Characteristic impedance and propagation of the first higher order microstrip mode in frequency and time domain

被引:7
作者
Chen, SD [1 ]
Tzuang, CKC [1 ]
机构
[1] Natl Chiao Tung Univ, Inst Elect Commun Engn, Hsinchu, Taiwan
关键词
group velocity leaky waves; impedance measurement; microstrip; time-domain reflectrometry;
D O I
10.1109/22.999152
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper experimentally and theoretically confirms the validity of the definition proposed by Das for computing the complex characteristic impedance of the first higher order (EH1) microstrip mode. The normalized complex propagation constant and complex characteristic impedance of the microstrip obtained by the rigorous full-wave integral-equation method is also presented. To better understand the circuit behavior of the leaky mode at the respective frequencies, the results are analyzed in both frequency and transformed steepest descent. plane. A differential time-domain reflectometry (TDR) experiment shows that the experimental results are in excellent agreement with the time-domain plots obtained theoretically by the inverse discrete Fourier transform of the transmission line modeled by the dispersive characteristic. The propagation characteristics of the echoed signals in the time domain, which are reflected from the open end of the leaky line, are analyzed in detail using the corresponding group velocity of the EH1 mode. The wide spread of the echoed signals in the time domain is the direct result of the highly dispersive group velocity. The slowest group velocity is in the leaky region. The time-to-frequency conversion of the measured TDR data reveals that the reflection, leaky, and propagation zones coexist simultaneously for the EH1 mode propagation. ne conversion also accurately assesses the attenuation constant of the EH1 mode if the attenuation is not too high. The Fourier transform of the TDR responses also simultaneously yields the input reflection coefficient (S-11) and the complex characteristic impedance. The complex characteristic impedance extracted from the TDR responses also agrees closely with the theoretical data.
引用
收藏
页码:1370 / 1379
页数:10
相关论文
共 28 条
[1]  
Antennas I, 1994, DYADIC GREENS FUNCTI
[2]   IDENTIFICATION OF PROPAGATION REGIMES ON INTEGRATED MICROSTRIP TRANSMISSION-LINES [J].
BAGBY, JS ;
LEE, CH ;
NYQUIST, DP ;
YUAN, Y .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 1993, 41 (11) :1887-1894
[3]   DIFFUSION OF WATER IN SOME MODIFIED PHENOLIC ADHESIVES [J].
BREWIS, DM ;
COMYN, J ;
TREDWELL, ST .
INTERNATIONAL JOURNAL OF ADHESION AND ADHESIVES, 1987, 7 (01) :30-32
[4]  
CAULTON M, 1966, RCA REV, V27, P377
[5]  
CHENG DK, 1989, FIELD WAVE ELECTROMA, pCH9
[6]  
CHEW WC, 1995, WAVES FIELDS INHOMOG, pCH2
[7]   Oscillator-type active-integrated antenna: The leaky-mode approach [J].
Chou, GJ ;
Tzuang, CKC .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 1996, 44 (12) :2265-2272
[8]   Power leakage, characteristic impedance, and leakage-transition behavior of finite-length stub sections of leaky printed transmission lines [J].
Das, NK .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 1996, 44 (04) :526-536
[9]   Methods of suppression or avoidance of parallel-plate power leakage from conductor-backed transmission lines [J].
Das, NK .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 1996, 44 (02) :169-181
[10]   Excitation of leaky modes on multilayer stripline structures [J].
Di Nallo, C ;
Mesa, F ;
Jackson, DR .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 1998, 46 (08) :1062-1071