Chemical Composition Effects on the Microstructure and Hot Hardness of NiCrSiFeB Self-Fluxing Alloys Manufactured via Gravity Casting

Author:

Niklas Andrea1,Santos Fernando1,Garcia David1,Rouco Mikel1ORCID,González-Martínez Rodolfo1ORCID,Pereira Juan Carlos2ORCID,Rayón Emilio3ORCID,Lopez Patricia4,Guillonneau Gaylord5ORCID

Affiliation:

1. Foundation AZTERLAN, Basque Research and Technology Alliance (BRTA), Aliendalde Auzunea 6, 48200 Durango, Spain

2. LORTEK, Basque Research and Technology Alliance (BRTA), Arranomendia Kalea 4A, 20240 Ordizia, Spain

3. Instituto Universitario de Tecnología de Materiales (IUTM), Universitat Politècnica de València, Cami de Vera s/n., 46022 Valencia, Spain

4. CIDETEC, Basque Research and Technology Alliance (BRTA), Pº. Miramón 196, 20014 Donostia-San Sebastián, Spain

5. Ecole Centrale de Lyon, CNRS, ENTPE, Laboratoire de Tribologie et Dynamique des Systèmes, UMR5513, University of Lyon, 69130 Ecully, France

Abstract

Ni-Cr-Si-Fe-B self-fluxing alloys are commonly used in hardfacing applications; in addition, they are subjected to conditions of wear, corrosion, and high temperatures, but are not used in casting applications. In this work, gravity casting is presented as a potential manufacturing route for these alloys. Three alloys with different chemical compositions were investigated with a focus on microstructure characterization, solidification path, and strengthening mechanisms. Phases and precipitates were characterized using a field emission scanning electron microscope employing energy-dispersive X-ray spectroscopy, wavelength dispersive spectroscopy, and electron backscatter diffraction. Nano- and microhardness indentations were performed at different phases to understand their contribution to the overall hardness of the studied alloys. Hardness measurements were performed at room temperature and high temperature (650 °C). The borides and carbides were the hardest phases in the microstructure, thus contributing significantly to the overall hardness of the alloys. Additional hardening was provided by the presence of hard Ni3B eutectics; however, there was also a small contribution from the solid solution hardening of the γ-Ni dendrites in the high-alloy-grade sample. The amount and size of the different phases and precipitates depended mainly on the contents of the Cr, C, and B of the alloy.

Funder

Clean Sky 2 Joint Undertaking

Publisher

MDPI AG

Subject

Industrial and Manufacturing Engineering,Mechanical Engineering,Mechanics of Materials

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