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Sökning: L773:1044 677X OR L773:2165 7254 > Measurement Uncerta...

Measurement Uncertainty of Surface Temperature Distributions for Laser Powder Bed Fusion Processes

Deisenroth, David C. (författare)
NIST The Intelligent Systems Division, USA
Mekhontsev, Sergey (författare)
NIST, Sensor Sci Div, USA
Lane, Brandon (författare)
NIST The Intelligent Systems Division, USA
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Hanssen, Leonard (författare)
NIST, Sensor Sci Div, USA
Zhirnov, Ivan (författare)
Karlstads universitet,Institutionen för ingenjörs- och kemivetenskaper (from 2013),NIST, Sensor Sci Div, USA
Khromchenko, Vladimir (författare)
NIST, Sensor Sci Div, USA
Grantham, Steven (författare)
NIST, Sensor Sci Div, USA
Cardenas-Garcia, Daniel (författare)
NIST, Sensor Sci Div, USA.;Ctr Nacl Metrol, Carretera Los Cues, MEX
Donmez, Alkan (författare)
NIST The Intelligent Systems Division, USA
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 (creator_code:org_t)
NATL INST STANDARDS & TECHNOLOGY-NIST, 2021
2021
Engelska.
Ingår i: Journal of research of the National Institute of Standards and Technology. - : NATL INST STANDARDS & TECHNOLOGY-NIST. - 1044-677X .- 2165-7254. ; 126
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
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  • This paper describes advances in measuring the characteristic spatial distribution of surface temperature and emissivity during laser -metal interaction under conditions relevant for laser powder bed fusion (LPBF) additive manufacturing processes. Detailed descriptions of the measurement process, results, and approaches to determining uncertainties are provided. Measurement uncertainties have complex dependencies on multiple process parameters, so the methodology is demonstrated on one set of process parameters and one material. Well-established literature values for high-purity nickel solidification temperature and emissivity at the solidification temperature were used to evaluate the predicted uncertainty of the measurements. The standard temperature measurement uncertainty is found to be approximately 0.9 % of the absolute temperature (16 degrees C), and the standard relative emissivity measurement uncertainty is found to be approximately 8 % at the solidification point of high-purity nickel, both of which are satisfactory. This paper also outlines several potential sources of test uncertainties, which may require additional experimental evaluation. The largest of these are the metal vapor and ejecta that are produced as process by-products, which can potentially affect the imaging quality, reflectometry results, and thermal signature of the process, while also affecting the process of laser power delivery. Furthermore, the current paper focuses strictly on the uncertainties of the emissivity and temperature measurement approach and therefore does not detail a variety of uncertainties associated with experimental controls that must be evaluated for future generation of reference data.

Ämnesord

TEKNIK OCH TEKNOLOGIER  -- Materialteknik -- Metallurgi och metalliska material (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Materials Engineering -- Metallurgy and Metallic Materials (hsv//eng)

Nyckelord

additive manufacturing
emissivity
measurement uncertainty
powder bed fusion
reflectometry
temperature
thermography
Materialteknik
Materials Engineering

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