Timothy Allen Furnish
Sandia National Laboratories
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Featured researches published by Timothy Allen Furnish.
Journal of Materials Science | 2017
Timothy Allen Furnish; Apurva Mehta; D. Van Campen; D. C. Bufford; Khalid Mikhiel Hattar; Brad Lee Boyce
Conventional structural metals suffer from fatigue-crack initiation through dislocation activity which forms persistent slip bands leading to notch-like extrusions and intrusions. Ultrafine-grained and nanocrystalline metals can potentially exhibit superior fatigue-crack initiation resistance by suppressing these cumulative dislocation activities. Prior studies on these metals have confirmed improved high-cycle fatigue performance. In the case of nano-grained metals, analyses of subsurface crack initiation sites have indicated that the crack nucleation is associated with abnormally large grains. However, these post-mortem analyses have led to only speculation about when abnormal grain growth occurs (e.g., during fatigue, after crack initiation, or during crack growth). In this study, a recently developed synchrotron X-ray diffraction technique was used to detect the onset and progression of abnormal grain growth during stress-controlled fatigue loading. This study provides the first direct evidence that the grain coarsening is cyclically induced and occurs well before final fatigue failure—our results indicate that the first half of the fatigue life was spent prior to the detectable onset of abnormal grain growth, while the second half was spent coarsening the nanocrystalline structure and cyclically deforming the abnormally large grains until crack initiation. Post-mortem fractography, coupled with cycle-dependent diffraction data, provides the first details regarding the kinetics of this abnormal grain growth process during high-cycle fatigue testing. Precession electron diffraction images collected in a transmission electron microscope after the in situ fatigue experiment also confirm the X-ray evidence that the abnormally large grains contain substantial misorientation gradients and sub-grain boundaries.
Advanced Materials | 2018
John F. Curry; Tomas Farley Babuska; Timothy Allen Furnish; Ping Lu; David P. Adams; Andrew B. Kustas; Brendan L Nation; Michael T. Dugger; Michael Chandross; Blythe Clark; Brad Lee Boyce; Christopher A. Schuh; Nicolas Argibay
Recent work suggests that thermally stable nanocrystallinity in metals is achievable in several binary alloys by modifying grain boundary energies via solute segregation. The remarkable thermal stability of these alloys has been demonstrated in recent reports, with many alloys exhibiting negligible grain growth during prolonged exposure to near-melting temperatures. Pt-Au, a proposed stable alloy consisting of two noble metals, is shown to exhibit extraordinary resistance to wear. Ultralow wear rates, less than a monolayer of material removed per sliding pass, are measured for Pt-Au thin films at a maximum Hertz contact stress of up to 1.1 GPa. This is the first instance of an all-metallic material exhibiting a specific wear rate on the order of 10-9 mm3 N-1 m-1 , comparable to diamond-like carbon (DLC) and sapphire. Remarkably, the wear rate of sapphire and silicon nitride probes used in wear experiments are either higher or comparable to that of the Pt-Au alloy, despite the substantially higher hardness of the ceramic probe materials. High-resolution microscopy shows negligible surface microstructural evolution in the wear tracks after 100k sliding passes. Mitigation of fatigue-driven delamination enables a transition to wear by atomic attrition, a regime previously limited to highly wear-resistant materials such as DLC.
Scripta Materialia | 2016
Nicolas Argibay; Timothy Allen Furnish; Brad Lee Boyce; Blythe Clark; Michael Chandross
Journal of Materials Research | 2016
Timothy Allen Furnish; Brad Lee Boyce; John Anthony Sharon; Christopher J. O’Brien; Blythe Clark; Christian L. Arrington; Jamin Ryan Pillars
Journal of Materials Science | 2015
Brad Lee Boyce; Timothy Allen Furnish; Henry A. Padilla; D. Van Campen; Apurva Mehta
Scripta Materialia | 2018
Timothy Allen Furnish; Daniel Charles Bufford; Fang Ren; Apurva Mehta; Khalid Mikhiel Hattar; Brad Lee Boyce
Scripta Materialia | 2018
Michael Chandross; John F. Curry; Tomas Farley Babuska; Ping Lu; Timothy Allen Furnish; Andrew B. Kustas; Brendan L Nation; Wayne Staats; Nicolas Argibay
Advanced Materials | 2018
John F. Curry; Tomas Farley Babuska; Timothy Allen Furnish; Ping Lu; David P. Adams; Andrew B. Kustas; Brendan L Nation; Michael T. Dugger; Michael Chandross; Blythe Clark; Brad Lee Boyce; Christopher A. Schuh; Nicolas Argibay
Archive | 2017
Timothy Allen Furnish; Daniel Charles Bufford; Khalid Mikhiel Hattar; Christopher John O'Brien; Apurva Mehta; Brad Lee Boyce
Archive | 2015
Timothy Allen Furnish; Brad Lee Boyce; doug van campen; Apurva Mehta