JP6545104B2 - Resonance type power transmission device - Google Patents

Resonance type power transmission device Download PDF

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JP6545104B2
JP6545104B2 JP2015554400A JP2015554400A JP6545104B2 JP 6545104 B2 JP6545104 B2 JP 6545104B2 JP 2015554400 A JP2015554400 A JP 2015554400A JP 2015554400 A JP2015554400 A JP 2015554400A JP 6545104 B2 JP6545104 B2 JP 6545104B2
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power transmission
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JPWO2015097811A1 (en
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阿久澤 好幸
好幸 阿久澤
酒井 清秀
清秀 酒井
俊裕 江副
俊裕 江副
有基 伊藤
有基 伊藤
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Mitsubishi Electric Engineering Co Ltd
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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
    • H02J50/12Circuit arrangements or systems for wireless supply or distribution of electric power using inductive coupling of the resonant type
    • 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
    • H02J50/05Circuit arrangements or systems for wireless supply or distribution of electric power using capacitive coupling

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Description

この発明は、高周波数で電力伝送を行う共振型電力伝送装置に関するものである。   The present invention relates to a resonant power transmission device that performs power transmission at a high frequency.

図3に従来技術による共振型電力伝送装置を示す。この共振型電力伝送装置では、E級型送信電源の出力に、インダクタ(コイル)L11からなる送信アンテナ101を接続して構成されている(例えば非特許文献1参照)。   FIG. 3 shows a resonant power transmission device according to the prior art. In this resonant power transmission device, a transmission antenna 101 including an inductor (coil) L11 is connected to an output of a class E transmission power supply (see, for example, Non-Patent Document 1).

2013年電子情報通信学会総合大会BCS−1−162013 IEICE General Conference BCS-1-16

上述したように、非特許文献1に開示された従来技術では、E級型送信電源の出力に送信アンテナ101を接続することにより共振型電力伝送装置を構成している。そのため、使用するコイル部品による実装スペースが広く必要となり、装置の小型化、軽量化及び低コスト化の妨げとなっているという課題がある。   As described above, in the prior art disclosed in Non-Patent Document 1, the resonant power transmission apparatus is configured by connecting the transmission antenna 101 to the output of the class E transmission power supply. Therefore, the mounting space by the coil components to be used is required widely, and the subject that it becomes the hindrance of size reduction of a device, weight reduction, and cost reduction arises.

この発明は、上記のような課題を解決するためになされたもので、装置の小型化、軽量化及び低コスト化を図ることができ、2MHz以上の高周波数の動作が可能な共振型電力伝送装置を提供することを目的としている。   The present invention has been made to solve the problems as described above, and can achieve miniaturization, weight reduction and cost reduction of the device, and a resonant power transmission capable of high frequency operation of 2 MHz or more. It is intended to provide a device.

この発明に係る共振型電力伝送装置は、インダクタと、一端がインダクタに接続され、直流電圧がインダクタを通して当該一端に印加され、2MHz以上の高周波数でスイッチング動作を行うパワー素子と、出力部がトーテンポール回路構成であり、パワー素子に2MHz以上の高周波数のパルス状の電圧信号を送り、当該パワー素子を駆動させる高周波パルスドライブ回路と、高周波パルスドライブ回路に2MHz以上の高周波数のパルス状の電圧信号を送り、当該高周波パルスドライブ回路を駆動させる可変型パルス信号発生回路と、可変型パルス信号発生回路及び高周波パルスドライブ回路に駆動電力を供給するバイアス用電源回路と、ゼロボルテージスイッチングが成立するようにパワー素子を共振スイッチングさせるコンデンサ及びコイルからなる共振回路素子と、パワー素子のスイッチング動作により出力された電力を伝送する電力伝送用送信アンテナとを備え、共振回路素子を構成するコイルは、電力伝送用送信アンテナを兼ね、共振回路素子を構成するコンデンサは、一端がパワー素子の一端に接続され、他端が電力伝送用送信アンテナの一端に接続された第1のコンデンサ、及び、一端が当該パワー素子の他端に接続され、他端が当該電力伝送用送信アンテナの他端に接続された第2のコンデンサを含むものである。 The resonant power transmission device according to the present invention includes an inductor, one end connected to the inductor, a DC voltage applied to the one end through the inductor, and a power element performing switching operation at a high frequency of 2 MHz or more, and an output section is a totem pole. A high frequency pulse drive circuit for sending a high frequency pulse signal of 2 MHz or higher to the power element and driving the power element, and a high frequency pulse voltage signal of 2 MHz or higher for the high frequency pulse drive circuit. A variable power pulse signal generation circuit for driving the high frequency pulse drive circuit, a bias power supply circuit for supplying drive power to the variable pulse signal generation circuit and the high frequency pulse drive circuit, and zero voltage switching. Capacitors for resonant switching of power devices and A resonant circuit element comprising a coil and a power transmission transmitting antenna for transmitting power output by the switching operation of the power element, the coil constituting the resonant circuit element also serving as a power transmission transmitting antenna, and the resonant circuit The capacitor constituting the element is connected at one end to the one end of the power element and at the other end to the first capacitor connected to one end of the transmission antenna for power transmission, and one end is connected to the other end of the power element The other end includes a second capacitor connected to the other end of the power transmission transmission antenna.

