Freeform Hybrid Manufacturing: Binderjet, Structured Light Scanning, Confocal Microscopy, and CNC Machining

Гибридное изготовление свободноформных поверхностей: Binder Jet, структурное световое сканирование, конфокальная микроскопия и ЧПУ-обработка
Tony L. Schmitz, Dustin Gilmer, Jake Dvorak, Ross Zameroski, Aaron Cornelius
2023-04-18

BJAMCNC machiningbinder jet additive manufacturingconfocal microscopycoordinate system alignmenthybrid manufacturingsilicon carbide freeform surfacesstock model for machiningstructured light scanningsurface deviation 70 µm
This paper describes a hybrid manufacturing approach for silicon carbide (SiC) freeform surfaces using binder jet additive manufacturing (BJAM) to print the preform and machining to obtain the design geometry. Although additive manufacturing (AM) techniques such as BJAM allow for the fabrication of complex geometries, additional machining or grinding is often required to achieve the desired surface finish and shape. Hybrid manufacturing has been shown to provide an effective solution. However, hybrid manufacturing also has its own challenges, depending on the combination of processes. For example, when the subtractive and additive manufacturing steps are performed sequentially on separate systems, it is necessary to define a common coordinate system for part transfer. This can be difficult because AM preforms do not inherently contain features that can serve as datums. Additionally, it is important to confirm that the intended final geometry is contained within the AM preform. The approach described here addresses these challenges by using structured light scanning to create a stock model for machining. Results show that a freeform surface was machined with approximately 70 µm of maximum deviation from that which was planned.
1
A freeform surface was machined with approximately 70 µm maximum deviation from the planned geometry.
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Hybrid manufacturing combining binder jet additive manufacturing (BJAM) and CNC machining can produce silicon carbide (SiC) freeform surfaces.
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Structured light scanning is used to create a common stock model (datum) for accurate part transfer between AM and machining systems.
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The approach addresses challenges of lacking datums on AM preforms and alignment between separate additive and subtractive systems.
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The method confirms that the intended final geometry is contained within the BJAM preform before machining.

Silicon carbide (SiC) freeform surface parts produced by binder jet additive manufacturing and finished by CNC machining

Hybrid manufacturing workflow for producing target freeform geometry and surface accuracy, including use of structured light scanning to create a stock model for machining and assessing final geometry deviation (≈70 µm)

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Publication Date
2023-04-18
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Authors
Tony L. Schmitz
Dustin Gilmer
Jake Dvorak
Ross Zameroski
Aaron Cornelius
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