の構成を説明するブロック図である。図中1は高周波電源であり、移動体である搬送車3に電力を供給するために該高周波電源1から給電線2が延設されている。給電線2は円形断面を有するリッツ線からなり、その中途における分流部21から折返すことにより復路側給電線2a,2c及び往路側給電線2bを形成し、分流部22を介して高周波電源1へ接続してループ状にしてある。すなわち、給電線2は、2本の復路側給電線2a,2cを別個に設け、1本の往路側給電線2bを共用した構成としている。
Embodiment 1 FIG.
FIG. 1 is a block diagram illustrating a configuration of a contactless power feeding device according to the present embodiment. In the figure, reference numeral 1 denotes a high-frequency power source, and a power supply line 2 is extended from the high-frequency power source 1 in order to supply power to the transport vehicle 3 that is a moving body. The feed line 2 is formed of a litz wire having a circular cross section, and is turned back from the diversion part 21 in the middle thereof to form the return side feed lines 2a, 2c and the forward path side feed line 2b, and the high frequency power source 1 through the diversion part 22 It is connected to a loop. That is, the feed line 2 has a configuration in which two return path feed lines 2a and 2c are provided separately and one outbound path feed line 2b is shared.

搬送車3には非接触給電装置4が搭載されており、この非接触給電装置4は3つのピックアップコイル51a,51b,51cを有するピックアップ部5と受電回路6とを備え、給電線2に近接させたピックアップ部5を介して起電力を得るようになしてあり、受電回路6を介して搬送車3のモータを含む動力回路7及び制御回路8に対する給電を行う。   A non-contact power feeding device 4 is mounted on the transport vehicle 3, and the non-contact power feeding device 4 includes a pickup unit 5 having three pickup coils 51 a, 51 b, 51 c and a power receiving circuit 6, and is close to the power feeding line 2. An electromotive force is obtained through the picked-up pickup unit 5, and power is supplied to the power circuit 7 and the control circuit 8 including the motor of the transport vehicle 3 through the power receiving circuit 6.

図2はピックアップ部5の拡大斜視図であり、図3はその模式的側面図である。ピックアップ部5は磁性材料により形成されたピックアップコア53と、該ピックアップコア53に巻回された3つのピックアップコイル51a,51b,51cとを備えている。また、各給電線2a,2b,2cは、夫々ピックアップコイル51a,51b,51cに近接するように支持具54a,54b,54cによって支持されている。これらの支持具54a,54b,54cは、給電線2を敷設する方向に適宜間隔を隔てて多数設置されている。   FIG. 2 is an enlarged perspective view of the pickup unit 5, and FIG. 3 is a schematic side view thereof. The pickup unit 5 includes a pickup core 53 formed of a magnetic material, and three pickup coils 51a, 51b, 51c wound around the pickup core 53. Further, each of the power supply lines 2a, 2b, 2c is supported by support members 54a, 54b, 54c so as to be close to the pickup coils 51a, 51b, 51c, respectively. A large number of these support tools 54a, 54b, 54c are installed at appropriate intervals in the direction in which the feeder 2 is laid.

ピックアップコア53は、直方体状の基部53eの一側面側に、一定の間隔(a)を隔てて略平行に4つの脚部53a,53b,53c,53dを立設してなるものであり、各脚部間にピックアップコイル51a,51b,51cが巻装されている。外側の2つの脚部53a,53dの厚み(t)は、内側の2つの脚部53b,53cの厚み(3t)の略1/3倍の厚みに形成されている。
また、内側の2つの脚部53b,53cに囲まれる領域に往路側給電線2bを介在させていると共に、内側の脚部53bと外側の脚部53aとの間に囲まれる領域に復路側給電線2aを介在させ、更に、内側の脚部53cと外側の脚部53dとの間に囲まれる領域に復路側給電線2cを介在させている。
The pickup core 53 has four leg portions 53a, 53b, 53c, and 53d provided upright on one side surface of a rectangular parallelepiped base portion 53e with a predetermined interval (a). Pickup coils 51a, 51b, 51c are wound between the legs. The thickness (t) of the two outer legs 53a and 53d is formed to be approximately 1/3 times the thickness (3t) of the two inner legs 53b and 53c.
Further, the forward-side power supply line 2b is interposed in a region surrounded by the two inner legs 53b and 53c, and a return-side supply is provided in a region surrounded by the inner leg 53b and the outer leg 53a. The electric wire 2a is interposed, and the return-side power supply line 2c is interposed in a region surrounded by the inner leg portion 53c and the outer leg portion 53d.

