JP2018031704A - Modulation wave resolver device - Google Patents

Modulation wave resolver device Download PDF

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JP2018031704A
JP2018031704A JP2016164961A JP2016164961A JP2018031704A JP 2018031704 A JP2018031704 A JP 2018031704A JP 2016164961 A JP2016164961 A JP 2016164961A JP 2016164961 A JP2016164961 A JP 2016164961A JP 2018031704 A JP2018031704 A JP 2018031704A
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phase
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JP6589106B2 (en
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吉田征夫
Masao Yoshida
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YSD KK
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Abstract

PROBLEM TO BE SOLVED: To realize a modulation wave resolver mechanical constitution which is simple and has excellent properties, and includes a simple and inexpensive electronic control circuit for driving the modulation wave, resulting in popularization of the modulation wave resolver.SOLUTION: A modulation wave generation is provided by a simple configuration and a PWM method using a small number of components. The method provides modulation wave generation using two PWM serial lines, SIN, COS, a power switch 2 and a bandpass filter 3, significantly reduces the number of components and attachment space, and achieves downsizing and lower cost of the circuit. This downsizing allows an electronic control device to be stored in a housing of a resolver body.SELECTED DRAWING: Figure 1

Description

本発明は、直交するSIN、COSの2相のPWM信号からそれぞれの変調波を生成する機能を持ち、回転角に相当する位相角を検出する変調波レゾルバ装置に関するものである。 The present invention relates to a modulated wave resolver device that has a function of generating respective modulated waves from two-phase PWM signals of SIN and COS that are orthogonal to each other and detects a phase angle corresponding to a rotation angle.

日本政府は、平成28年4月に人工知能(AI)やロボット技術などを活用して生産性を大幅に高める「第4次産業革命」よって2020年に30兆円規模の市場を創出する目標を含め、10分野の重点プロジェクトを打ち出した。
このような要求から、国家戦略としてAI搭載ロボットの開発計画が進行している。
AI搭載ロボットは多軸、多関節となり、サーボモータと組み合わされて多数の回転センサーが搭載される。また、これらはIoTに接続されるセンサーとしての市場も有望である。
変調波レゾルバは巻線型に較べて、励磁の高周波化で、検出感度が高くなりコイル巻数が大幅に減少し、コイルのプリントパターン化が可能となった。この結果、構造がシンプルで軽量、小型となっている。回転センサーとして優れた特性を持っている。
The goal of the Japanese government is to create a 30 trillion yen market in 2020 by the “Fourth Industrial Revolution” in April 2016, which will significantly increase productivity by utilizing artificial intelligence (AI) and robot technology. 10 priority projects have been launched.
Because of these demands, AI-based robot development plans are in progress as a national strategy.
AI-equipped robots are multi-axis and multi-joint, and are equipped with a number of rotation sensors in combination with servo motors. They are also promising as sensors connected to the IoT.
Compared with the winding type, the modulation wave resolver has a higher excitation sensitivity, and the detection sensitivity is increased, the number of coil turns is greatly reduced, and the coil can be printed. As a result, the structure is simple, lightweight and compact. It has excellent characteristics as a rotation sensor.

特許第3047231号Patent No. 3047231

特許第3047231号に示されるように、変調波レゾルバのメカ構成はシンプルで優れた特性を持っているにもかかわらず、現状では、この変調波を駆動する電子制御回路が複雑、高価であり、変調波レゾルバ自体の普及に大きな阻害要因となっている。
現状の高周波(約500kHz)の変調波生成は、FPGAと2個のD/A変換器そしてドライバーなどによって実現されているが、変調波が高周波であるため、2個のD/A変換器が高価で、かつ回路の実装面積が大きいという問題がある。
As shown in Japanese Patent No. 3047231, although the mechanical configuration of the modulated wave resolver is simple and has excellent characteristics, at present, the electronic control circuit that drives this modulated wave is complicated and expensive, This is a major obstacle to the spread of the modulated wave resolver itself.
The current high frequency (about 500kHz) modulation wave generation is realized by FPGA, two D / A converters and drivers, but since the modulation wave is high frequency, two D / A converters are required. There is a problem that it is expensive and the circuit mounting area is large.

本発明は、変調波生成を、構造が簡単で部品点数の少ないPWM方式で実現するものである。
PWM方式は、変調波生成をSIN、COSの2本のPWMシリアルライン、電力スイッチとバンドパス・フィルタで実現するものである。部品点数、部品コスト、装着スペースを大幅に減らし、回路を小型化したものである。
The present invention realizes modulation wave generation by a PWM method with a simple structure and a small number of parts.
The PWM method realizes modulation wave generation with two PWM serial lines of SIN and COS, a power switch and a bandpass filter. The circuit is downsized by greatly reducing the number of parts, parts cost, and mounting space.

