A Transformation of Biological Tissue from Non-Planar to Effective Planar Based on Complementary Split-Ring Resonators

被引:0
|
作者
Wang, Yao-Hui [1 ]
Yang, Chin-Lung [1 ]
机构
[1] Natl Cheng Kung Univ, Dept Elect Engn, Tainan, Taiwan
来源
2020 IEEE ASIA-PACIFIC MICROWAVE CONFERENCE (APMC) | 2020年
关键词
air gap transformation; biological tissue; complementary split-ring resonator (CSRR); non-planar;
D O I
10.1109/APMC47863.2020.9331567
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
A new concept of transforming a non-planar MUT to a planar MUT with an effective air gap is proposed in this paper. The air gap existing between the MUT and sensor usually make large error in measurement, but by sensing with a multiring sensor, the effect of the air gap can be eliminated. However, in the case of a non-planar MUT, the curved surface of MUTs make the multiring of the sensor sensed different thickness of air gap. Thus, the approach of above cannot be use to eliminate the frequency shift cause by the air gap, and this will cause a undesired error in the experiment. Therefore, a triple-ring complementary split-ring resonator (CSRR) is used to estimate the effective air gap that make the smallest difference of the three resonance frequencies. Finally, with the transforming equation, a non-planar porcine fat with 10 mm thickness, 20 mm radius of curvature and 0 mm air gap are transformed into an effective planar MUT with 0.646 mm planar air gap. The result compare to simulation only with an error of 0.067 mm.
引用
收藏
页码:483 / 485
页数:3
相关论文
共 50 条
  • [1] Equivalent-circuit models for split-ring resonators and complementary split-ring resonators coupled to planar transmission lines
    Baena, JD
    Bonache, J
    Martín, F
    Sillero, RM
    Falcone, F
    Lopetegi, T
    Laso, MAG
    García-García, J
    Gil, I
    Portillo, MF
    Sorolla, M
    IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2005, 53 (04) : 1451 - 1461
  • [2] Planar terahertz waveguides based on complementary split ring resonators
    Kumar, Gagan
    Cui, Albert
    Pandey, Shashank
    Nahata, Ajay
    OPTICS EXPRESS, 2011, 19 (02): : 1072 - 1080
  • [3] Beam Deflection using Non-Planar Broadside Coupled Split Ring Resonators
    Ghate, Pratik
    Bredow, Jonathan
    2020 IEEE ASIA-PACIFIC MICROWAVE CONFERENCE (APMC), 2020, : 245 - 247
  • [4] Design of a Planar Sensor Based on Split-Ring Resonators for Non-Invasive Permittivity Measurement
    Alibakhshikenari, Mohammad
    Virdee, Bal S.
    Elwi, Taha A.
    Lubangakene, Innocent D.
    Jayanthi, Renu K. R.
    Al-Behadili, Amer Abbood
    Hassain, Zaid A. Abdul
    Ali, Syed Mansoor
    Pau, Giovanni
    Livreri, Patrizia
    Aissa, Sonia
    SENSORS, 2023, 23 (11)
  • [5] Improved Approach Using Multiple Planar Complementary Split-Ring Resonators for Accurate Measurement of Permittivity
    Hsu, Chia-Ming
    Chen, Kuan-Zhou
    Lee, Chieh-Sen
    Yang, Chin-Lung
    2016 IEEE MTT-S INTERNATIONAL WIRELESS SYMPOSIUM (IWS), 2016,
  • [6] Complementary Split-Ring Resonators for Non-Invasive Characterization of Biological Tissues
    Hardinata, Satria
    Deshours, Frederique
    Alquie, Georges
    Kokabi, Hamid
    Koskas, Fabien
    2018 18TH INTERNATIONAL SYMPOSIUM ON ANTENNA TECHNOLOGY AND APPLIED ELECTROMAGNETICS (ANTEM 2018), 2018,
  • [7] Influence of Split-Ring Resonators on the Terahertz Transmission of a Planar Waveguide
    Nasarov, M. M.
    Zarubin, A. N.
    Sarkisov, S. Yu.
    Tolbanov, O. P.
    Tyazhev, A. V.
    RUSSIAN PHYSICS JOURNAL, 2015, 58 (04) : 562 - 566
  • [8] New Architectures for Planar Filters Using Split-Ring Resonators
    Leon, A.
    Casanueva, A.
    Mediavilla, A.
    Herrero, J.
    2010 THIRD INTERNATIONAL CONFERENCE ON COMMUNICATIONS AND ELECTRONICS (ICCE), 2010, : 394 - 399
  • [9] Influence of Split-Ring Resonators on the Terahertz Transmission of a Planar Waveguide
    M. M. Nasarov
    A. N. Zarubin
    S. Yu. Sarkisov
    O. P. Tolbanov
    A. V. Tyazhev
    Russian Physics Journal, 2015, 58 : 562 - 566
  • [10] Polarization conversion in terahertz planar metamaterial composed of split-ring resonators
    Yang, Tian
    Liu, Xiaoming
    Wang, Chen
    Liu, Zetan
    Sun, Jingbo
    Zhou, Ji
    OPTICS COMMUNICATIONS, 2020, 472