このように、往路側給電線2bに対して復路側給電線2a,2cを対称に配置することによって、電流を流したときに往路側給電線2bから発生する磁界及び電界は、その外側に配置した2本の復路側給電線2a,2cから発生する磁界及び電界により打ち消すことが可能となるため、一対の給電線を用いた場合と比較してピックアップ部5の外部に設けられた電子回路、電子機器等に与える影響を少なくすることが可能となる。   In this way, by arranging the return-side feed lines 2a and 2c symmetrically with respect to the forward-side feed line 2b, the magnetic field and electric field generated from the forward-side feed line 2b when current is passed are arranged on the outside thereof. The electronic circuit provided outside the pickup unit 5 as compared with the case of using a pair of power supply lines, because it is possible to cancel by the magnetic field and electric field generated from the two return-side power supply lines 2a, 2c, It is possible to reduce the influence on electronic devices and the like.

なお、各給電線2a,2b,2cの断面の直径は必ずしも同じである必要はなく、復路側給電線2a,2cの直径が往路側給電線2bの直径よりも小さいものを利用してもよい。その場合、脚部53aと脚部53bとの間、及び脚部53cと脚部53dとの間の間隔を狭くすることが可能であり、脚部間の空間の磁気抵抗を小さくすることができ、ピックアップ部5の磁気結合度が大きくなり、受電能力を向上させることができる。また、脚部53aと脚部53bの間、脚部53cと脚部53dの間の給電線2の径を小さくすることで、各給電線2a,2b,2cの間隔を狭くすることができ、給電線2から発生する磁界及び電界による周囲の回路、機器等への影響が少なくなる。   The diameters of the cross sections of the power supply lines 2a, 2b, and 2c are not necessarily the same, and the diameters of the return path power supply lines 2a and 2c may be smaller than the diameter of the forward path power supply line 2b. . In that case, the distance between the leg portions 53a and 53b and between the leg portions 53c and 53d can be reduced, and the magnetic resistance of the space between the leg portions can be reduced. The magnetic coupling degree of the pickup unit 5 is increased, and the power receiving ability can be improved. Further, by reducing the diameter of the power supply line 2 between the leg part 53a and the leg part 53b, and between the leg part 53c and the leg part 53d, the interval between the power supply lines 2a, 2b and 2c can be reduced. The influence of the magnetic field and electric field generated from the feeder line 2 on the surrounding circuits and equipment is reduced.

また、各ピックアップコイル51a,51b,51cは、各脚部間にて基部53eに巻回する構成であったが、内側の2つの脚部53b,53cに巻回する構成であってもよい。更に、各給電線2a,2b,2cの断面は扁平形状であってもよい。   Each pickup coil 51a, 51b, 51c is configured to be wound around the base 53e between the respective leg portions, but may be configured to be wound around the two inner leg portions 53b, 53c. Furthermore, the cross section of each feeder 2a, 2b, 2c may be flat.

実施の形態2.
実施の形態1では、ピックアップコイル51a,51b,51cを各脚部間にて基部53eに巻回する形態であったが、給電線2の断面が扁平形状である場合には、ピックアップコイル51a,51b,51cを基部53eに巻回するよりも、内側の2つの脚部53b,53cに巻回した方が受電効率が良い。
Embodiment 2. FIG.
In the first embodiment, the pickup coils 51a, 51b, 51c are wound around the base 53e between the leg portions. However, when the cross section of the feeder 2 is flat, the pickup coils 51a, Rather than winding 51b and 51c around the base 53e, the power receiving efficiency is better when wound around the two inner legs 53b and 53c.