この発明によれば、上記のように構成したので、装置の小型化、軽量化及び低コスト化を図ることができ、2MHz以上の高周波数の動作が可能となる。   According to the present invention, since the apparatus is configured as described above, the size, weight and cost of the device can be reduced, and high frequency operation of 2 MHz or more becomes possible.

この発明の実施の形態1に係る共振型電力伝送装置の構成を示す図である。It is a figure which shows the structure of the resonance type electric power transmission apparatus which concerns on Embodiment 1 of this invention. この発明の実施の形態1に係る共振型電力伝送装置の別の構成を示す図である。It is a figure which shows another structure of the resonance type power transmission apparatus which concerns on Embodiment 1 of this invention. 従来の共振型電力伝送装置の構成を示す図である。It is a figure which shows the structure of the conventional resonant type electric power transmission apparatus.

以下、この発明の実施の形態について図面を参照しながら詳細に説明する。
実施の形態1.
図1はこの発明の実施の形態1に係る共振型電力伝送装置の構成を示す図である。
共振型電力伝送装置は、図1に示すように、パワー素子Q1、共振回路素子(コンデンサC1,C2,C11及びインダクタL11)、コンデンサC11及びインダクタL11からなる共振型送信アンテナ(電力伝送用送信アンテナ)1、インダクタL1、高周波パルスドライブ回路2、可変型パルス信号発生回路3及びバイアス用電源回路4から構成されている。
Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings.
Embodiment 1
FIG. 1 is a diagram showing the configuration of a resonant power transmission apparatus according to Embodiment 1 of the present invention.
As shown in FIG. 1, the resonant power transmission apparatus is a resonant transmission antenna (power transmission transmission antenna) including a power element Q1, a resonant circuit element (capacitors C1, C2 and C11 and an inductor L11), a capacitor C11 and an inductor L11. 1), an inductor L1, a high frequency pulse drive circuit 2, a variable pulse signal generation circuit 3 and a bias power supply circuit 4.

パワー素子Q1は、入力の直流電圧Vinを交流に変換するためにスイッチング動作を行うスイッチング素子である。このパワー素子Q1としては、RF(Radio Frequency)用の電界効果トランジスタ(FET;Field Effect Transistor)に限らず、例えばSi−MOSFETやSiC−MOSFET、GaN−FETなどの素子を用いることが可能である。   The power element Q1 is a switching element that performs a switching operation to convert an input DC voltage Vin into an AC. The power element Q1 is not limited to a field effect transistor (FET; Field Effect Transistor) for RF (Radio Frequency), and for example, an element such as Si-MOSFET, SiC-MOSFET, or GaN-FET can be used. .

共振回路素子(コンデンサC1,C2,C11及びインダクタL11)は、パワー素子Q1のスイッチング動作を共振スイッチングさせるための素子である。このコンデンサC1,C2,C11及びインダクタL11からなる共振回路素子により、共振型送信アンテナ1との間で共振条件を合わせることができる。また、コンデンサC2は容量値可変型の素子である。そして、コンデンサC2の容量値を可変することで、共振型電力伝送装置の共振周波数の調整を行うことができる。   The resonant circuit elements (capacitors C1, C2, C11 and an inductor L11) are elements for performing resonant switching of the switching operation of the power element Q1. The resonance condition can be matched with the resonance type transmission antenna 1 by the resonance circuit element including the capacitors C1, C2, C11 and the inductor L11. The capacitor C2 is a variable capacitance element. Then, by varying the capacitance value of the capacitor C2, it is possible to adjust the resonant frequency of the resonant power transmission device.

