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Published in: Progress in Additive Manufacturing 1-2/2017

01-12-2016 | Full Research Article

Evaluation of monitoring methods for electron beam melting powder bed fusion additive manufacturing technology

Authors: Paola M. Cordero, Jorge Mireles, Shakerur Ridwan, Ryan B. Wicker

Published in: Progress in Additive Manufacturing | Issue 1-2/2017

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Abstract

In-process process sensing and monitoring is being incorporated across additive manufacturing technologies due to the need for part qualification. Implementation of additively manufactured end-use parts has been hindered by the inherent process variability and anisotropy that adversely affect part performance. Process monitoring methods have the potential to ensure fabrication integrity is achieved and part isotropy is maintained across the entirety of a part. This manuscript compares two methods (pyrometer and infrared thermography) that have the potential to monitor layerwise surfaces of a powder bed fusion process. Measurement of surface temperatures during fabrication can be useful for parameter development of novel materials, prediction of resulting microstructural architectures, and ultimately as feedback used in a closed-loop control system to allow full spatial and temporal control of melting and microstructure. A multi-wavelength pyrometer was externally mounted atop an electron beam melting (EBM) additive manufacturing system to observe and record surface temperatures during the fabrication process. The multi-wavelength pyrometer used in this study was a non-contact device that was emissivity independent and capable of taking fixed spot sized measurements. An infrared camera was also installed atop an EBM system to monitor the fabrication surface and was used to measure temperature variations across the entire build area. Although the IR camera produces spatial measurements of an entire part, temperature data is emissivity dependent. Parts with variations in processing were fabricated and monitored using each instrument. Thermal variations between parts were identified with each instrument and related to microstructure. The advantages and disadvantages of each monitoring device were documented and are discussed in this manuscript.

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Literature
1.
go back to reference Sclater N, Chironis NP (2006) Mechanisms and mechanical devices sourcebook. McGraw-Hill Professional, New York Sclater N, Chironis NP (2006) Mechanisms and mechanical devices sourcebook. McGraw-Hill Professional, New York
2.
go back to reference Gibson I, Rosen DW, Stucker B (2010) Additive manufacturing technologies. Springer, New YorkCrossRef Gibson I, Rosen DW, Stucker B (2010) Additive manufacturing technologies. Springer, New YorkCrossRef
3.
go back to reference Price S, Lydon J, Cooper K, Chou K (2013) Experimental temperature analysis of powder-based electron beam additive manufacturing. In: Solid Freeform Fabrication Symposium Proceedings, pp 162–173 Price S, Lydon J, Cooper K, Chou K (2013) Experimental temperature analysis of powder-based electron beam additive manufacturing. In: Solid Freeform Fabrication Symposium Proceedings, pp 162–173
4.
go back to reference Rodriguez E (2013) Development of a thermal imaging feedback control system in electron beam melting. El Paso: ProQuest LLC, Thesis Rodriguez E (2013) Development of a thermal imaging feedback control system in electron beam melting. El Paso: ProQuest LLC, Thesis
5.
go back to reference Mireles J (2013) Process study and control of electron beam melting technology using infrared thermography. El Paso: PLC, Thesis Mireles J (2013) Process study and control of electron beam melting technology using infrared thermography. El Paso: PLC, Thesis
6.
go back to reference Dinwiddie RB et al (2013) Thermographic in situ process monitoring of the electron-beam melting technology used in additive manufacturing. In: SPIE defense, security, and sensing. International society for optics and photonics Dinwiddie RB et al (2013) Thermographic in situ process monitoring of the electron-beam melting technology used in additive manufacturing. In: SPIE defense, security, and sensing. International society for optics and photonics
7.
go back to reference Cormier D, Harrysson O, West H (2004) Characterization of H13 steel produced via electron beam melting. Rapid Prototyp J 10(1):35–41CrossRef Cormier D, Harrysson O, West H (2004) Characterization of H13 steel produced via electron beam melting. Rapid Prototyp J 10(1):35–41CrossRef
8.
go back to reference Felice RA (2003) Expert system spectropyrometer results for non-black, non-grey, or changing emissivity and selectively absorbing environments. Electro-Techno-Exposition, Moscow Felice RA (2003) Expert system spectropyrometer results for non-black, non-grey, or changing emissivity and selectively absorbing environments. Electro-Techno-Exposition, Moscow
9.
go back to reference Felice RA (2006) Investment casting temperature measurement. Foundry Manag Technol 134(8):40–41 Felice RA (2006) Investment casting temperature measurement. Foundry Manag Technol 134(8):40–41
10.
go back to reference Bermani S, Blackmore ML, Zhang W, Todd I (2010) The origin of microstructural diversity, texture, and mechanical properties in electron beam melted Ti6Al4V. Metall Mater Trans A 41(13):3422–3434CrossRef Bermani S, Blackmore ML, Zhang W, Todd I (2010) The origin of microstructural diversity, texture, and mechanical properties in electron beam melted Ti6Al4V. Metall Mater Trans A 41(13):3422–3434CrossRef
11.
go back to reference Hrabe N, Quinn T (2013) Effects of processing on microstructure and mechanical properties of a titanium alloy (Ti-6Al-4V) fabricated using electron beam melting (EBM). Part 2: enegy input, orientation, and location. Mater Sci Eng A 573:271–277CrossRef Hrabe N, Quinn T (2013) Effects of processing on microstructure and mechanical properties of a titanium alloy (Ti-6Al-4V) fabricated using electron beam melting (EBM). Part 2: enegy input, orientation, and location. Mater Sci Eng A 573:271–277CrossRef
12.
go back to reference Mireles J, Ridwan S, Morton P A, Hinojos A, Wicker R B (2015). Analysis and correction of defects within parts fabricated using powder bed fusion technology. Surf Topogr: Metrol Prop 3(3). doi:10.1088/2051-672X/3/3/034002 Mireles J, Ridwan S, Morton P A, Hinojos A, Wicker R B (2015). Analysis and correction of defects within parts fabricated using powder bed fusion technology. Surf Topogr: Metrol Prop 3(3). doi:10.​1088/​2051-672X/​3/​3/​034002
Metadata
Title
Evaluation of monitoring methods for electron beam melting powder bed fusion additive manufacturing technology
Authors
Paola M. Cordero
Jorge Mireles
Shakerur Ridwan
Ryan B. Wicker
Publication date
01-12-2016
Publisher
Springer International Publishing
Published in
Progress in Additive Manufacturing / Issue 1-2/2017
Print ISSN: 2363-9512
Electronic ISSN: 2363-9520
DOI
https://doi.org/10.1007/s40964-016-0015-6

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