図4は、本実施の形態に係るピックアップ部5の模式的側面図である。実施の形態1と同様に、ピックアップ部5は、磁性体製のピックアップコア53と該ピックアップコア53に巻回されたピックアップコイル51d,51eとから構成される。また、ピックアップコア53は、直方体状の基部53eと、該基部53eの一側面側に一定の間隔を隔てて略平行に立設した4つの脚部53a,53b,53c,53dとを備えてなるものである。   FIG. 4 is a schematic side view of the pickup unit 5 according to the present embodiment. As in the first embodiment, the pickup unit 5 includes a magnetic pickup core 53 and pickup coils 51d and 51e wound around the pickup core 53. Further, the pickup core 53 includes a rectangular parallelepiped base portion 53e and four leg portions 53a, 53b, 53c, and 53d that are erected substantially in parallel at a certain interval on one side surface of the base portion 53e. Is.

本実施の形態では、扁平断面を有する給電線2を用いており、往路側給電線2bを内側の2つの脚部53b,53cの間に介在させると共に、2本の復路側給電線2a,2cを脚部53a,53bの間、及び脚部53c,53dの間に夫々介在させている。図4に示した如く、復路側給電線2aの断面の長径方向が脚部53a,53bに平行になるように介在させており、ピックアップコイル51dを脚部53dに巻回してある。同様に、往路側給電線2bの断面の長径方向が脚部53b,53cに平行になるように介在させ、復路側給電線2cの断面の長径方向が脚部53c,53dに平行になるように介在させてある。このように扁平な復路側給電線2a,2c及び往路側給電線2bをピックアップコイル51d,51eに対向させて支持することにより、各脚部53a,53b,53c,53dの間隔を狭くすることができ、空間の磁気抵抗を減らすことができるため、更に受電効率を高めることが可能となる。また、内側の脚部53b,53cにピックアップコイル51d,51eを巻回することにより、基部53e背面への漏れ磁束を減らすことができ、受電効率を高めることができる。   In the present embodiment, the feed line 2 having a flat cross section is used, and the forward path side feed line 2b is interposed between the two inner legs 53b and 53c, and the two return path side feed lines 2a and 2c. Are interposed between the leg portions 53a and 53b and between the leg portions 53c and 53d, respectively. As shown in FIG. 4, the major axis direction of the cross section of the return-side power supply line 2 a is interposed so as to be parallel to the leg portions 53 a and 53 b, and a pickup coil 51 d is wound around the leg portion 53 d. Similarly, the major axis direction of the cross section of the forward path side power supply line 2b is interposed so as to be parallel to the leg parts 53b and 53c, and the major axis direction of the cross section of the return path side power supply line 2c is parallel to the leg parts 53c and 53d. Intervened. By thus supporting the flat return-side power supply lines 2a and 2c and the forward-side power supply line 2b so as to face the pickup coils 51d and 51e, the distance between the legs 53a, 53b, 53c and 53d can be reduced. In addition, since the magnetic resistance of the space can be reduced, the power receiving efficiency can be further increased. Further, by winding the pickup coils 51d and 51e around the inner legs 53b and 53c, the leakage magnetic flux to the back surface of the base 53e can be reduced, and the power receiving efficiency can be increased.

実施の形態3.
前述の実施の形態では、2本の復路側給電線2a,2cを別個に設けて、分流部21から1本の往路側給電線2bを共用する構成としたが、2本の給電線2,2を個別に高周波電源1に接続する形態であってもよい。この場合、分流部21に接続部がなく敷設が容易である。
Embodiment 3 FIG.
In the above-described embodiment, the two return-side power supply lines 2a and 2c are separately provided, and the one forward-side power supply line 2b is shared from the shunt portion 21. 2 may be individually connected to the high-frequency power source 1. In this case, there is no connection part in the flow dividing part 21, and laying is easy.

