• DocumentCode
    802836
  • Title

    Iterative processing of ultrasonic measurements to characterize flaws in critical optical components

  • Author

    Meyer, Alan W. ; Candy, James V.

  • Author_Institution
    Lawrence Livermore Nat. Lab., California Univ., Livermore, CA, USA
  • Volume
    49
  • Issue
    8
  • fYear
    2002
  • Firstpage
    1124
  • Lastpage
    1138
  • Abstract
    Real-time nondestructive evaluation is crucial for the safety and maintenance of critical optics in high energy, laser physics experiments. Fluence levels in short pulse, high-energy lasers can produce pits and cracks in the surfaces of the laser´s optical components. These flaws in the optical glass can adversely affect the production of the laser light, or even result in a catastrophic failure of the optical component itself. Consequently, the detection, localization, and characterization of these flaws is critical. This paper describes the novel application of several signal and image-processing techniques that detect, localize, and characterize flaws in optical components. These techniques are embedded into an optic scanning system to automatically identify and report on the condition of the vacuum windows used in high fluence laser systems. These techniques exploit measurements made from two orthogonal acoustic arrays mounted on adjacent edges of the optic. After preprocessing the raw channel measurement data from two orthogonal, narrow beamwidth, transducer arrays, a two-dimensional (2-D) power image is created. A physics-based 2-D matched filter is then developed for detecting and localization. An iterative solution to sequentially search the resulting image to extract and characterize the flaws is discussed.
  • Keywords
    acoustic signal processing; flaw detection; iterative methods; laser beam effects; matched filters; optical elements; optical glass; optical testing; ultrasonic materials testing; ultrasonic transducer arrays; catastrophic failure; cracks; critical optical components; critical optics; flaw characterization; flaw detection; flaw localization; fluence levels; high energy laser physics experiments; image-processing techniques; iterative solution; laser optical components; optic scanning system; optical glass; orthogonal acoustic arrays; orthogonal narrow beamwidth transducer arrays; physics-based 2-D matched filter; pits; raw channel measurement data; real-time nondestructive evaluation; sequential searching; short pulse high-energy lasers; signal processing techniques; two-dimensional power image; ultrasonic measurement iterative processing; vacuum windows; Acoustic measurements; Acoustic signal detection; Laser theory; Optical arrays; Optical devices; Optical filters; Optical pulses; Physics; Safety; Ultrasonic variables measurement;
  • fLanguage
    English
  • Journal_Title
    Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-3010
  • Type

    jour

  • DOI
    10.1109/TUFFC.2002.1026025
  • Filename
    1026025