コンデンサC11及びインダクタL11からなる共振型送信アンテナ1は、パワー素子Q1のスイッチング動作により出力された電力を伝送するものであり、LC共振特性を持つ電力伝送用の共振型アンテナである(非接触型のみに限定されない)。この共振型送信アンテナ1は、磁界共鳴型、電界共鳴型、電磁誘導型のいずれであってもよい。ここで、インダクタL11は、共振型送信アンテナ1と共振回路素子(共振器)として兼用される。   The resonant transmission antenna 1 including the capacitor C11 and the inductor L11 transmits the power output by the switching operation of the power element Q1, and is a resonant antenna for power transmission having LC resonance characteristics (non-contact type Not limited to). The resonant transmission antenna 1 may be any of a magnetic field resonance type, an electric field resonance type, and an electromagnetic induction type. Here, the inductor L11 is used as the resonant transmission antenna 1 and as a resonant circuit element (resonator).

インダクタL1は、入力の直流電圧Vinのエネルギーを、パワー素子Q1のスイッチング動作ごとに一時的に保持する働きをするものである。   The inductor L1 functions to temporarily hold energy of the DC voltage Vin of the input for each switching operation of the power element Q1.

高周波パルスドライブ回路2は、パワー素子Q1のG端子に2MHz以上の高周波数のパルス状の電圧信号を送り、パワー素子Q1を駆動させる回路である。この高周波パルスドライブ回路2は、出力部をFET素子などでトーテンポール回路構成にして高速のON/OFF出力ができるように構成した回路である。   The high frequency pulse drive circuit 2 is a circuit that sends a pulsed voltage signal having a high frequency of 2 MHz or more to the G terminal of the power element Q1 to drive the power element Q1. The high frequency pulse drive circuit 2 is a circuit configured such that a high speed ON / OFF output can be performed by forming an output section using a FET element or the like in a toe pole circuit configuration.

可変型パルス信号発生回路3は、高周波パルスドライブ回路2にロジック信号などの2MHz以上の高周波数のパルス状の電圧信号を送り、高周波パルスドライブ回路2を駆動させる回路である。この可変型パルス信号発生回路3は、周波数設定用のオシレータとフリップフロップやインバータなどのロジックICで構成され、パルス幅の変更や反転パルス出力などの機能を持つ。   The variable pulse signal generation circuit 3 is a circuit that sends a high-frequency pulse signal voltage of 2 MHz or more such as a logic signal to the high frequency pulse drive circuit 2 to drive the high frequency pulse drive circuit 2. The variable pulse signal generation circuit 3 is constituted by an oscillator for frequency setting and a logic IC such as a flip flop or an inverter, and has functions such as change of pulse width and inverted pulse output.

バイアス用電源回路4は、可変型パルス信号発生回路3及び高周波パルスドライブ回路2への駆動電力の供給を行うものである。   The bias power supply circuit 4 supplies drive power to the variable pulse signal generation circuit 3 and the high frequency pulse drive circuit 2.

次に、上記のように構成された共振型電力伝送装置の動作について説明する。
まず、入力の直流電圧VinはインダクタL1を通してパワー素子Q1のD端子に印加される。そして、パワー素子Q1は、その電圧をON/OFFのスイッチング動作により正電圧の交流状電圧へ変換する。この変換動作のときに、インダクタL1は一時的にエネルギーを保持する働きをして、直流を交流へ電力変換する手助けを行う。
Next, the operation of the resonant power transmission apparatus configured as described above will be described.
First, the input DC voltage Vin is applied to the D terminal of the power element Q1 through the inductor L1. Then, the power element Q1 converts the voltage into an alternating voltage of positive voltage by switching operation of ON / OFF. At the time of this conversion operation, the inductor L1 functions to temporarily hold energy to help convert direct current into alternating current.