図5は本実施の形態に係る非接触給電装置の構成を説明するブロック図である。図中1は高周波電源であり、移動体である搬送車3に電力を供給するために該高周波電源1から給電線2,2が延設されている。給電線2,2は円形断面を有するリッツ線からなり、夫々の中途における折返部2P,2Pから折返すことにより復路側給電線2d,2g及び往路側給電線2e,2fを形成し、夫々の両端を高周波電源1へ接続してループ状にしてある。   FIG. 5 is a block diagram illustrating a configuration of the non-contact power feeding apparatus according to this embodiment. In the figure, reference numeral 1 denotes a high-frequency power source, and power supply lines 2 and 2 are extended from the high-frequency power source 1 in order to supply power to the transport vehicle 3 that is a moving body. The feed lines 2 and 2 are made of litz wires having a circular cross section, and are turned back from the folded portions 2P and 2P in the middle to form the return path feed lines 2d and 2g and the forward path feed lines 2e and 2f, respectively. Both ends are connected to the high frequency power source 1 to form a loop.

搬送車3には非接触給電装置4が搭載されており、この非接触給電装置4は3つのピックアップコイル51a,51b,51cを有するピックアップ部5と受電回路6とを備え、給電線2,2に近接させたピックアップ部5を介して起電力を得るようになしてあり、受電回路6を介して搬送車3のモータを含む動力回路7及び制御回路8に対する給電を行う。   A non-contact power feeding device 4 is mounted on the transport vehicle 3, and the non-contact power feeding device 4 includes a pickup unit 5 having three pickup coils 51 a, 51 b, 51 c and a power receiving circuit 6, and feed lines 2, 2. An electromotive force is obtained through a pickup unit 5 that is close to the power supply unit, and power is supplied to a power circuit 7 and a control circuit 8 including a motor of the transport vehicle 3 through a power receiving circuit 6.

図6は本実施の形態に係るピックアップ部5の模式的側面図である。実施の形態1と同様に、ピックアップ部5は、磁性体からなるピックアップコア53と該ピックアップコア53に巻回されたピックアップコイル51a,51b,51cとから構成される。   FIG. 6 is a schematic side view of the pickup unit 5 according to the present embodiment. As in the first embodiment, the pickup unit 5 includes a pickup core 53 made of a magnetic material and pickup coils 51a, 51b, 51c wound around the pickup core 53.

ピックアップ部53は、直方体状の基部53eの一側面側から、一定の間隔を隔てて略平行に4つの脚部53a,53b,53c,53dを立設してなるものであり、ピックアップコイル51a,51b,51cは、各脚部間にて基部53eに巻回されている。   The pickup portion 53 is formed by standing up four leg portions 53a, 53b, 53c, 53d substantially parallel to each other at a certain interval from one side surface of a rectangular parallelepiped base portion 53e. 51b and 51c are wound around the base 53e between each leg part.

復路側給電線2d,2gは、脚部53a,53bの間、及び脚部53c,53dの間の間隙に配されるように支持具54a,54cにより支持されており、往路側給電線2e,2fは、脚部53b,53cの間の間隙に配されるように支持具54bに支持されている。   The return-side power supply lines 2d and 2g are supported by the support tools 54a and 54c so as to be arranged between the leg portions 53a and 53b and in the gap between the leg portions 53c and 53d. 2f is supported by the support tool 54b so as to be arranged in the gap between the leg portions 53b and 53c.

このように、往路側給電線2e,2fの外側に復路側給電線2d,2gを対称に配することにより、電流を流したときに往路側給電線2e,2fから発生する磁界及び電界は、その外側に配置した2本の復路側給電線2d,2gから発生する磁界及び電界により打ち消すことが可能となるため、一対の給電線を用いた場合と比較してピックアップ部5の外部に設けられた電子回路、電子機器等に与える影響を少なくすることが可能となる。   Thus, by arranging the return-side power supply lines 2d and 2g symmetrically outside the forward-side power supply lines 2e and 2f, the magnetic field and electric field generated from the forward-side power supply lines 2e and 2f when a current flows are Since it can be canceled out by a magnetic field and an electric field generated from the two return-side power supply lines 2d and 2g arranged on the outside, it is provided outside the pickup unit 5 as compared with the case where a pair of power supply lines is used. It is possible to reduce the influence on the electronic circuit and electronic equipment.