本発明の変調波レゾルバ装置にPWM方式を適用することにより、変調波レゾルバ装置の小型化、軽量化、耐環境性の向上、長寿命化、低コスト化が達成可能となる。この小型化などの効果により、レゾルバ本体のハウジング内に電子制御装置が収納可能となる。以上の特性により、レゾルバの使い勝手が大きく向上し、変調波レゾルバの市場普及に、本発明の効果は計り知れないものがある。   By applying the PWM method to the modulated wave resolver device of the present invention, the modulated wave resolver device can be reduced in size, weight, improved environmental resistance, extended life, and reduced cost. The electronic control device can be stored in the housing of the resolver main body due to the effect of such miniaturization. Due to the above characteristics, the usability of the resolver is greatly improved, and the effects of the present invention are immeasurable in the market spread of modulated wave resolvers.

変調波レゾルバ装置を示した図である。It is the figure which showed the modulation wave resolver apparatus. PWM信号から変調波生成を示した図である。It is the figure which showed the modulation wave generation from a PWM signal. バンドパス・フィルタBPF特性の一例を示した図である。It is a figure showing an example of a band pass filter BPF characteristic. 変調波波形の一例を示した図である。It is the figure which showed an example of the modulated wave waveform. 回転位相θを検出する回路例を示した図である。It is the figure which showed the circuit example which detects rotation phase (theta).

本発明の変調波レゾルバ装置は、小型化できる特性を活かして、単体で販売する以外に、サーボモータに組み込み一体化して、成長市場のAIロボットなどに採用する用途も有望である。応用面で様々な用途に展開が期待できる。
以下、本発明の実施の形態を図1〜図5に基づいて説明する。
The modulated wave resolver device of the present invention is promising for use in AI robots and the like in growing markets, in addition to selling as a single unit, taking advantage of the characteristics that can be miniaturized, by incorporating it into a servo motor. Development can be expected for various applications.
Hereinafter, embodiments of the present invention will be described with reference to FIGS.

図1には、変調波レゾルバ装置の1実施例を示す。
通常、コントローラ1にはDSPあるいはFPGAが用いられる。DSPの場合には、無歪の高速・高精度PWMを周辺ポートに組込まれたタイプのものを用いる。コントローラ1からは直交するSIN、COSの2相のPWM信号を出力する。
FIG. 1 shows an embodiment of a modulated wave resolver device.
Usually, a DSP or FPGA is used for the controller 1. In the case of DSP, a type in which high-speed, high-precision PWM without distortion is incorporated in the peripheral port is used. The controller 1 outputs two-phase PWM signals of orthogonal SIN and COS.

電力スイッチ2および電力スイッチ5でPWM信号を電流増幅し、バンドパスフィルタBPF3およびBPF6を通して所要の変調波が生成される。この信号でレゾルバメカ機構13の入力コイル4および7をバッファなしで直接ドライブする。バッファが不要のため、その分、スペースコストが低減している。
レゾルバメカ機構13からは、出力コイル8を通して回転角に相当する位相角θだけ変位した変調波が出力される。差動増幅器9を通して検波回路10および位相検出11を通して回転位相θがコントローラ1に入力され、この回転位相θすなわち回転角情報がコントローラ1の通信ポートからユーザ・インタフェースに出力される。
The power switch 2 and the power switch 5 amplify the current of the PWM signal, and a required modulated wave is generated through the bandpass filters BPF3 and BPF6. With this signal, the input coils 4 and 7 of the resolver mechanism 13 are directly driven without a buffer. Since no buffer is required, the space cost is reduced accordingly.
From the resolver mechanical mechanism 13, a modulated wave displaced by a phase angle θ corresponding to the rotation angle is output through the output coil 8. The rotation phase θ is input to the controller 1 through the detection circuit 10 and the phase detection 11 through the differential amplifier 9, and this rotation phase θ, that is, rotation angle information is output from the communication port of the controller 1 to the user interface.

