Temperature dependence in Bragg edge neutron transmission measurements

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  • Ala'a M. Al-Falahat
  • Nikolay Kardjilov
  • Robin Woracek
  • Mirko Boin
  • Henning Markoetter
  • Luise Theil Kuhn
  • Malgorzata Makowska
  • Markus Strobl
  • Beate Pfretzschner
  • John Banhart
  • Ingo Manke

A systematic study has been carried out to investigate the neutron transmission signal as a function of sample temperature. In particular, the experimentally determined wavelength-dependent neutron attenuation spectra for a martensitic steel at temperatures ranging from 21 to 700 degrees C are compared with simulated data. A theoretical description that includes the Debye-Waller factor in order to describe the temperature influence on the neutron cross sections was implemented in the nxsPlotter software and used for the simulations. The analysis of the attenuation coefficients at varying temperatures shows that the missing contributions due to elastic and inelastic scattering can be clearly distinguished: while the elastically scattered intensities decrease with higher temperatures, the inelastically scattered intensities increase, and the two can be separated from each other by analysing unique sharp features in the form of Bragg edges. This study presents the first systematic approach to quantify this effect and can serve as a basis , for example, to correct measurements taken during in situ heat treatments, in many cases being a prerequisite for obtaining quantifiable results.

Original languageEnglish
JournalJournal of Applied Crystallography
Volume55
Pages (from-to)919-928
Number of pages10
ISSN1600-5767
DOIs
Publication statusPublished - 2 Aug 2022

    Research areas

  • neutron Bragg edge imaging, Debye-Waller factor, temperature-dependent neutron transmission, super martensitic stainless steel, IMAGING INSTRUMENT, IN-SITU, TRANSFORMATION, DIFFRACTION, STRAIN, DECOMPOSITION, SCATTERING, MODULUS, STRESS, SIZE

ID: 317362271