Towards Multilayered Coatings of 304L Stainless Steels Using Friction Surfacing

Author:

Agiwal Hemant1,Baumann Christian2,Krall Stephan2,Yeom Hwasung3,Sridharan Kumar3,Bleicher Friedrich4,Pfefferkorn Frank E.1

Affiliation:

1. University of Wisconsin-Madison Department of Mechanical Engineering, , Madison, WI 53706

2. Institute of Production Engineering and, Photonic Technologies, TU Wien , Vienna 1030 , Austria

3. University of Wisconsin-Madison Department of Engineering Physics, , Madison, WI 53706

4. Institute of Production Engineering and, Photonic Technologies, TU Wien , Vienna 1060 , Austria

Abstract

Abstract The objective of this work is to study friction surfacing process variability when depositing multilayered coatings. This is motivated by the need to maintain deposition quality when depositing multiple friction surfacing layers, whether for repair, remanufacturing, or new part creation using this solid-state metal additive manufacturing process. In this study, 10-mm-diameter 304L stainless steel rods were used to create up to five layers of 40-mm-long coatings on 304L substrates using a constant set of processing parameters. In-process measurement of forces (X, Y, Z), flash temperature, flash geometry, layer temperature, and post-process measurement of layer geometry, microhardness, and microstructure are used to characterize changes in the friction surfacing process as more layers are deposited. It was observed that with increasing layers: layer thickness and deposition efficiency decrease; offsetting of the deposition towards the retreating side, and temperature in the deposited layer increase; and flash temperature does not change. Metallurgical analyses of friction-surfaced cross-sections revealed fine grain refinement and transformation of base austenite to strain-induced martensite. It is concluded that the process parameters need to be adjusted even after the second or third layer is deposited, corrections to the tool path are required after a couple of layers, and the measured process forces, as well as deposited layer temperature, may be useful to monitor and control the process and its instabilities.

Funder

Nuclear Energy University Programs

Österreichische Forschungsförderungsgesellschaft

Publisher

ASME International

Subject

Industrial and Manufacturing Engineering,Computer Science Applications,Mechanical Engineering,Control and Systems Engineering

Reference36 articles.

1. Friction Surfacing—A Review;Gandra;J. Mater. Process. Technol.,2014

2. Friction Surfacing Deposition by Consumable Tools;Seidi;ASME J. Manuf. Sci. Eng.,2021

3. On the Thermo-Mechanical Events During Friction Surfacing of High Speed Steels;Bedford;Surf. Coat. Technol.,2001

4. Material Flow Visualization During Friction Surfacing;Rafi;Metall. Mater. Trans. A,2011

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