ここで、パワー素子Q1のスイッチング動作は、Ids電流とVds電圧積によるスイッチング損失が最も小さくなるように、ZVS(ゼロボルテージスイッチング)が成立するようコンデンサC1,C2,C11及びインダクタL11からなる共振回路素子で共振スイッチング条件が設定されている。この共振スイッチング動作により、共振型送信アンテナ1にはRTN電圧を軸にした交流電圧が入力される。また、可変型のコンデンサC2の容量値を調整することで、共振型電力伝送装置の共振周波数の調整を行うことができる。
そして、共振型送信アンテナ1は、パワー素子Q1のスイッチング動作により出力された電力を伝送する。
Here, the switching operation of the power element Q1 is a resonant circuit including capacitors C1, C2, C11 and an inductor L11 such that ZVS (zero voltage switching) is established such that the switching loss due to the Ids current and the Vds voltage product is minimized. Resonant switching conditions are set in the element. By this resonant switching operation, an alternating voltage centered on the RTN voltage is input to the resonant transmission antenna 1. Further, by adjusting the capacitance value of the variable capacitor C2, it is possible to adjust the resonant frequency of the resonant power transmission device.
Then, the resonant transmission antenna 1 transmits the power output by the switching operation of the power element Q1.

パワー素子Q1の駆動は、可変型パルス信号発生回路3からの任意のパルス状の電圧信号を受けた高周波パルスドライブ回路2が出力する、パルス状の電圧信号をパワー素子Q1のG端子へ入力することで行っている。このとき、パワー素子Q1の駆動周波数は共振型電力伝送装置の動作周波数となり、可変型パルス信号発生回路3内部のオシレータ回路の設定により決まる。   For driving the power element Q1, a pulse-shaped voltage signal output from the high-frequency pulse drive circuit 2 which has received an arbitrary pulse-shaped voltage signal from the variable pulse signal generating circuit 3 is input to the G terminal of the power element Q1. It is done by. At this time, the driving frequency of the power element Q1 is the operating frequency of the resonant power transmission apparatus, and is determined by the setting of the oscillator circuit in the variable pulse signal generating circuit 3.

以上のように、この実施の形態1によれば、共振型電力伝送装置のコイルを、共振型送信アンテナ1と共振回路素子(共振器)として兼用させるように構成したので、従来必要とするコイルを1つ不要とすることができ、従来構成に対して装置の小型化、軽量化及び低コスト化を図ることができる。また、従来のコイルによる電力損失を低減できるため、装置全体としての電力損失の低減を図ることができる。   As described above, according to the first embodiment, the coil of the resonant power transmission device is configured to be used as the resonant transmission antenna 1 as a resonant circuit element (resonator). This makes it possible to reduce the size, weight and cost of the apparatus compared to the conventional configuration. Further, since the power loss due to the conventional coil can be reduced, the power loss of the entire device can be reduced.

また図1では、パワー素子Q1を駆動させるため、高周波パルスドライブ回路2、可変型パルス信号発生回路3及びバイアス用電源回路4を用いた場合について示したが、これに限るものではなく、例えばトランス型ドライブ回路、RFパワーアンプ回路及び多出力型電源回路を用いるようにしてもよい。   Although FIG. 1 shows the case where high frequency pulse drive circuit 2, variable pulse signal generation circuit 3 and bias power supply circuit 4 are used to drive power element Q1, the present invention is not limited to this. It is also possible to use a die drive circuit, an RF power amplifier circuit, and a multi-output type power supply circuit.

また図1に示すような構成の共振型電力伝送装置に限るものではなく、例えば図2に示すような構成としてもよい。なお図2に示す共振型電力伝送装置において、コンデンサC2,C3は可変型のコンデンサであり、当該コンデンサC2,C3の容量値を可変することで共振周波数の調整を行うことができる。   Further, the present invention is not limited to the resonant power transmission device having the configuration as shown in FIG. 1, and may have a configuration as shown in FIG. 2, for example. In the resonant power transmission device shown in FIG. 2, the capacitors C2 and C3 are variable capacitors, and the resonance frequency can be adjusted by varying the capacitance value of the capacitors C2 and C3.

また、本願発明はその発明の範囲内において、実施の形態の任意の構成要素の変形、もしくは実施の形態の任意の構成要素の省略が可能である。   Further, within the scope of the invention of the present application, it is possible to deform any component of the embodiment or omit any component of the embodiment.

この発明に係る共振型電力伝送装置は、装置の小型化、軽量化及び低コスト化を図ることができ、2MHz以上の高周波数の動作が可能となり、高周波数で電力伝送を行う共振型電力伝送装置等に用いるのに適している。   The resonance type power transmission device according to the present invention can achieve miniaturization, weight reduction and cost reduction of the device, enables operation at high frequency of 2 MHz or more, and performs power transmission at high frequency. It is suitable for use in devices and the like.

