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Investigation of shock-induced reaction behavior of as-blended and ball-milled Ni+Ti powder mixtures using time-resolved stress measurements

Abstract

The shock-compression response of as-blended and ball-milled elemental Ni and Ti powder mixtures is investigated in this study. An 80-mm diameter single-stage gas-gun was employed to perform time-resolved measurements using piezoelectric stress gauges to monitor the stress wave profiles at the front (input) and back (propagated) surfaces of the {approx}50% dense Ni+Ti powder mixture compacts. Shock-compression experiments performed on as-blended Ni+Ti powder mixtures in the range of 522 m/s to 1046 m/s impact velocities, showed characteristics of powder densification at measured input stress of 1.12 GPa, and shock-induced chemical reaction indicated by volume expansion and wave speed increase at measured input stress of 3.2 GPa. Ball-milled powder mixtures also showed similar evidence of shock-induced chemical reaction at stresses exceeding 3 GPa, with the degree of expansion depending on the energy release associated with the reaction in the powder mixtures ball-milled for various times. The measured high-pressure expanded state was observed to correspond to that calculated using a thermodynamic 'ballotechnic' model for shock-induced formation of reaction products in as-blended and ball-milled powder mixtures. The results of instrumented experiments provide clear evidence of shock-induced chemical reactions occurring in Ni+Ti powder mixtures (following densification at stresses exceeding the crush strength) as evidenced by  More>>
Authors:
Xiao, Xu; Thadhani, Naresh N [1] 
  1. School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332-0245 (United States)
Publication Date:
Aug 15, 2004
Product Type:
Journal Article
Resource Relation:
Journal Name: Journal of Applied Physics; Journal Volume: 96; Journal Issue: 4; Other Information: DOI: 10.1063/1.1773380; (c) 2004 American Institute of Physics; Country of input: International Atomic Energy Agency (IAEA); PBD: 15 Aug 2004
Subject:
36 MATERIALS SCIENCE; CHEMICAL REACTIONS; COMPACTS; NICKEL; PIEZOELECTRICITY; POWDER METALLURGY; POWDERS; PRESSURE RANGE GIGA PA; SHOCK WAVES; STRESS ANALYSIS; TIME RESOLUTION; TITANIUM
OSTI ID:
20619096
Country of Origin:
United States
Language:
English
Other Identifying Numbers:
Journal ID: ISSN 0021-8979; JAPIAU; TRN: US04B2795062594
Submitting Site:
INIS
Size:
page(s) 2000-2009
Announcement Date:
Aug 21, 2005

Citation Formats

Xiao, Xu, and Thadhani, Naresh N. Investigation of shock-induced reaction behavior of as-blended and ball-milled Ni+Ti powder mixtures using time-resolved stress measurements. United States: N. p., 2004. Web. doi:10.1063/1.1773380.
Xiao, Xu, & Thadhani, Naresh N. Investigation of shock-induced reaction behavior of as-blended and ball-milled Ni+Ti powder mixtures using time-resolved stress measurements. United States. https://doi.org/10.1063/1.1773380
Xiao, Xu, and Thadhani, Naresh N. 2004. "Investigation of shock-induced reaction behavior of as-blended and ball-milled Ni+Ti powder mixtures using time-resolved stress measurements." United States. https://doi.org/10.1063/1.1773380.
@misc{etde_20619096,
title = {Investigation of shock-induced reaction behavior of as-blended and ball-milled Ni+Ti powder mixtures using time-resolved stress measurements}
author = {Xiao, Xu, and Thadhani, Naresh N}
abstractNote = {The shock-compression response of as-blended and ball-milled elemental Ni and Ti powder mixtures is investigated in this study. An 80-mm diameter single-stage gas-gun was employed to perform time-resolved measurements using piezoelectric stress gauges to monitor the stress wave profiles at the front (input) and back (propagated) surfaces of the {approx}50% dense Ni+Ti powder mixture compacts. Shock-compression experiments performed on as-blended Ni+Ti powder mixtures in the range of 522 m/s to 1046 m/s impact velocities, showed characteristics of powder densification at measured input stress of 1.12 GPa, and shock-induced chemical reaction indicated by volume expansion and wave speed increase at measured input stress of 3.2 GPa. Ball-milled powder mixtures also showed similar evidence of shock-induced chemical reaction at stresses exceeding 3 GPa, with the degree of expansion depending on the energy release associated with the reaction in the powder mixtures ball-milled for various times. The measured high-pressure expanded state was observed to correspond to that calculated using a thermodynamic 'ballotechnic' model for shock-induced formation of reaction products in as-blended and ball-milled powder mixtures. The results of instrumented experiments provide clear evidence of shock-induced chemical reactions occurring in Ni+Ti powder mixtures (following densification at stresses exceeding the crush strength) as evidenced by increased shock velocity and generation of an expanded state of products resulting from the associated heat of reaction.}
doi = {10.1063/1.1773380}
journal = []
issue = {4}
volume = {96}
journal type = {AC}
place = {United States}
year = {2004}
month = {Aug}
}