A Reactive Element Approach to Improve Fracture Healing in Metallic Systems
Self-healing materials demonstrate the ability to close fractures and regain mechanical integrity after a catastrophic failure. However, self-healing in metals can be inhibited by the natural tendency for technologically-relevant metallic systems to oxidize on the crack surface. This study seeks to...
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doaj-d00735bd0c934677a13cf10e6857cbf12020-11-25T01:26:56ZengFrontiers Media S.A.Frontiers in Materials2296-80162019-08-01610.3389/fmats.2019.00210436175A Reactive Element Approach to Improve Fracture Healing in Metallic SystemsCharles R. Fisher0John J. Mecholsky Jr.1Hunter B. Henderson2Michael S. Kesler3Michele V. Manuel4Naval Surface Warfare Center - Carderock Division, West Bethesda, MD, United StatesDepartment of Materials Science & Engineering, University of Florida, Gainesville, FL, United StatesOak Ridge National Laboratory, Oak Ridge, TN, United StatesOak Ridge National Laboratory, Oak Ridge, TN, United StatesDepartment of Materials Science & Engineering, University of Florida, Gainesville, FL, United StatesSelf-healing materials demonstrate the ability to close fractures and regain mechanical integrity after a catastrophic failure. However, self-healing in metals can be inhibited by the natural tendency for technologically-relevant metallic systems to oxidize on the crack surface. This study seeks to provide a thermodynamically-based mechanism to enhance healing capability at a solid/liquid interface through alloys designed with a reactive element alloying addition possessing a lower free energy of oxide formation than the parent element. In this study, model Sb-Cu and Sb-Zn systems enable comparisons between mechanistic behaviors based only on thermodynamic reactivity. Mechanical and microstructural investigation demonstrated that the more reactive alloying addition resulted in more effective bonding through increasing bond area and load-bearing capacity of the system. The improved bonding was attributed to improved wetting and reduction of the passivating surface oxide across an interface. The work has potential to advance self-healing capabilities in metallic systems through more appropriate alloy selection to enable improved healing.https://www.frontiersin.org/article/10.3389/fmats.2019.00210/fullinterfacial bondingthermodynamicchevron notchliquid phaseself-healing |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Charles R. Fisher John J. Mecholsky Jr. Hunter B. Henderson Michael S. Kesler Michele V. Manuel |
spellingShingle |
Charles R. Fisher John J. Mecholsky Jr. Hunter B. Henderson Michael S. Kesler Michele V. Manuel A Reactive Element Approach to Improve Fracture Healing in Metallic Systems Frontiers in Materials interfacial bonding thermodynamic chevron notch liquid phase self-healing |
author_facet |
Charles R. Fisher John J. Mecholsky Jr. Hunter B. Henderson Michael S. Kesler Michele V. Manuel |
author_sort |
Charles R. Fisher |
title |
A Reactive Element Approach to Improve Fracture Healing in Metallic Systems |
title_short |
A Reactive Element Approach to Improve Fracture Healing in Metallic Systems |
title_full |
A Reactive Element Approach to Improve Fracture Healing in Metallic Systems |
title_fullStr |
A Reactive Element Approach to Improve Fracture Healing in Metallic Systems |
title_full_unstemmed |
A Reactive Element Approach to Improve Fracture Healing in Metallic Systems |
title_sort |
reactive element approach to improve fracture healing in metallic systems |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Materials |
issn |
2296-8016 |
publishDate |
2019-08-01 |
description |
Self-healing materials demonstrate the ability to close fractures and regain mechanical integrity after a catastrophic failure. However, self-healing in metals can be inhibited by the natural tendency for technologically-relevant metallic systems to oxidize on the crack surface. This study seeks to provide a thermodynamically-based mechanism to enhance healing capability at a solid/liquid interface through alloys designed with a reactive element alloying addition possessing a lower free energy of oxide formation than the parent element. In this study, model Sb-Cu and Sb-Zn systems enable comparisons between mechanistic behaviors based only on thermodynamic reactivity. Mechanical and microstructural investigation demonstrated that the more reactive alloying addition resulted in more effective bonding through increasing bond area and load-bearing capacity of the system. The improved bonding was attributed to improved wetting and reduction of the passivating surface oxide across an interface. The work has potential to advance self-healing capabilities in metallic systems through more appropriate alloy selection to enable improved healing. |
topic |
interfacial bonding thermodynamic chevron notch liquid phase self-healing |
url |
https://www.frontiersin.org/article/10.3389/fmats.2019.00210/full |
work_keys_str_mv |
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