Sand Inclusion Composite Structures for Enhanced Ballistic Impact Resistance
Manas Thakur, Nishika Nakka, Jyothsnavi Bommiditha, Sahasra Sai, Surkanti, Srikant Sekhar Padhee

TL;DR
This research explores graded sand inclusion in polymer matrix composites to improve ballistic resistance, demonstrating enhanced mechanical properties and potential for cost-effective protective materials.
Contribution
It introduces a novel graded sand incorporation method in PMSCs, optimizing layer properties for improved ballistic impact resistance.
Findings
Sand content significantly affects mechanical properties.
Optimal sand weight fraction enhances hardness and impact resistance.
Experimental and simulation results confirm improved ballistic performance.
Abstract
With the rising threat of ballistic impacts, it is critical to devise a solution that is both efficient and economical. Recently, Polymer Matrix Sand Composites (PMSCs) have emerged as a viable cost-effective option. This ongoing research focuses on providing stronger protection against diverse ballistic impacts. The study examines the enhancement of ballistic resistance in PMSCs through the graded incorporation of sand. Variable properties are achieved along the thickness by altering the sand particle size and weight fraction in the polymer matrix. The gradation creates a stepwise structure, starting with a dense base impact zone containing abrasive sand particles with a typical size range. This layer is brittle and hard, effectively eroding incoming projectiles. Subsequent layers are less dense, offering tensile strength that reflects stress waves and reduces impact energy while…
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Taxonomy
TopicsTransportation Safety and Impact Analysis · Engineering and Material Science Research · Structural Response to Dynamic Loads
