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Periodic architecture for high performance shock absorbing composites.


ABSTRACT: A novel composite architecture consisting of a periodic arrangement of closely-spaced spheres of a stiff material embedded in a soft matrix is proposed for extremely high damping and shock absorption capacity. Efficacy of this architecture is demonstrated by compression loading a composite, where multiple steel balls were stacked upon each other in a polydimethylsiloxane (PDMS) matrix, at a low strain-rate of 0.05?s?¹ and a very high strain-rate of >2400?s?¹. The balls slide over each other upon loading, and revert to their original position when the load is removed. Because of imposition of additional strains into the matrix via this reversible, constrained movement of the balls, the composite absorbs significantly larger energy and endures much lesser permanent damage than the monolithic PDMS during both quasi-static and impact loadings. During the impact loading, energy absorbed per unit weight for the composite was ~8 times larger than the monolithic PDMS.

SUBMITTER: Misra A 

PROVIDER: S-EPMC3690386 | biostudies-literature | 2013

REPOSITORIES: biostudies-literature

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Periodic architecture for high performance shock absorbing composites.

Misra Abha A   Kumar Praveen P  

Scientific reports 20130101


A novel composite architecture consisting of a periodic arrangement of closely-spaced spheres of a stiff material embedded in a soft matrix is proposed for extremely high damping and shock absorption capacity. Efficacy of this architecture is demonstrated by compression loading a composite, where multiple steel balls were stacked upon each other in a polydimethylsiloxane (PDMS) matrix, at a low strain-rate of 0.05 s⁻¹ and a very high strain-rate of >2400 s⁻¹. The balls slide over each other upon  ...[more]

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