実施の形態4.
ピックアップコイル51a,51b,51cは、前述したようにピックアップコア53の基部53eに巻回したものである必要はなく、内側の2つの脚部53b,53cに巻回したものであってもよい。
Embodiment 4 FIG.
The pickup coils 51a, 51b, and 51c do not have to be wound around the base 53e of the pickup core 53 as described above, and may be wound around the two inner leg portions 53b and 53c.

図7は本実施の形態に係るピックアップ部5の模式的側面図である。ピックアップコア53は、前述と同様に、直方体状の基部53eに4つの脚部53a,53b,53c,53dを適宜間隔を隔てて略平行に立設してなるものであり、更に、内側の2つの脚部53b,53cの両側面に夫々脚片55,55,55,55が取付けられている。   FIG. 7 is a schematic side view of the pickup unit 5 according to the present embodiment. In the same manner as described above, the pickup core 53 has four leg portions 53a, 53b, 53c, 53d erected substantially in parallel with a rectangular parallelepiped base portion 53e at an appropriate interval. Leg pieces 55, 55, 55, 55 are attached to both side surfaces of the two leg portions 53b, 53c, respectively.

ピックアップコイル51d,51eは、内側の2つの脚部53b,53cに巻回されており、復路側給電線2d,2g及び往路側給電線2e,2fに電流が流れたときに発生する磁束を各ピックアップコイル51d,51eにて効率良く拾うことが可能となる。   The pick-up coils 51d and 51e are wound around the two inner leg portions 53b and 53c, and each of the magnetic fluxes generated when current flows through the return-side power supply lines 2d and 2g and the forward-side power supply lines 2e and 2f. Pickup coils 51d and 51e can be efficiently picked up.

実施の形態5.
図8は本実施の形態に係る非接触給電装置の構成を説明するブロック図である。本発明では、ピックアップコア53の基部53eに巻回した3つのピックアップコイル51a,51b,51c、又は内側の2つの脚部53b,53cに巻回した2つのピックアップコイル51d,51eを用いて、給電線2に電流が流れたときに発生する磁束を拾うようにしているため、夫々に制御回路又は動力回路を接続し、これらの回路に夫々給電することも可能である。
Embodiment 5. FIG.
FIG. 8 is a block diagram illustrating the configuration of the non-contact power feeding device according to this embodiment. In the present invention, the three pickup coils 51a, 51b, 51c wound around the base portion 53e of the pickup core 53 or the two pickup coils 51d, 51e wound around the two inner leg portions 53b, 53c are used to supply power. Since the magnetic flux generated when a current flows through the electric wire 2 is picked up, it is possible to connect a control circuit or a power circuit to each of these and to supply power to these circuits.

図中1は高周波電源であり、移動体である搬送車3に電力を供給するために該高周波電源1から給電線2が延設されている。給電線2は円形断面を有するリッツ線からなり、その中途における分流部21から折返すことにより復路側給電線2a,2c及び往路側給電線2bと形成し、分流部22を介して高周波電源1へ接続してループ状にしてある。すなわち、給電線2は、2本の復路側給電線2a,2cを別個に設け、1本の往路側給電線2bを共用した構成としている。   In the figure, reference numeral 1 denotes a high-frequency power source, and a power supply line 2 is extended from the high-frequency power source 1 in order to supply power to the transport vehicle 3 that is a moving body. The feeder line 2 is formed of a litz wire having a circular cross section, and is turned back from the shunt portion 21 in the middle thereof to form the return-side feed wires 2a and 2c and the forward-side feed wire 2b, and the high-frequency power source 1 via the shunt portion 22 It is connected to a loop. That is, the feed line 2 has a configuration in which two return path feed lines 2a and 2c are provided separately and one outbound path feed line 2b is shared.

