4.7 Article

Microstructural characteristics and mechanical properties of Si-B alloys for functional and structural ultra-high temperature applications

Journal

JOURNAL OF ALLOYS AND COMPOUNDS
Volume 935, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2022.167672

Keywords

Si -B alloys; Electric arc melting; X-ray computed tomography; Indentation; Fracture toughness

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In this study, the structure of selected Si-B binary alloys was investigated, revealing the co-existence of various silicon borides. The microstructure, crystal structure, and mechanical properties of each alloy were described based on experimental results. It was found that the mechanical properties of silicon borides (microhardness and Young modulus) increase with increasing boron content. The fracture toughness of silicon borides assessed through indentation experiments was found to be in the range of 2.13-3.29 MPa·m1/2.
Silicon boron alloys have been recognized as important materials for e.g. a direct usage in ultra-high temperature latent heat thermal energy storage systems or as a batch materials for processing boron en-hanced silicide-based composites. In this work, we put new experimentally driven insights on a structure of selected Si-B binary alloys. For this reason, four Si-xB alloys (x = 2.5; 8, 13.5; 86 (at%)) were fabricated from pure elements by using a crucible-less electric arc melting technique. Nominal compositions of the alloys were selected in accordance to Si-B phase diagram as hypoeutectic, eutectic, hypereutectic and corre-sponding to the stoichiometric composition of SiB6 intermetallic phase, respectively. The fabricated Si-xB alloys were subjected to a detailed structural characterization. Additionally, a hardness, elastic moduli and fracture toughness of each phase constituent were examined through a micro-indentation technique. A co-existence of various silicon borides, namely SiB4, SiB6 and SiBn, has been experimentally documented. Obtained results allows receiving a description of each alloy in terms of microstructure, crystal structure and mechanical properties of involved phases. It was found that mechanical properties (both microhardness and Young modulus) increases with raising boron content in recognized Si-B phases. The fracture toughness of silicon borides assessed through indentation experiments was found to be in the rage of 2.13-3.29 MPa center dot m1/2. (c) 2022 Published by Elsevier B.V.

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