Simulation and Analysis of Multi-layered AL-St Composite Materials Under High Velocity Impact

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Duration: 24m
Enrolled:0
level:Intermediate

Simulation and Analysis of Multi-layered AL-St Composite Materials Under High Velocity Impact

Course Content

Simulation Files

  • Tutorial Video
    00:00
  • Modeling Files

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Who this product is for :

  • Civil Engineers
  • Mechanical Engineers
  • Engineering students

File collection

Simulation Files

  • Tutorial Video
    00:00
  • Modeling Files

Student Ratings & Reviews

No Review Yet
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Description

Papers abstract:

Finite element (FE) simulations using Abaqus/Explicit are performed to study the deformation behavior of materials under impact loading. Various configurations including monolithic and multi-layered plate having combinations of ceramic, metal and composite material layers are investigated to determine the critical failure velocity Vcf as a function of layer thickness and stacking. While cylindrical impactor is assumed to be rigid, Johnson-Cook (JC), Johnson-Holmquist (JH2) and Hashin 3D and Puck criteria is used to characterize damage/failure in metal (Al and steel), ceramic (SiC) and composite (carbon fiber/epoxy) layer respectively. Constitutive equations for composite material are supplied via user subroutine VUMAT. The results of FEM simulations reveal that Ceramic-Al-Carbon fiber/epoxy multilayer plate provides most desirable combination with higher critical failure velocity, lower average density, lower pressure and displacement at the back plate as compared to other material combinations considered in this work. Moreover, the analysis presented shows that the numerical approach developed can be used as a tool to predict the geometry and material combinations of a multilayer system to improve its resistance against impact loading.

 

Product Overview:
This product provides a full simulation pipeline for analyzing the impact behavior of ceramic-metal-polymer layered composites, mimicking real-world defense applications. The model captures progressive failure through brittle, ductile, and composite layers using accurate material data. Key simulation steps include:

  • Construction of individual 3D solid parts for each material layer
  • Composite layup creation for CFRP with alternating orientations
  • Application of Johnson-Holmquist and Johnson-Cook material models
  • Explicit dynamic step setup with projectile initial velocity
  • Input file editing to insert custom ceramic failure models
  • Damage visualization using SDV and failure variables.

 

In this tutorial, projectile impacts on a ceramic/steel/aluminum/CFRP layered structure are simulated, according to data from the work of Sharma et al.

More information

  • This tutorial builds upon validated research to show users how to replicate impact simulations on layered composites using Abaqus. It covers advanced topics like composite layup modeling, input file manipulation, and high-fidelity material failure definitions. The workflow bridges experimental data with numerical techniques, offering a real-world modeling experience. Users benefit from both ready-to-use files and the educational walkthrough, making this suitable for professionals and students alike. It’s ideal for those studying impact mechanics, defense applications, or advanced composite materials.

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Material Includes

  • Package Includes the following items:
  • Simulation files:
  • Abaqus files (The INP files are applicable to all versions):
  • CAE
  • INP
  • JNL
  • Instructional video:
  • Concise 24-minute guide to model setup and outputs for multi-layered projectile impact simulation.

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