Investigation of hypervelocity impact behavior of projectile on metal plates
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newlineABSTRACT
newlineHypervelocity impact and protection play a critical role in aerospace and planetary
newlinedefense. One prominent application of hypervelocity impact is protecting spacecraft
newlinefrom space debris. In recent years, meteoroids and orbital debris (MOD) have emerged
newlineas significant threats to spacecraft.
newlineThis study employs finite element analysis to evaluate the impact performance of
newlinemonolithic and double-layered plates subjected to cylindrical and spherical projectiles.
newlineThe simulations were conducted using dynamic temperature-displacement explicit
newlineanalysis in the commercial finite element software ABAQUS. Plates with varying
newlinethicknesses (6 mm, 10 mm, and 12 mm) were analyzed, and their responses were
newlinecompared under identical projectile configurations. The Johnson-Cook (JC)
newlineconstitutive strength and damage model characterized the material behavior of the
newlinetarget and projectile, while the Mie-Grüneisen equation of state described material
newlineresponses under high-pressure conditions. The monolithic plate exhibited 2.42% higher
newlineimpact resistance than the double-layered plate for cylindrical projectiles. Conversely,
newlinedouble-layered plates showed 3.63% greater ballistic resistance than monolithic plates
newlinefor spherical projectiles. For spherical projectiles, the impact resistance of plates with
newlinethicknesses of 6 mm, 10 mm, and 12 mm was 15%, 30%, and 37.75% greater,
newlinerespectively, than that of cylindrical projectiles. For cylindrical projectiles, impact
newlineresistance increased by 1.89%, 4.73%, and 18.34% at incidence angles of 15°, 30°, and
newline45°, respectively, compared to normal impact. For spherical projectiles, impact
newlineresistance increased by 1.81%, 8.63%, and 15.45% at incidence angles of 15°, 30°, and
newline45°, respectively, compared to normal impact. Additionally, debris cloud morphology
newlinevaried based on projectile shape: A bulge formed at the leading edge of the debris cloud
newlinefor spherical projectiles. An outer cone developed at the leading edge of the debris cloud
newlinefor cylindrical projectiles.
newlineThese findings provide valuable insights