Literature DB >> 31153279

The laser shock station in the dynamic compression sector. I.

Xiaoming Wang1, Paulo Rigg1, John Sethian1, Nicholas Sinclair1, Nicholas Weir1, Brendan Williams1, Jun Zhang1, James Hawreliak2, Yoshimasa Toyoda2, Yogendra Gupta2, Yuelin Li1, Douglas Broege3, Jake Bromage3, Robert Earley3, Dale Guy3, Jonathan Zuegel3.   

Abstract

The Laser Shock Station in the Dynamic Compression Sector (DCS) [Advanced Photon Source (APS), Argonne National Laboratory] links a laser-driven shock compression platform with high energy x-ray pulses from the APS to achieve in situ, time-resolved x-ray measurements (diffraction and imaging) in materials subjected to well-characterized, high stress, short duration shock waves. This station and the other DCS experimental stations provide a unique and versatile facility to study condensed state phenomena subjected to shocks with a wide range of amplitudes (to above ∼350 GPa) and time-durations (∼10 ns-1 µs). The Laser Shock Station uses a 100 J, 5-17 ns, 351 nm frequency tripled Nd:glass laser with programmable pulse shaping and focal profile smoothing for maximum precision. The laser can operate once every 30 min. The interaction chamber has multiple diagnostic ports, a sample holder to expose 14 samples without breaking vacuum, can vary the angle between the x-ray and laser beams by 135°, and can translate to select one of the two types of x-ray beams. The x-ray measurement temporal resolution is ∼90 ps. The system is capable of reproducible, well-characterized experiments. In a series of 10 shots, the absolute variation in shock breakout times was less than 500 ps. The variation in peak particle velocity at the sample/window interface was 4.3%. This paper describes the entire DCS Laser Shock Station, including sample fabrication and diagnostics, as well as experimental results from shock compressed tantalum that demonstrate the facility's capability for acquiring high quality x-ray diffraction data.

Entities:  

Year:  2019        PMID: 31153279     DOI: 10.1063/1.5088367

Source DB:  PubMed          Journal:  Rev Sci Instrum        ISSN: 0034-6748            Impact factor:   1.523


  3 in total

1.  Quantitative analysis of diffraction by liquids using a pink-spectrum X-ray source.

Authors:  Saransh Singh; Amy L Coleman; Shuai Zhang; Federica Coppari; Martin G Gorman; Raymond F Smith; Jon H Eggert; Richard Briggs; Dayne E Fratanduono
Journal:  J Synchrotron Radiat       Date:  2022-05-16       Impact factor: 2.557

2.  Towards a dynamic compression facility at the ESRF.

Authors:  Nicolas Sévelin-Radiguet; Raffaella Torchio; Gilles Berruyer; Hervé Gonzalez; Sébastien Pasternak; Florian Perrin; Florent Occelli; Charles Pépin; Arnaud Sollier; Dominik Kraus; Anja Schuster; Katja Voigt; Min Zhang; Alexis Amouretti; Antoine Boury; Guillaume Fiquet; François Guyot; Marion Harmand; Marcello Borri; Janet Groves; William Helsby; Stéphane Branly; James Norby; Sakura Pascarelli; Olivier Mathon
Journal:  J Synchrotron Radiat       Date:  2022-01-01       Impact factor: 2.616

3.  Samarium: from a distorted-fcc phase to melting under dynamic compression using in-situ x-ray diffraction.

Authors:  Sakun Duwal; Chad A McCoy; Daniel H Dolan Iii; Cody A Melton; Marcus D Knudson; Seth Root; Richard Hacking; Bernardo Farfan; Christopher Johnson; C Scott Alexander; Christopher T Seagle
Journal:  Sci Rep       Date:  2022-10-06       Impact factor: 4.996

  3 in total

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