4.6 Article

Investigation of structure and mechanical properties under quasi-static and planar impact loading of aluminum composite reinforced with Al2O3 nanoparticles of different shape

Journal

MATERIALS TODAY COMMUNICATIONS
Volume 29, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.mtcomm.2021.102942

Keywords

Aluminum; Accumulative roll bonding; Nanostructured materials; Composite; Microstructure; Mechanical properties; Planar impact loading; Free surface velocity profile

Funding

  1. State Research Assignment Institute of Strength Physics and Materials Science of Siberian Branch of Russian Academic Science [FWRW-2021-0004]
  2. Moscow region explosion Common Use Center (Institute of Problems of Chemical Physics of Russian Academic Science) [AAAA-A19-119071190040-5]

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The study found that alumina nanoparticles tend to agglomerate in Al-based nanocomposites, with the size of agglomerates depending on the nanoparticle shape and number of ARB cycles. Introducing nanoparticles into aluminum helps in structural refinement, particularly in composites reinforced with separately distributed ball-shaped nanoparticles.
We report on an investigation of the structure and mechanical properties under quasi-static and planar impact loading of Al-based nanocomposites reinforced with alumina nanoparticles of ball, plate and sheet shape fabricated through accumulative roll bonding (ARB) for 4 and 10 cycles. The distribution of the nanoparticles and structural characteristics of the matrix were revealed using transmission electron microscopy. The micro hardness, ultimate and yield strengths and ductility under tension at the strain rate of 1 x 10(-3) s(-1) were measured as mechanical characteristics under the quasi-static loading. The maximum pressure of the impact compression, Hugoniot elastic limit and spall strength were calculated using the free surface velocity data recorded during the impact by aluminum flyer-plates with the impact velocity of 630 +/- 30 m/s. Our results show that nanoparticles tend to agglomeration inside the composite. The size of agglomerates depends on the nano particle shape and a number of ARB cycles. Only the part of the ball-shaped nanoparticles can be distributed uniformly as separate nanoparticles after 10 ARB cycles. The introduction of the nanoparticles into aluminum assists in the structural refinement in the nanocomposites relative to alumina-free aluminum. This effect is mostly exhibited in the composite reinforced with the ball-shaped nanoparticles, some of which are distributed separately. The nanoparticle of different shape affects the mechanical properties ambivalently under both quasi-static and shock-wave conditions due to their various distribution in the matrix and different properties of the agglomerates. The spall strength decreases with the nanoparticle introduction because the particles and their agglomerates are the stress concentrators and crack origins.

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