本発明の骨幹となるPWM信号から、変調波を生成する原理を示す。
PWMの1個の矩形波から、1波のSIN波(正弦波)を得る手段は、以下のディジタル信号処理の原理式を拡張したものである。
周期Tの矩形波f(t)をフーリエ級数展開した式を(1)式に示す。

基本周波数f0の正弦波とその奇数倍の高調波成分の和として表せる。
これから、基本周波数の3次以降の奇数倍で現れる高調波成分を高次のフィルタにかけ、減衰させれば基本波の正弦波のみを生成することができる。
図2にPWM矩形波からSIN波(変調波)を得る様子を示す。PWM矩形波に対して、SIN波はフィルタによる位相遅れが生じる。
The principle of generating a modulated wave from a PWM signal that is the backbone of the present invention will be described.
The means for obtaining one SIN wave (sine wave) from one PWM square wave is an extension of the following digital signal processing principle.
An expression obtained by expanding a square wave f (t) having a period T into a Fourier series is shown in Expression (1).

It can be expressed as the sum of the sine wave of the fundamental frequency f0 and its odd harmonic component.
From this, it is possible to generate only the sine wave of the fundamental wave by applying the harmonic component appearing at an odd multiple of the fundamental frequency after the third order to the high-order filter and attenuating it.
Figure 2 shows how a SIN wave (modulated wave) is obtained from a PWM rectangular wave. A phase delay due to a filter occurs in the SIN wave with respect to the PWM rectangular wave.

変調波PWMでは、パルスの1周期内で、この矩形波のパルス幅tpを変えて、出力正弦波の振幅を変えるようにしたものである。
出力振幅が最大となるPWMのパルス幅は、デューティ比が50%の時である。
PWMのパルス幅がデューティ比50%を超えても、出力振幅は逆に減少に転じる。
In the modulated wave PWM, the pulse width tp of this rectangular wave is changed within one cycle of the pulse to change the amplitude of the output sine wave.
The PWM pulse width with the maximum output amplitude is when the duty ratio is 50%.
Even if the PWM pulse width exceeds 50% duty ratio, the output amplitude turns to decrease.

(1)式の3次以降の奇数項を減衰させるための高次フィルタの条件は、請求項3に示したように設定し、その実施例を図3に表す。
変調波を出力するBPF3,6のフィルタ特性は、高域ローパス・フィルタの遮断周波数が変調波基本クロック周波数fh(約500kHz)より高い周波数の起点から開始し3fhでの減衰が-60dB程度になるように設定する。この特性を厳守することにより、変調波基本クロックの周期内に、1波の変調波が生成されるようになる。さらに、PWMパルス幅に対応じた変調波の振幅を生成することができる。
The conditions of the high-order filter for attenuating odd terms after the third order in the equation (1) are set as shown in claim 3, and an example thereof is shown in FIG.
The filter characteristics of BPF 3 and 6 that output the modulated wave are that the cutoff frequency of the high-pass low-pass filter starts from the starting point of the frequency higher than the modulated wave basic clock frequency fh (about 500 kHz), and the attenuation at 3 fh is about -60 dB. Set as follows. By strictly observing this characteristic, one modulated wave is generated within the period of the modulated wave basic clock. Furthermore, the amplitude of the modulated wave corresponding to the PWM pulse width can be generated.

また、低域ハイパス・フィルタでは、遮断周波数がfhより低い周波数の起点から開始し信号波周波数fsでの減衰が同じく-60dB程度に達するバンドパス・フィルタ特性を持つように設定する。
この特性により、PWM信号に内蔵する信号波(約8kHz)周波数成分による変調波の低周波のうねりを減衰させることができる。
図4には、前記のPWM信号とBPFによって生成された変調波の一例を示す。
In addition, the low-pass high-pass filter is set so as to have a band-pass filter characteristic that starts from a starting point of a frequency whose cutoff frequency is lower than fh and whose attenuation at the signal wave frequency fs reaches about -60 dB.
With this characteristic, it is possible to attenuate the low-frequency swell of the modulated wave due to the frequency component of the signal wave (about 8 kHz) built in the PWM signal.
FIG. 4 shows an example of a modulated wave generated by the PWM signal and BPF.

コントローラ1から、直交するSINおよびCOSの2相のPWM信号を変調波基本クロックに同期して出力する。
PWM信号のパルス幅は、BPF3、6の変調波出力振幅波形が信号波周期に同期してSINおよびCOS変調波を出力するような振幅変調配列で出力する。
また、変調波に特許第3047231号の請求項1に記載する極性反転をPWM信号配列に組み込むことで、復調時に360°のSIN波およびCOS波を復元することが可能となる。
The controller 1 outputs two-phase PWM signals of SIN and COS that are orthogonal to each other in synchronization with the modulated wave basic clock.
The pulse width of the PWM signal is output in an amplitude modulation arrangement such that the modulation wave output amplitude waveform of the BPFs 3 and 6 outputs SIN and COS modulation waves in synchronization with the signal wave period.
In addition, by incorporating the polarity inversion described in claim 1 of Japanese Patent No. 3047231 into the PWM signal array in the modulated wave, it is possible to restore the 360 ° SIN wave and the COS wave at the time of demodulation.

