AI Article Synopsis

  • Non-destructive testing using neutron imaging and diffraction allows for examination of thick metal samples, which are often opaque to other methods.
  • This technique, known as spatially resolved neutron transmission spectroscopy, captures multiple images at different energies for detailed analysis of internal structures.
  • The study showcases imaging of microstructural properties in Inconel 625, aiding in the optimization of additive manufacturing processes and providing data to validate predictive models used in industry.

Article Abstract

Non-destructive testing techniques based on neutron imaging and diffraction can provide information on the internal structure of relatively thick metal samples (up to several cm), which are opaque to other conventional non-destructive methods. Spatially resolved neutron transmission spectroscopy is an extension of traditional neutron radiography, where multiple images are acquired simultaneously, each corresponding to a narrow range of energy. The analysis of transmission spectra enables studies of bulk microstructures at the spatial resolution comparable to the detector pixel. In this study we demonstrate the possibility of imaging (with ~100 μm resolution) distribution of some microstructure properties, such as residual strain, texture, voids and impurities in Inconel 625 samples manufactured with an additive manufacturing method called direct metal laser melting (DMLM). Although this imaging technique can be implemented only in a few large-scale facilities, it can be a valuable tool for optimization of additive manufacturing techniques and materials and for correlating bulk microstructure properties to manufacturing process parameters. In addition, the experimental strain distribution can help validate finite element models which many industries use to predict the residual stress distributions in additive manufactured components.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5101871PMC
http://dx.doi.org/10.1080/14686996.2016.1190261DOI Listing

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