Tunable Energy Absorbing Property of Bilayer Amorphous Glass Foam via Dry Powder Printing

Author:

Park JungjinORCID,Howard John,Edery Avi,DeMay Matthew,Wereley NormanORCID

Abstract

The research in this paper entails the design of material systems with tunable energy-absorbing properties. Hollow glass microspheres of different densities are layered using dry powder printing and subsequently sintered to form a cellular structure. The tunability of the bilayer foams is investigated using various combinations of hollow microspheres with different densities and different thickness ratios of the layers. The mechanical responses to quasi-static uniaxial compression of the bilayer foams are also investigated. These bilayer samples show different mechanical responses from uniform samples with a distinctive two-step stress–strain profile that includes a first and second plateau stress. The strain where the second plateau starts can be tuned by adjusting the thickness ratio of the two layers. The resulting tunable stress–strain profile demonstrates tunable energy absorption. The tunability is found to be more significant if the density values of each layer differ largely. For comparison, bilayer samples are fabricated using epoxy at the interface instead of a sintering process and a different mechanical response is shown from a sintered sample with the different stress–strain profile. Designing the layered foams allows tuning of the stress–strain profile, enabling desired energy-absorbing properties which are critical in diverse impact conditions.

Funder

Maryland Industrial Partnerships Program

Publisher

MDPI AG

Subject

General Materials Science

Reference40 articles.

1. Peak acceleration during impact with helmet materials: Effects of impactor mass and speed;Hutchinson;Eur. J. Sport Sci.,2014

2. Quasistatic and high strain rate uniaxial compressive response of polymeric structural foams;Subhash;Int. J. Impact Eng.,2006

3. Applications of polymer matrix syntactic foams;Gupta;JOM,2014

4. Negroni, C. (The New York Times, 2012). Questioning Safety of Heavy Passengers on Planes, The New York Times.

5. Soft mechanical metamaterials with unusual swelling behavior and tunable stress-strain curves;Zhang;Sci. Adv.,2018

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