IL199484A

Pre-amplifier for detection lasers within laser ultrasonic inspection systems

Abstract

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IL199484A, drawing sheet 1
Sheet 1 of 7

Term

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15 claims: 3 independent, 12 dependent

  1. 1
    WHAT IS CLAIMED IS:1. A method to generate a pulsed detection laser beam operable to detect ultrasonic surface displacements within a surface of a remote target comprising: generating a seed laser having a power of about 2 mW to about 1 W;amplifying the seed laser with a continuous pre-amplifier to produce an intermediate power laser beam;amplifying the intermediate power laser beam with a pulsed amplifier to produce the pulsed detection laser beam;and directing the pulsed detection laser beam to the surface of the remote target illuminating a portion of the surface of the remote target so that ultrasonic surface displacements within the illuminated portion of the surface of the remote target phase modulate the pulsed detection laser beam;using optics to collect phase modulated light produced by the detection laser beam being scattered or reflected by the surface of the remote target;and processing the phase modulated light to obtain data representative of the ultrasonic surface displacements at the surface and structures within the remote target.
  2. 2
    The method of Claim 1, wherein the continuous pre-amplifier comprises a material selected from the list consisting of diode pumped fiber material, diode pumped rod lasing material, diode pumped slab lasing material, diode pumped thin disc lasing material, lamp pumped thin disc lasing material, lamp pumped rod lasing material, lamp pumped slab lasing material, and combinations thereof.
  3. 3
    The method of Claim 1, wherein the pulsed amplifier comprises:diode pumped fiber;or diode pumped solid-state lasing material.
  4. 4
    The method of Claim 1, wherein:the seed laser is fiber coupled to the continuous pre-amplifier;and the continuous pre-amplifier is fiber coupled to the pulsed amplifier.
  5. 5
    The method of Claim 1, wherein:the seed laser is optically coupled via free space to the continuous pre-amplifier;and the continuous pre-amplifier is optically coupled via free space to the pulsed amplifier.
  6. 6
    The method of Claim 1, wherein the seed laser is generated by a single frequency oscillator, wherein the single frequency oscillator is selected from the list consisting of a non-planar ring oscillator, a linear cavity oscillator;a fiber oscillator, and combinations thereof.
  7. 7
    The method of Claim 1, wherein the continuous pre-amplifier comprises a single pass amplifier or a multi-pass amplifier.
  8. 8
    The method of Claim 1, further comprising processing the data to assess the structural integrity of the remote target.
  9. 9
    The method of Claim 1, wherein the master oscillator comprises fibers selected from the list consisting of Ytterbium doped fibers operable to produce radiation at a wavelength of about 1000 nm, Erbium doped fibers operable to produce radiation at a wavelength of about 1550 nm, and co-doped fibers operable to produce radiation at a wavelength of about 1550 nm and fiber lasers having side cladding pumping wherein pumping diodes are coupled 0 active fiber through pumping fibers.
  10. 10
    The method of Claim 1, wherein the pulsed amplifier comprises pumping diodes, the pumping diodes comprise single emitters, a group of single emitters, diode bars, and/or a group of diode bars.
  11. 11
    A pulsed detection laser operable to generate a pulsed detection laser beam to detect ultrasonic surface displacements within a surface of a remote target comprising:a single frequency oscillator operable to generate a seed laser beam;a continuous pre-amplifier optically coupled to the single frequency oscillator, the continuous pre-amplifier operable to amplify the seed laser to produce an intermediate power laser beam;a pulsed amplifier optically coupled to the continuous pre-amplifier, the pulsed amplifier operable to amplify the intermediate power laser beam to produce a pulsed detection laser beam;and wherein: the pulsed detection laser beam is directed to the surface of the remote target;the pulsed detection laser beam illuminates a portion of the surface of the remote target;ultrasonic surface displacements within the illuminated portion of the surface of the remote target scatter the pulsed detection laser beam to produce phase modulated light;and the phase modulated light is processed to obtain data representative of the ultrasonic surface displacements at the surface and structures within the remote target.
  12. 12
    The pulsed detection laser of Claim 11, wherein:the seed laser is fiber coupled to the continuous pre-amplifier;and the continuous pre-amplifier is fiber coupled to the pulsed amplifier.
  13. 13
    The pulsed detection laser of Claim 11, wherein:the pulsed detection laser beam is directed to a surface of a remote target;the pulsed detection laser beam illuminates a portion of the surface of the remote target;ultrasonic surface displacements within the illuminated portion of the surface of the remote target phase modulate the pulsed detection laser beam;optics collect phase modulated light produced by the detection laser beam being scattered or reflected by the surface of the remote target;and the phase modulated light is. processed to obtain data representative of the ultrasonic surface displacements at the surface and structures within the remote target.
  14. 14
    The pulsed detection laser of Claim 11, wherein the single frequency oscillator comprises:non-planar ring oscillator;linear cavity oscillator;or fiber oscillator.
  15. 15
    A large area composite inspection apparatus for measuring ultrasonic surface displacements on a surface of a remote target comprising:an ultrasound generation system operable to produce ultrasonic surface displacements at the remote target;a detection laser operable to illuminate ultrasonic surface displacements on the surface of the remote target with a pulsed detection laser beam, wherein the detection laser comprises: a single frequency oscillator operable to generate a seed laser beam;a continuous pre-amplifier optically coupled to the single frequency oscillator, the continuous pre-amplifier operable to amplify the seed laser to produce an intermediate power laser beam;and a pulsed amplifier optically coupled to the continuous pre-amplifier, the pulsed amplifier operable to amplify the intermediate power laser beam to produce a pulsed detection laser beam;a scanning assembly operable to create relative motion between an illumination spot of the pulsed detection laser beam and the surface of the remote target;collection optics for collecting phase modulated light from the pulsed detection laser beam either reflected or scattered by the remote target;an optical processor to process the phase modulated light collected by the collection optics and produce an output signal;and a processor operable to process the output signal to obtain data representative of the ultrasonic surface displacements on the surface of the remote target.