48 research outputs found
Microstructural characterization of pre-shocked and post-shocked powder
Issued as Monthly cost status reports [nos. 1-16], and Final technical report, Project E-18-X0
Mechanisms of shock-initiated intermetallic reactions
Issued as Final report, Project E-18-69
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Unraveling the Role of Interfaces on the Spall Failure of Cu/Ta Multilayered Systems.
Molecular dynamics (MD) simulations are carried out to investigate the effects of the type and spacing of FCC/BCC interfaces on the deformation and spall behavior. The simulations are carried out using model Cu/Ta multilayers with six different types of interfaces. The results suggest that interface type can significantly affect the structure and intensity of the incoming shock wave, change the activated slip systems, alter dislocation slip and twinning behavior, affect where and how voids are nucleated during spallation and the resulting spall strength. Moreover, the above aspects are significantly affected by the interface spacing. A transition from homogeneous to heterogeneous dislocation nucleation occurs as the interface spacing is decreased to 6 nm. Depending on interface type and spacing, damage (voids) nucleation and spall failure is observed to occur not only at the Cu/Ta interfaces, but also in the weaker Cu layer interior, or even in the stronger Ta layer interior, although different mechanisms underlie each of these three distinct failure modes. These findings point to the fact that, depending on the combination of interface type and spacing, interfaces can lead to both strengthening and weakening of the Cu/Ta multilayered microstructures
Wear Properties of A Shock Consolidated Metallic Glass and Glass-Crystalline Mixtures
Powder flakes prepared from 50 μm thick melt spun ribbons of Markomet 1064 (Ni_(52.5)Mo_(38)Cr_8 B_(1.5) wt%) were shock consolidatedin the unannealed and annealed condition. The unannealed flakes (microhardness 933 kg/mm^2) are amorphous while flakes annealed at 900ºC for 2 hours have an fcc structure with a grain size of 0.3 μm and microhardness of 800 kg/mm^2. The shock consolidated amorphous powder compact (250 kJ/kg shock energy) shows no crystal peaks in an X-ray diffractometer scan. Compacts of annealed powder (400 to 600 kJ/kg shock energies) contain amorphous material (18-21%) which was rapidly quenched from the melt formed at interparticle regions during the consolidation process. The microhardness of the amorphous interparticle material is 1100 kg/mm^2. Wear properties of the compacts measured in low velocity pin on disk tests show low average dynamic friction values (∿0.03). The 60 hour cumulative wear appears to correlate with the energy of shock compaction and surface porosity of the compacts rather than the metallic glass content
Shock recovery experiments for dynamic property measurements on tantalum and tantalum alloys
Issued as final reportLawrence Livermore Laborator
Proposal for material synthesis analysis of pre-shocked powder samples
Issued as Final report, Project E-18-X52Final report has author: V. Subramania
Dynamic synthesis and processing of high temperature materials
Issued as Progress reports [nos. 1-2], and Final report, Project E-18-65
Electric-field assisted combustion synthesis of high-density powder mix compacts
Issued as final repor
Shock consolidation of magnetic powers
Issued as final reportColdwatt inc