レゾルバメカ機構13から出力される回転角θだけ位相回転された変調波を、差動増幅器9に通して振幅増幅し、変調波基本クロックで位相同期検波10を行い、信号波のエンベロープが得られる。
次に、ローパス・フィルタを通して信号波を得て、この信号波をゼロクロスし、位相検波11を行い、コントローラ1に入力することによってレゾルバの回転角を求めることが出来る。
図5に、回転位相θを検出する上記一連のシーケンス回路例を示す。
The modulated wave phase-rotated by the rotation angle θ output from the resolver mechanical mechanism 13 is amplified in amplitude through the differential amplifier 9, and the phase-synchronized detection 10 is performed with the modulated wave basic clock to obtain the envelope of the signal wave.
Next, a signal wave is obtained through a low-pass filter, this signal wave is zero-crossed, phase detection 11 is performed, and the rotation angle of the resolver can be obtained by inputting it to the controller 1.
FIG. 5 shows an example of a series of sequence circuits for detecting the rotational phase θ.

コントローラ1に入力される回転位相θに重乗するレゾルバメカ機構13自体の回転振動、あるいは電気的な変調波振動を減衰するためのディジタル・フィルタ処理を、コントローラ1に内蔵する。この処理によって入力信号は平滑化され、より安定した高精度の回転角を検出することが出来るようになる。このような目的で使用するディジタル・フィルタの代表として櫛形フィルタがある。
レゾルバは、低速になる程、厳しく位置精度を要求されることが多い。低速になると、コントローラの余裕処理時間が増し、ディジタル・フィルタなどの演算処理回数を増やすことが出来、より高精度化を実現できるようになる。
The controller 1 incorporates a digital filter process for attenuating the rotational vibration of the resolver mechanical mechanism 13 itself that is superimposed on the rotational phase θ input to the controller 1 or electrical modulation wave vibration. By this processing, the input signal is smoothed, and a more stable and highly accurate rotation angle can be detected. A comb filter is a typical digital filter used for such a purpose.
In many cases, the resolver is required to have higher positional accuracy as the speed becomes lower. When the speed is low, the controller's margin processing time increases, and the number of times of arithmetic processing such as a digital filter can be increased, so that higher accuracy can be realized.

平滑化された回転位相θはレゾルバの回転角情報として、コントローラ1の通信ポートからユーザ・インタフェース12に出力される。通信ポートとしては、汎用のSPI、I2C、UARTなどのシリアル通信ポートが一般的である。   The smoothed rotation phase θ is output from the communication port of the controller 1 to the user interface 12 as resolver rotation angle information. As communication ports, serial communication ports such as general-purpose SPI, I2C, and UART are generally used.

本発明のPWM方式は、変調波レゾルバ装置の小型、軽量、耐環境性、長寿命化、低コスト化が実現可能となることから、変調波レゾルバ装置は、AI搭載ロボット、情報倉庫、工作機械などの基幹部品として、また重要なコンポーネントとして採用され得る。また、IoTの回転センサーとして、ICT革命の汎用回転センサーとして有望であり、将来的に計り知れない大きな成長市場が期待できる。   Since the PWM method of the present invention can realize the small size, light weight, environmental resistance, long life, and low cost of the modulated wave resolver device, the modulated wave resolver device is an AI-equipped robot, information warehouse, machine tool. It can be employed as a key component such as and as an important component. In addition, it is promising as a general-purpose rotation sensor for the ICT revolution as an IoT rotation sensor, and an enormous growth market can be expected in the future.

