弾性表面波トランスジューサのパルス応答特性
スポンサーリンク
概要
- 論文の詳細を見る
In the present paper, a unified analysis is given for studying the characteristics of surface wave delay lines using interdigital transducers or phase-coded transducer configurations for dc pulse transmission based on equivalent circuits and Laplace transform calculus. A general idea of the transmission characteristics of a delay line using an interdigital transducer may be obtained by calcuulating the short circuit transfer admittance Y_<TS>. If the number of exciting and detecting electrode pairs is one, the transfer admittance is expressed by Eq. (1). Fig. 2 shows the characteristics of a line in the time domain expressed in terms of Laplace transforms by replacing (jω) with the by operator p in Eq. (1). If the number of exciting and detecting electrode pairs is large, the transfer admittance is obtained from the superposition of the transfer admittance denoted by Eq. (1). For an interdigital exciting transducer composed of M periodic sections and a detecting transducer composed of N periodic sections, the transfer admittance can be expressed by Eq. (6), where a_n, b_n=±1 denote the polarity of the electrode pair. Transducer configurations of a normal type and a phase-coded type will be discussed with a view of applying the surface wave transducer to a digital delay line. Fig. 8, 10 and 13 show the experimental impluse response of transducers using the normal sequence, Baker sequence and Golay sequence. With respect to the impulse response, a transducer that is phase-coded may be applicable to digital devices because the amplitude ratio of the main peak to the second sidelobed peak is large. Fig. 14 shows the experimental response of these transducers for random input pulses. Fig. 15 shows the eye-patterns which are obtained from a superposition of each impulse response corresponding to the random input pulses shown is Fig. 14 . From Fig. 15, it is seen that the transducer using the Golay sequence is more applicable to digital devices. In order to obtain the design method of the surface wave transducer for actual digital devices, the relations between several external conditions, such as the width of the input pulse and the load admittance, and the output response should be considered by computing the Fourier transform of the transmission characteristics as expressed in Eq. (20). Fig. 16 shows the maximum amplitude and the variation of peak position of the main response as a function of the width of the input pulse. From this figure, it is seen that the maximum output amplitude and the minimum variation of peak position are obtained for t=T(T=L/2V). Fig. 17 shows the experimental and calculated output response patterns as a function of the load admittance obtained from Eq. (20). Fig. 18 shows the instantaneous power (e_0(t)^2/R_<out>)as a function of the load admittance. From these figures, it is seen that(w_0C_tR_<out>)^<-1> is nearly equal to the maximum instantaneous power of the main response. Analysis gives a convenient means of calculating the relation between the input signals and the output response patterns, thus concisely demonstratig how transducer configurations using phase-coding, such as the Golay code, are useful for digital devices.
- 1974-10-01
著者
関連論文
- 弾性表面波トランスジューサのパルス応答特性
- 直方体残響室における2点間音圧相関係数
- 弾性表面波チャープフィルタを用いたスペクトル分析回路
- 最大平坦な周波数温度特性をもつ弾性表面波発振器
- 同一の電極パタ-ンをもった複数個の弾性表面波共振器を用いた温度補償発振器
- 重み付け損失を軽減した弾性表面波フィルタ
- 線形計画法による弾性表面波フィルタの設計
- 線形計画法による弾性表面波フィルタの合成
- マイクロ波帯の超音波技術--弾性表面波素子の研究の動向
- 多重共振系の周波数特性の制御に関するモデル的考察
- 簡易無響室の吸音壁構造に関する検討
- ホノンエコー : 新しい音波物性とその応用I(連続3回)
- 標準マイクロホンの音圧校正における誤差
- 電気音響の現状と将来
- 密着露光法を用いたサブミクロン交さ指電極パタ-ン形成
- 多対ITDを用いた1端子対弾性表面波共振器とその狭帯域フィルタへの応用
- 多対IDTの結合モ-ド解析
- 多対IDTを用いた2端子対弾性表面波共振器
- 密着露光法を用いたサブミクロン電極の製作と1.1GHz発振の検討
- 位相符号形トランスジュ-サを用いた弾性表面波フィルタの設計
- 多対IDTを用いた弾性表面波共振器の解析とその応用
- 多対電極構成をもつ弾性表面波フィルタの設計
- 各研究分野15年の歩みと将来への展望 : 電気音響研究 (<小特集>創立40周年記念特集)
- 弾性表面波デバイスの挿入損失について : 近似式の適用限界
- チタン合金を用いた広帯標準コンデンサ・マイクロホン
- 音響機器用振動板の製作に対する電鋳法の応用について
- 電気音響変換のパラメータが複素領域で変化する場合の動作減衰量
- 応用面から見た弾性表面波素子
- 弾性表面波とその応用
- 実口および球殻音源による各種形状物体の回折係数
- 金属製球殻を用いた音場測定用音源とその近接放射音場について
- 扁長回転楕円体の回折係数について
- 中心に同心円状の剛体板をもつ円形振動板の非対称振動