Dynamic impedance measurements during radio-frequency heating of cornea

被引:12
|
作者
Choi, B
Kim, JH
Welch, AJ
Pearce, JA
机构
[1] Univ Texas, Dept Biomed Engn, Austin, TX 78712 USA
[2] Univ Texas, Dept Elect & Comp Engn, Austin, TX 78712 USA
关键词
cornea; impedance measurements; radio-frequency; thermal damage;
D O I
10.1109/TBME.2002.805471
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Hyperopia affects approximately 25% of the population. The aim of different heating modalities for the treatment of hyperopia is to steepen the central curvature of the cornea. Conductive keratoplasty (CK) involves the placement of radio-frequency (RF) lesions around a 7-mm-diameter ring concentric with the pupil of the eye. Dynamics of lesion formation during CK depend on corneal electrical impedance, which is expected to change during each 600-ms-long macropulse. The purpose of this study was to measure impedance dynamics during CK. RF lesions were made in in vitro porcine eyes at different power settings. Voltage and current measurements were acquired using-a high-speed computer-based data acquisition system. Root-mean-square voltages (V-RMS) and currents (I-RMS) were calculated for each micropulse, and impedance was determined by calculating the quotient V-RMS/I-RMS. Initial corneal impedance in vitro was approximately 2000 Omega. During the macropulse, impedance decreased initially due to increased mobility of conductive ions. At higher power settings (e.g., > 70 %, or maximum peak-to-peak voltage of 233 V), impedance increased after the initial decrease, indicative of local water vaporization and/or tissue coagulation. Preliminary impedance data obtained for in vivo porcine eyes were similar in magnitude to the in vitro values.
引用
收藏
页码:1610 / 1616
页数:7
相关论文
共 50 条
  • [21] Radio-frequency impedance measurements using a tunnel-diode oscillator technique
    Srikanth, H
    Wiggins, J
    Rees, H
    REVIEW OF SCIENTIFIC INSTRUMENTS, 1999, 70 (07): : 3097 - 3101
  • [22] Circuit Loading in Radio-Frequency Current Measurements: The Insertion Impedance of the Transformer Probes
    Carobbi, Carlo F. M.
    Millanta, Luigi M.
    IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2010, 59 (01) : 200 - 204
  • [23] Radio-frequency impedance measurements using a tunnel-diode oscillator technique
    Srikanth, H.
    Wiggins, J.
    Rees, H.
    Review of Scientific Instruments, 70 (07):
  • [24] Sensitive Radio-Frequency Measurements of a Quantum Dot by Tuning to Perfect Impedance Matching
    Ares, N.
    Schupp, F. J.
    Mavalankar, A.
    Rogers, G.
    Griffiths, J.
    Jones, G. A. C.
    Farrer, I.
    Ritchie, D. A.
    Smith, C. G.
    Cottet, A.
    Briggs, G. A. D.
    Laird, E. A.
    PHYSICAL REVIEW APPLIED, 2016, 5 (03):
  • [25] Radio-Frequency Heating Kinetics of Softwood Logs
    Lazarescu, Ciprian
    Avramidis, Stavros
    DRYING TECHNOLOGY, 2011, 29 (06) : 673 - 681
  • [26] APPLICATIONS OF RADIO-FREQUENCY HEATING TECHNOLOGY TO TEXTILES
    HENDERSON, K
    MCAULAY, T
    YOUNG, R
    SMITH, G
    JOURNAL OF THE SOCIETY OF DYERS AND COLOURISTS, 1982, 98 (09): : 303 - 305
  • [27] RADIO-FREQUENCY HEATING OF JUMBO WOOL BALES
    AINSWORTH, WD
    WINSTON, CR
    JOURNAL OF THE TEXTILE INSTITUTE, 1985, 76 (03) : 171 - 184
  • [28] RADIO-FREQUENCY HEATING OF A MAGNETIZED RAREFIED PLASMA
    GERTSENSHTEIN, ME
    TELECOMMUNICATIONS AND RADIO ENGINEERING, 1978, 32-3 (11) : 121 - 123
  • [29] Radio-frequency heating for catalytic propane dehydrogenation
    Rout, Ankush
    Lambert, Somtochukwu
    Nair, Aswin
    Arole, Kailash
    Sengupta, Debalina
    Barteau, Mark A.
    Wilhite, Benjamin A.
    Green, Micah J.
    REACTION CHEMISTRY & ENGINEERING, 2024, 9 (12): : 3211 - 3221
  • [30] RADIO-FREQUENCY HEATING UNDER ECG ELECTRODES
    DEROSA, JF
    GADSBY, PD
    MEDICAL INSTRUMENTATION, 1979, 13 (05): : 273 - 276