1 共振型送信アンテナ(電力伝送用アンテナ)、2 高周波パルスドライブ回路、3 可変型パルス信号発生回路、4 バイアス用電源回路。   1 Resonant transmission antenna (power transmission antenna), 2 high frequency pulse drive circuit, 3 variable pulse signal generation circuit, 4 bias power supply circuit.

Claims (5)

インダクタと、
一端が前記インダクタに接続され、直流電圧が前記インダクタを通して当該一端に印加され、2MHz以上の高周波数でスイッチング動作を行うパワー素子と、
出力部がトーテンポール回路構成であり、前記パワー素子に2MHz以上の高周波数のパルス状の電圧信号を送り、当該パワー素子を駆動させる高周波パルスドライブ回路と、
前記高周波パルスドライブ回路に2MHz以上の高周波数のパルス状の電圧信号を送り、当該高周波パルスドライブ回路を駆動させる可変型パルス信号発生回路と、
前記可変型パルス信号発生回路及び前記高周波パルスドライブ回路に駆動電力を供給するバイアス用電源回路と、
ゼロボルテージスイッチングが成立するように前記パワー素子を共振スイッチングさせるコンデンサ及びコイルからなる共振回路素子と、
前記パワー素子のスイッチング動作により出力された電力を伝送する電力伝送用送信アンテナとを備え、
前記共振回路素子を構成するコイルは、前記電力伝送用送信アンテナを兼ね、
前記共振回路素子を構成するコンデンサは、一端が前記パワー素子の一端に接続され、他端が前記電力伝送用送信アンテナの一端に接続された第1のコンデンサ、及び、一端が当該パワー素子の他端に接続され、他端が当該電力伝送用送信アンテナの他端に接続された第2のコンデンサを含む
ことを特徴とする共振型電力伝送装置。
An inductor,
A power element having one end connected to the inductor, a DC voltage applied to the one end through the inductor, and performing switching operation at a high frequency of 2 MHz or more ;
A high frequency pulse drive circuit which has a totem pole circuit configuration, sends a pulse-like voltage signal of high frequency of 2 MHz or more to the power element, and drives the power element;
A variable pulse signal generation circuit for sending a high frequency pulse-like voltage signal of 2 MHz or more to the high frequency pulse drive circuit to drive the high frequency pulse drive circuit;
A bias power supply circuit for supplying drive power to the variable pulse signal generation circuit and the high frequency pulse drive circuit;
A resonant circuit element comprising a capacitor and a coil for performing resonant switching of the power element such that zero voltage switching is established;
And a transmitting antenna for transmitting power, which transmits the power output by the switching operation of the power element,
The coil constituting the resonant circuit element also serves as the transmission antenna for power transmission,
The capacitor constituting the resonant circuit element is a first capacitor whose one end is connected to one end of the power element and the other end is connected to one end of the power transmission transmission antenna, and the other end is the other of the power element What is claimed is: 1. A resonant power transmission device comprising: a second capacitor connected to an end and the other end connected to the other end of the power transmission transmission antenna.
前記パワー素子は、RF用の電界効果トランジスタ以外の電界効果トランジスタである
ことを特徴とする請求項1記載の共振型電力伝送装置。
The resonant power transmission device according to claim 1, wherein the power element is a field effect transistor other than a field effect transistor for RF.
前記電力伝送用送信アンテナは、磁界共鳴により電力伝送を行う
ことを特徴とする請求項1記載の共振型電力伝送装置。
The resonant power transmission device according to claim 1, wherein the power transmission transmission antenna performs power transmission by magnetic field resonance.
前記電力伝送用送信アンテナは、電界共鳴により電力伝送を行う
ことを特徴とする請求項1記載の共振型電力伝送装置。
The resonant power transmission device according to claim 1, wherein the power transmission transmission antenna performs power transmission by electric field resonance.
前記電力伝送用送信アンテナは、電磁誘導により電力伝送を行う
ことを特徴とする請求項1記載の共振型電力伝送装置。
The said transmission antenna for electric power transmissions transmits electric power by an electromagnetic induction. The resonance type electric power transmission apparatus of Claim 1 characterized by the above-mentioned.
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