Non-Destructive Assessment of the Functional Diameter and Hydrodynamic Roughness of Additively Manufactured Channels

Author:

Chandrabalan Lokesh1,Baier Markus2,Meloni Roberto1,Pieri Marco1,Ammannato Luca1,Del Puglia Eugenio1,Carmignato Simone2ORCID

Affiliation:

1. Baker Hughes, Via Felice Matteucci 2, 50127 Florence, Italy

2. Department of Management and Engineering, University of Padova, Stradella S. Nicola 3, 36100 Vicenza, Italy

Abstract

Metal additive manufacturing, particularly laser powder bed fusion, is increasingly used in the gas turbine industry for the fabrication of channels with small diameters for conformal cooling and flow passage applications. A critical challenge in this context lies in evaluating aspects such as the geometrical and hydraulic diameters, the effective area and the roughness on the internal surface of the channel that affects the flow functionality. This paper proposes a new method to evaluate the geometrical and functional equivalent diameters, i.e., the hydraulic diameter of cylindrical channels and the mean surface topography height on the internal channel surface, using X-ray computed tomography. The developed methods were validated with experimental flow tests, considering the mean surface topography height to be equivalent to the hydrodynamic sand grain roughness, thereby determining the hydraulic diameter and the associated effective area. The method is a much faster approach to determining the available hydraulic diameter compared to flow tests and offers the possibility of evaluating the internal surface characteristics, with discrepancies between the two approaches being less than ±3%.

Funder

The EU Framework Programme for Research and Innovation—Horizon 2020

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

Reference20 articles.

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3. Chandrabalan, L., Matoni, E., Malarco, M., Del Puglia, E., Ammannato, L., and Carmignato, S. (2019, January 16–18). Investigation on precision of laser powder bed fusion process using statistical process control. Proceedings of the Joint Special Interest Group Meeting between euspen and ASPE Advancing Precision in Additive Manufacturing, Nantes, France.

4. Charles, A., Elkaseer, A., Thijs, L., Hagenmeyer, V., and Scholz, S. (2019). Effect of Process Parameters on the Generated Surface Roughness of Down-Facing Surfaces in Selective Laser Melting. J. Appl. Sci., 9.

5. Assessment and verification of mean effective diameter of internal channels fabricated by laser powder bed fusion;Chandrabalan;Procedia CIRP,2020

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