AbstractAbstract
[en] The atomic vapor laser isotope separation process uses high-average power lasers that have the commercial potential to enrich uranium for the electric power utilities. The transport of the laser beam through the laser system to the separation chambers requires high performance optical components, most of which have either fused silica or Zerodur as the substrate material. One of the requirements of the optical components is to preserve the wavefront quality of the laser beam that propagate over long distances. Full aperture tests with the high power process lasers and finite element analysis (FEA) have been performed on the transport optics. The wavefront distortions of the various sections of the transport path were measured with diagnostic Hartmann sensor packages. The FEA results were derived from an in-house thermal-structural-optical code which is linked to the commercially available CodeV program. In comparing the measured and predicted results, the bulk absorptance of fused silica was estimated to about 50 ppm/cm in the visible wavelength regime. Wavefront distortions are reported on optics made from fused silica and Zerodur substrate materials
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31 Mar 1999; 991 Kilobytes; 44. Annual Meeting of the International Symposium on Optical Science, Engineering and Instrumentation, SPIE/Soft X-Ray Coatings, Aspherics, and Applications; Denver, CO (United States); 18-23 Jul 1999; W-7405-ENG-48; Available from PURL: https://www.osti.gov/servlets/purl/9802-cpkfnE/native/
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Willke, T.; Dingee, D.; Ault, L.; Bampton, M.; Bickford, W.; Hartman, J.; Rockwood, A.; Simonen, E.; Teofilo, V.; Frank, T.
Proceedings of the heavy ion fusion workshop1978
Proceedings of the heavy ion fusion workshop1978
AbstractAbstract
[en] An engineering development program strategy to take inertial confinement fusion (ICF) from the milestone of scientific feasibility to a point where its commercial viability can be determined is described. The ICF program objectives and basic program strategy are discussed
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Arnold, R.C. (ed.); Argonne National Lab., IL (USA); p. 61-87; 1978; p. 61-87; Heavy ion fusion workshop; Chicago, IL, USA; 19 - 26 Sep 1978
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Bower, D; McCarville, T; Alvarez, S; Ault, L; Brown, M; Chrisp, M; Damian, C; DeHope, W; Froula, D; Glenzer, S; Grace, S; Gu, K; Holdener, F; Huffer, C; Kamperschroer, J; Kelleher, T; Kimbrough, J
Lawrence Livermore National Lab., Livermore, CA (United States). Funding organisation: US Department of Energy (United States)2004
Lawrence Livermore National Lab., Livermore, CA (United States). Funding organisation: US Department of Energy (United States)2004
AbstractAbstract
[en] A Full Aperture Backscatter Station (FABS) target diagnostic has been activated on the first four beams of the National Ignition Facility (NIF). Backscattered light from the target propagates back down the beam path into the FABS diagnostic system. FABS measures both stimulated Brillouin scattering (SBS) and stimulated Raman scattering (SRS) with a suite of measurement instruments. Digital cameras and spectrometers record spectrally resolved energy for both P and S polarized light. Streaked spectrometers measure the spectral and temporal behavior of the backscattered light. Calorimeters and fast photodetectors measure the integrated energy and temporal behavior of the light, respectively. This paper provides an overview of the FABS measurements system and detailed descriptions of the diagnostic instruments and the optical path
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7 Apr 2004; 9 p; 15. Topical Conference on High-Temperature Plasma Diagnostics; San Diego, CA (United States); 19-22 Apr 2004; W-7405-ENG-48; Available from http://www.llnl.gov/tid/lof/documents/pdf/306700.pdf; PURL: https://www.osti.gov/servlets/purl/893567-1thg0e/; PDF-FILE: 9 ; SIZE: 0.4 MBYTES
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