1 コントローラ
2 電力スイッチ
3 BPF:SINバンドパス・フィルタ
4 SINドライブコイル
5 電力スイッチ
6 BPF:COSバンドパス・フィルタ
7 COSドライブコイル
8 変調波出力コイル
9 差動増幅器
10 検波回路
11 位相検出
12 ユーザ・インタフェース
13 レゾルバメカ機構




DESCRIPTION OF SYMBOLS 1 Controller 2 Power switch 3 BPF: SIN band pass filter 4 SIN drive coil 5 Power switch 6 BPF: COS band pass filter 7 COS drive coil 8 Modulated wave output coil 9 Differential amplifier 10 Detection circuit 11 Phase detection 12 User Interface 13 Resolver mechanism




Claims (4)

コントローラ1から直交するSIN、COSの2相のPWM信号を出力し、電力スイッチ2および電力スイッチ5でPWM信号を電流増幅し、バンドパス・フィルタBPF3およびBPF6を通して所要の変調波が得られ、この変調波信号でレゾルバメカ機構13の入力コイル4および7を直接ドライブし、レゾルバメカ機構13からは、出力コイル8を通して回転角に相当する回転位相θだけ変位した変調波が出力され、差動増幅器9を通して検波回路10および位相検出
11を通して回転位相θをコントローラ1に入力し、この回転位相θすなわちレゾルバの回転角情報をコントローラ1の通信ポートからユーザ・インタフェース12に出力する構成を有することを特徴とする変調波レゾルバ装置。
A quadrature SIN and COS PWM signal is output from the controller 1, the PWM signal is current amplified by the power switch 2 and the power switch 5, and a required modulation wave is obtained through the bandpass filters BPF 3 and BPF 6. The input coils 4 and 7 of the resolver mechanical mechanism 13 are directly driven by the modulated wave signal, and a modulated wave displaced by a rotational phase θ corresponding to the rotational angle is output from the resolver mechanical mechanism 13 through the output coil 8, and is transmitted through the differential amplifier 9. The rotation phase θ is input to the controller 1 through the detection circuit 10 and the phase detection 11, and the rotation phase θ, that is, the rotation angle information of the resolver is output from the communication port of the controller 1 to the user interface 12. Modulated wave resolver device.
コントローラ1から直交するSINおよびCOSの2相のPWM信号を変調波基本クロックに同期して出力し、BPF3、6の変調波出力振幅波形が信号波周期に同期してSINおよびCOS変調波を出力するような振幅変調配列でPWM信号を出力し、また、変調波に極性反転を組み込むことを特徴とする請求項1に記載する変調波レゾルバ装置。   Outputs two-phase PWM signals of SIN and COS orthogonal from the controller 1 in synchronization with the modulation wave basic clock, and outputs SIN and COS modulation waves in synchronization with the modulation wave output amplitude waveform of the BPF 3 and 6 in the signal wave period. 2. The modulated wave resolver according to claim 1, wherein a PWM signal is output in such an amplitude modulation array, and polarity inversion is incorporated in the modulated wave. 変調波を出力するBPF3,6のフィルタ特性は、高域ローパスフィルタの遮断周波数がPWM信号の変調波基本クロック周波数fhより高い周波数の起点から開始し3fhでの減衰があり、低域ハイパスフィルタの遮断周波数がfhより低い周波数の起点から開始し信号波周波数fsでの減衰があるバンドパス・フィルタ特性を持つことを特徴とする請求項1に記載する変調波レゾルバ装置。   The filter characteristics of the BPF 3 and 6 that output the modulated wave are that the cutoff frequency of the high-pass low-pass filter starts from a frequency starting from a frequency higher than the modulated wave basic clock frequency fh of the PWM signal, and attenuates at 3 fh. 2. The modulated wave resolver device according to claim 1, wherein the modulated wave resolver device has a band-pass filter characteristic having an attenuation at the signal wave frequency fs starting from a starting point of a frequency whose cutoff frequency is lower than fh. レゾルバメカ機構13から出力される回転角θだけ位相回転された変調波を、差動増幅器9を通して入力し、変調波基本クロックで位相同期検波を行い、次にローパス・フィルタを通して信号波を得て、この信号波をゼロクロスし、位相検出11を行い、回転位相θをコントローラ1に入力することによってレゾルバの回転角を求めることを特徴とする請求項1に記載する変調波レゾルバ装置。
The modulated wave phase-rotated by the rotation angle θ output from the resolver mechanical mechanism 13 is input through the differential amplifier 9, phase-locked detection is performed with the modulated wave basic clock, and then a signal wave is obtained through the low-pass filter, The modulated wave resolver according to claim 1, wherein the signal wave is zero-crossed, the phase detection 11 is performed, and the rotational angle θ is input to the controller 1 to obtain the rotational angle of the resolver.
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JP2021131277A (en) * 2020-02-19 2021-09-09 有限会社ワイエスデイ Driving device, modulation wave resolver device, and driving method for modulation wave resolver device

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