Review of high energy x-ray computed tomography for non-destructive dimensional metrology of large metallic advanced manufactured components

Обзор рентгеновской компьютерной томографии высокой энергии для неразрушающей размерной метрологии крупных металлических деталей, изготовленных современными технологиями
C. M. Brenner, Wenjuan Sun, Daniel Symes, Michael Böhnel, Stephen Brown, Mark Mavrogordato, Ian Sinclair, Michael Salamon
2022-01-01

>400 kV x-ray sourcesdimensional evaluation traceabilityhigh energy x-ray computed tomographyinverse Compton scatteringlarge metallic componentslaser-driven plasma sourceslinear acceleratorsmetal additive manufacturingnon-destructive dimensional metrologysynchrotron sources
Abstract Advanced manufacturing technologies, led by additive manufacturing, have undergone significant growth in recent years. These technologies enable engineers to design parts with reduced weight while maintaining structural and functional integrity. In particular, metal additive manufacturing parts are increasingly used in application areas such as aerospace, where a failure of a mission-critical part can have dire safety consequences. Therefore, the quality of these components is extremely important. A critical aspect of quality control is dimensional evaluation, where measurements provide quantitative results that are traceable to the standard unit of length, the metre. Dimensional measurements allow designers, manufacturers and users to check product conformity against engineering drawings and enable the same quality standard to be used across the supply chain nationally and internationally. However, there is a lack of development of measurement techniques that provide non-destructive dimensional measurements beyond common non-destructive evaluation focused on defect detection. X-ray computed tomography (XCT) technology has great potential to be used as a non-destructive dimensional evaluation technology. However, technology development is behind the demand and growth for advanced manufactured parts. Both the size and the value of advanced manufactured parts have grown significantly in recent years, leading to new requirements of dimensional measurement technologies. This paper is a cross-disciplinary review of state-of-the-art non-destructive dimensional measuring techniques relevant to advanced manufacturing of metallic parts at larger length scales, especially the use of high energy XCT with source energy of greater than 400 kV to address the need in measuring large advanced manufactured parts. Technologies considered as potential high energy x-ray generators include both conventional x-ray tubes, linear accelerators, and alternative technologies such as inverse Compton scattering sources, synchrotron sources and laser-driven plasma sources. Their technology advances and challenges are elaborated on. The paper also outlines the development of XCT for dimensional metrology and future needs.
1
Dimensional evaluation is critical for quality control of metal additive manufactured parts, enabling traceable measurements to the metre and conformity checks across supply chains.
2
High energy X-ray computed tomography (XCT) (>400 kV) has strong potential as a non-destructive dimensional evaluation technology for large metal parts.
3
Potential high-energy x-ray sources for large-part XCT include conventional x-ray tubes, linear accelerators, inverse Compton scattering, synchrotron, and laser-driven plasma sources, each with specific advances and challenges.
4
Technology development for high-energy XCT currently lags behind demand driven by growth in size and value of advanced manufactured parts, requiring further development and future work in XCT for dimensional metrology.
5
There is a lack of non-destructive measurement techniques that provide dimensional measurements (beyond defect detection) for large metallic advanced manufactured parts.

High-energy X-ray computed tomography (XCT) applied to non-destructive dimensional metrology of large metallic advanced manufactured components

Use, capabilities, technological advances and challenges of high-energy (>400 kV) XCT and alternative high-energy X-ray generation technologies for accurate, traceable non-destructive dimensional measurement of large metal additive-manufactured components

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2022-01-01
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C. M. Brenner
Wenjuan Sun
Daniel Symes
Michael Böhnel
Stephen Brown
Mark Mavrogordato
Ian Sinclair
Michael Salamon
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