搬送車3には非接触給電装置4が搭載されており、この非接触給電装置4は3つのピックアップコイル51a,51b,51cを有するピックアップ部5と各ピックアップコイル51a,51b,51cに接続された受電回路6a,6b,6cとを備え、給電線2に近接させたピックアップ部5を介して起電力を得るようになしてあり、受電回路6aを介して制御回路8に給電すると共に、受電回路6b,6cを介して動力回路7a,7bに給電する構成としている。これにより互いに絶縁された電源及び電圧の違う電源を得ることができる。   A non-contact power feeding device 4 is mounted on the transport vehicle 3, and this non-contact power feeding device 4 is connected to a pickup unit 5 having three pickup coils 51 a, 51 b, 51 c and each pickup coil 51 a, 51 b, 51 c. The power receiving circuit 6a, 6b, 6c is provided, and an electromotive force is obtained through the pickup unit 5 close to the power supply line 2. The power receiving circuit 6a supplies power to the control circuit 8, and the power receiving circuit. Power is supplied to the power circuits 7a and 7b via 6b and 6c. As a result, it is possible to obtain a power source insulated from each other and a power source having a different voltage.

実施の形態6.
図9〜図11は本実施の形態に係るピックアップ部5の模式的側面図である。本実施の形態のピックアップ部5は、磁性体製のピックアップコア53と該ピックアップコア53に巻回されたピックアップコイル51d,51eとを備える。
Embodiment 6 FIG.
9 to 11 are schematic side views of the pickup unit 5 according to the present embodiment. The pickup unit 5 of the present embodiment includes a magnetic pickup core 53 and pickup coils 51d and 51e wound around the pickup core 53.

ピックアップコア53は、直方体状の基部53eの一側面側に適宜の間隔を隔てて略平行に2つの脚部53b,53cを立設してなるものであり、相隣する2つの脚部間で相対するように設けた脚片55,55が取付けられている。   The pickup core 53 has two leg portions 53b and 53c provided upright on a side surface of a rectangular parallelepiped base portion 53e with an appropriate interval therebetween, and between two adjacent leg portions. Leg pieces 55 are provided so as to face each other.

また、ピックアップコア53の周囲には断面がコ字型形状を有するアルミニウム製のダクト59が設置されており、ピックアップコア53を収容できるようになっている。このダクト59の一側面にはL字形の断面を有する支持腕50が取付けられており、これらの支持腕50を介して工場又は倉庫の天井に吊り下げられている。アルミニウム製のダクト59の内側の適宜箇所には復路側給電線2a,2cの取付部54d,54fが設置されていると共に、往路側給電線2bを支持する為の支持具54eが設置されている。   Further, an aluminum duct 59 having a U-shaped cross section is installed around the pickup core 53 so that the pickup core 53 can be accommodated. A support arm 50 having an L-shaped cross section is attached to one side surface of the duct 59, and is suspended from the ceiling of a factory or a warehouse via these support arms 50. Mounting portions 54d and 54f for the return path power supply lines 2a and 2c are installed at appropriate locations inside the aluminum duct 59, and a support 54e for supporting the forward path power supply line 2b is installed. .

本実施の形態の給電線2は扁平断面を有しており、往路側給電線2bを2つの脚部53b,53cの間に介在させると共に、2本の復路側給電線2a,2cをアルミニウム製のダクト59の内側に設けた取付部54d,54fに取付けてある。   The feed line 2 of the present embodiment has a flat cross section, and the forward feed line 2b is interposed between the two legs 53b and 53c, and the two return feed lines 2a and 2c are made of aluminum. It is attached to attachment parts 54d and 54f provided inside the duct 59.

このように、アルミニウム製のダクト59でピックアップコア53を囲む構成とすることにより、復路側給電線2a,2cから発生する磁界の広がりを抑え、ピックアップコイル51d,51eにて効率的に拾うことが可能となるため、受電効率を上げることが可能となる。また、アルミニウム製のダクト59により磁界及び電界を効果的に遮蔽することが可能となる。   As described above, the pickup core 53 is surrounded by the aluminum duct 59, so that the spread of the magnetic field generated from the return-side power supply lines 2a and 2c can be suppressed and the pickup coils 51d and 51e can efficiently pick up the magnetic field. This makes it possible to increase power reception efficiency. In addition, the magnetic and electric fields can be effectively shielded by the aluminum duct 59.

