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February 9, 2026Journal of Applied Physics0 citations

Al–W gradient density materials—Processing and dynamic ramp compression

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CMC. G. MeisnerJNJ. H. NguyenMAM. R. Armstrong

Key Points

  • The aim is to develop an efficient method for producing Al–W gradient density materials with significant density increases and no intermetallic formation.
  • Developed a fabrication technique for Al–W composites with controlled density gradients.
  • Examined the effects of pressure and temperature on aluminum-dominated densification behavior.
  • Conducted dynamic compression experiments to test material properties under extreme conditions.
  • Performed hydrodynamic simulations to validate experimental findings.
  • Achieved a fourfold increase in density (2.7–11 g/cm3) across the Al–W composition range.
  • Demonstrated successful shock ramp compressions consistent with design expectations.
  • Validated hydrodynamics simulations showed excellent agreement with experiments.

Abstract

Materials with high-density gradients are desired for controlling loading paths in dynamic compression, important for studying material properties in extreme conditions and inertial confinement fusion. The large density difference between Al and W makes them ideal choices for producing gradient density materials, but their extremely different melting temperatures make them challenging to fabricate simultaneously. We report a method for producing Al–W porosity-free materials with a fourfold increase in density (2.7–11 g/cm3) across the composition range, from Al-rich to W-rich, without intermetallic phase formation. This was achieved by understanding the aluminum-dominated densification behavior and examining the influence of pressure and temperature on the densification of Al–W composites. Dynamic compression experiments conducted with the Al–W gradient density material produced shock ramp compressions as expected based on the designed composition, and the performed hydrodynamics simulations showed excellent agreement with experimental results. The results demonstrate that current activated pressure-assisted densification allows for the easy and rapid fabrication of gradient density materials with significant density gradients and tailored compositions, facilitating precise control of the loading paths. These materials have the potential to create customized pressure drives for advancing the fields of material science in extreme environments and dynamic compression.

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Cite This Study

Meisner et al. (2025) studied this question.

synapsesocial.com/papers/69897a06f0ec2af6756e833ahttps://doi.org/10.1063/5.0261507
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