Nonlinear reverberation spectroscopy with phase-sensitive superheterodyne reception

被引:2
|
作者
Johnson, Ward L. [1 ]
机构
[1] NIST, Appl Chem & Mat Div, 325 Broadway, Boulder, CO 80305 USA
关键词
Acoustic nonlinearity; Acoustic resonance; Amplitude dependence; Electromagnetic-acoustic transduction; EMAT; Electromagnetic-acoustic resonance; EMAR; Nonlinear reverberation spectroscopy; NRS; Ultrasonics; ULTRASONIC RESONANCE; DAMAGE; IDENTIFICATION; SYSTEMS;
D O I
10.1016/j.ymssp.2021.108631
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A technique is presented for determining elastic nonlinearity of materials from resonant frequency shifts as a function of signal amplitude during free vibrational decay after tone burst excitation. The technique differs from previous nonlinear reverberation spectroscopy (NRS) techniques in that it employs phase-sensitive superheterodyne reception. Time-dependent amplitudes of in-phase and out-of-phase components of signals, relative to a reference sinusoid at the excitation frequency, are provided through analog hardware processing in the absence of digitization of the signal from the vibrational sensor. The time-dependent phase and amplitude of the signal are determined through software analysis of these in-phase and out-of-phase components, and the instantaneous frequency during free decay is then determined from the time derivative of the phase. With this approach, superheterodyne reception and low-pass filtering of the phase-detector outputs lead to a great reduction in noise and computation effort, relative to direct digitization and software processing of the sensor signal, while retaining information on frequency shifts on a relevant time scale during ringdown. As with other NRS techniques, rapid acquisition of data on amplitude dependence of the resonant frequency during ringdown leads to minimization of systematic errors from temperature drift. The technique is demonstrated with noncontacting electromagnetic-acoustic transduction on custom alloyed Al (0.2 at.% Zn) and commercial Al 7075 cylinders with axial-shear resonant frequencies between 658 kHz and 659 kHz. The precision of measurements of relative frequency shifts is found to be on the order of 0.1 parts per million (ppm), exceeding by two orders of magnitude the best reported precision of nonlinear resonant ultrasound spectroscopy (NRUS).
引用
收藏
页数:13
相关论文
共 50 条
  • [41] Phase-sensitive amplification using gain saturation in a nonlinear Sagnac interferometer
    Leng, Yongzhang
    Richardson, Christopher J. K.
    Goldhar, Julius
    OPTICS EXPRESS, 2008, 16 (26): : 21446 - 21455
  • [42] Phase-Sensitive Amplified Optical Link Operating in the Nonlinear Transmission Regime
    Olsson, Samuel L. I.
    Corcoran, Bill
    Lundstrom, Carl
    Sjodin, Martin
    Karlsson, Magnus
    Andrekson, Peter A.
    2012 38TH EUROPEAN CONFERENCE AND EXHIBITION ON OPTICAL COMMUNICATIONS (ECOC), 2012,
  • [43] Multilevel Amplitude and Phase Regeneration in a Nonlinear Amplifying Loop Mirror with a Phase-Sensitive Amplifier
    Roethlingshoefer, Tobias
    Onishchukov, Georgy
    Schmauss, Bernhard
    Leuchs, Gerd
    2012 38TH EUROPEAN CONFERENCE AND EXHIBITION ON OPTICAL COMMUNICATIONS (ECOC), 2012,
  • [44] THE BEHAVIOUR OF PHASE-SENSITIVE DETECTORS
    PALMAVITTORELLI, MB
    PALMA, MU
    PALUMBO, D
    NUOVO CIMENTO, 1957, 6 (05): : 1211 - 1220
  • [45] TRANSISTOR PHASE-SENSITIVE AMPLIFIER
    AGALAROV, CS
    ARS JOURNAL, 1961, 31 (11): : 1650 - 1654
  • [46] Distributed phase-sensitive amplification
    Vasilyev, M
    OPTICS EXPRESS, 2005, 13 (19): : 7563 - 7571
  • [47] A DIODE PHASE-SENSITIVE DETECTOR
    LEELA, BS
    SHANKAR, R
    ELECTRONIC ENGINEERING, 1965, 37 (452): : 681 - &
  • [48] Phase-sensitive amplification in a fiber
    McKinstrie, CJ
    Radic, S
    OPTICS EXPRESS, 2004, 12 (20): : 4973 - 4979
  • [49] Simple phase-sensitive detector
    Kraus, K
    ELECTRONICS WORLD, 2000, 106 (1770): : 456 - 456
  • [50] Phase-sensitive expansion microscopy
    Anthony, Nicholas
    Trianni, Alberta
    Bianchini, Paolo
    Diaspro, Alberto
    EUROPEAN BIOPHYSICS JOURNAL WITH BIOPHYSICS LETTERS, 2021, 50 (SUPPL 1): : 115 - 115