また、図10に示した如く、脚部53d,53cの外側の端部にそれぞれ突条部57,57を設けた場合、復路側給電線2a,2cを囲む構成となるため、往路側給電線2bによる起電力の寄与が高くなる。   Further, as shown in FIG. 10, when the protrusions 57 and 57 are provided at the outer ends of the leg portions 53d and 53c, respectively, the configuration is such that the return-side power supply lines 2a and 2c are surrounded. The contribution of the electromotive force by 2b becomes high.

また、図11に示した如く、復路側給電線2a,2cの取付部54d,54fをアルミニウム製のダクト59の下方に設けることにより、アルミニウム製のダクト59を含めた断面形状の大きさを小さくすることができる。   Further, as shown in FIG. 11, by providing the attachment portions 54d and 54f of the return-side power supply lines 2a and 2c below the aluminum duct 59, the size of the cross-sectional shape including the aluminum duct 59 is reduced. can do.

本実施の形態に係る非接触給電装置の構成を説明するブロック図である。It is a block diagram explaining the structure of the non-contact electric power supply which concerns on this Embodiment. ピックアップ部の拡大斜視図である。It is an expansion perspective view of a pickup part. ピックアップ部の模式的側面図である。It is a typical side view of a pickup part. 本実施の形態に係るピックアップ部の模式的側面図である。It is a typical side view of the pickup part which concerns on this Embodiment. 本実施の形態に係る非接触給電装置の構成を説明するブロック図である。It is a block diagram explaining the structure of the non-contact electric power supply which concerns on this Embodiment. 本実施の形態に係るピックアップ部の模式的側面図である。It is a typical side view of the pickup part which concerns on this Embodiment. 本実施の形態に係るピックアップ部の模式的側面図である。It is a typical side view of the pickup part which concerns on this Embodiment. 本実施の形態に係る非接触給電装置の構成を説明するブロック図である。It is a block diagram explaining the structure of the non-contact electric power supply which concerns on this Embodiment. 本実施の形態に係るピックアップ部の模式的側面図である。It is a typical side view of the pickup part which concerns on this Embodiment. 本実施の形態に係るピックアップ部の模式的側面図である。It is a typical side view of the pickup part which concerns on this Embodiment. 本実施の形態に係るピックアップ部の模式的側面図である。It is a typical side view of the pickup part which concerns on this Embodiment. 従来の非接触給電装置の構成例を示す模式的断面図である。It is typical sectional drawing which shows the structural example of the conventional non-contact electric power supply.

符号の説明Explanation of symbols

1 高周波電源
2 給電線
2a 復路側給電線
2b 往路側給電線
2c 復路側給電線
3 搬送車
4 非接触給電装置
5 ピックアップ部
51a,51b,51c ピックアップコイル
53 ピックアップコア
53a,53b,53c,53d 脚部
53e 基部
6 受電回路
7 動力回路
8 制御回路
DESCRIPTION OF SYMBOLS 1 High frequency power supply 2 Feeding line 2a Returning side feeding line 2b Outgoing side feeding line 2c Returning side feeding line 3 Carrier vehicle 4 Non-contact feeding device 5 Pickup part 51a, 51b, 51c Pickup coil 53 Pickup core 53a, 53b, 53c, 53d Leg Part 53e Base 6 Power receiving circuit 7 Power circuit 8 Control circuit

Claims (1)

一次側回路に流れる電流によって生ずる磁束を、磁性体にコイルを巻回してなる二次側回路に鎖交させ、前記一次側回路から前記二次側回路へ電力を供給する非接触給電装置において、
前記磁性体は、基部と、該基部上に適宜間隔を隔てて並設してある2つの脚部とを備え、前記一次回路は、中途にて分流部を設けてなる給電線を備え、前記磁性体を収容する非磁性導体からなる収容部と、前記分流部までの往路側を前記2つの脚部の間に配置するために前記収容部の中央部に設けられた第1取付部と、前記分流部から一側及び他側を夫々前記脚部の外側に配置するために前記収容部の内側の側面に接するように設けられた2つの第2取付部とを備え、前記分流部までの往路側を前記第1取付部に、前記分流側から一側及び他側を夫々第2取付部に取付けてあり、前記コイルは、前記2つの脚部の夫々に巻回してあることを特徴とする非接触給電装置。
In a non-contact power feeding device that links magnetic flux generated by a current flowing in a primary side circuit to a secondary side circuit formed by winding a coil around a magnetic body, and supplies power from the primary side circuit to the secondary side circuit,
The magnetic body includes a base and two legs arranged in parallel at an appropriate interval on the base, and the primary circuit includes a feeder line provided with a shunt in the middle, A housing part made of a non-magnetic conductor that houses a magnetic body, and a first mounting part provided at a central part of the housing part in order to dispose the forward path side to the diversion part between the two leg parts, Two second mounting portions provided so as to be in contact with the inner side surface of the housing portion in order to dispose one side and the other side of the branch portion on the outside of the leg portion, respectively, The forward path side is attached to the first attachment part, the one side and the other side from the diversion side are attached to the second attachment part, respectively, and the coil is wound around each of the two leg parts. A non-contact power feeding device.
JP2003322139A 2003-09-12 2003-09-12 Non-contact power feeding device Expired - Lifetime JP4059828B2 (en)

Priority Applications (3)

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JP2003322139A JP4059828B2 (en) 2003-09-12 2003-09-12 Non-contact power feeding device
TW093124028A TWI271911B (en) 2003-09-12 2004-08-11 Contactless power feeding apparatus
KR1020040068237A KR100670409B1 (en) 2003-09-12 2004-08-28 Non-contact power supply apparatus

Applications Claiming Priority (1)

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JP2003322139A JP4059828B2 (en) 2003-09-12 2003-09-12 Non-contact power feeding device

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JP2008044614A (en) * 2007-10-26 2008-02-28 Tsubakimoto Chain Co Noncontact current feeding device
JP5141987B2 (en) * 2009-12-07 2013-02-13 株式会社ダイフク Goods transport equipment
KR101130285B1 (en) * 2009-12-30 2012-03-26 한국과학기술원 Power supply and collector apparatus for marine mobile object
JP5478326B2 (en) 2010-03-30 2014-04-23 パナソニック株式会社 Contactless power supply system
US10600564B2 (en) * 2010-05-19 2020-03-24 Auckland Uniservices Limited Inductive power transfer system primary track topologies
KR101157391B1 (en) * 2010-08-17 2012-06-15 한국과학기술원 Apparatus for Feeding/Collecting Power Having Minimal Airgap
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KR101251552B1 (en) * 2011-10-13 2013-04-08 한국철도기술연구원 Noncontact power-feeding device using conductivefluid
EP2777054B1 (en) 2011-10-28 2021-02-17 Auckland UniServices Limited Non-ferrite structures for inductive power transfer
KR101307811B1 (en) * 2012-01-19 2013-09-12 한국과학기술원 Power supply module for dividing line into segment
JP2014099524A (en) * 2012-11-15 2014-05-29 Panasonic Corp Core used for coil in power supply unit or power reception unit of non-contact power transmission system
JP2016226072A (en) * 2015-05-27 2016-12-28 Tdk株式会社 Wireless power supply device and wireless power transmission system
JP6579434B2 (en) * 2015-08-21 2019-09-25 シンフォニアテクノロジー株式会社 Non-contact power supply device and processing device provided with non-contact power supply device
WO2019069605A1 (en) * 2017-10-06 2019-04-11 村田機械株式会社 Non-contact power supply facility
JP6967181B2 (en) * 2017-10-12 2021-11-17 株式会社ダイヘン Power transmission equipment and non-contact power transmission system

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TWI271911B (en) 2007-01-21

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