Development of Novel Multilayer Materials for Impact Applications: a Combined Numerical and Experimental Approach
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Date
2009
Authors
Taşdemirci, Alper
Journal Title
Journal ISSN
Volume Title
Publisher
Elsevier Ltd.
Open Access Color
GOLD
Green Open Access
Yes
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
A well-verified and validated numerical model was used to investigate stress wave propagation in a multilayer material subjected to impact loading. The baseline material consisted of a ceramic faceplate and composite backing plate separated by a rubber or teflon foam interlayer: several variants were investigated in which the number, type, and total thicknesses of the interlayers were altered. Comparison of the variants showed that the use of multiple teflon foam interlayers could drastically reduce the average stress in the multilayer material. Based on the numerical results, further experimental work was undertaken upon one of the variants. Very large and unexpected tensile stress oscillations were observed in the ceramic layers, leading to a refinement of the numerical model which successfully reproduced the oscillations and also demonstrated that separation of the sample layers led to trapping of the stress wave within the layers. Use of the validated numerical model allowed detailed analysis of the processes of wave transmission and demonstrates the important synergy that can exist between experimental and modeling studies. The current study provides a valuable starting point for designing future multilayer materials with specific, controlled properties.
Description
Keywords
High strain rate, LS-DYNA, Mechanical properties, Multilayer structures, Numerical simulation, High strain rate, Mechanical properties, Numerical simulation, Multilayer structures, LS-DYNA
Fields of Science
0203 mechanical engineering, 02 engineering and technology, 0210 nano-technology
Citation
Taşdemirci, A., and Hall, I.W. (2009). Development of novel multilayer materials for impact applications: A combined numerical and experimental approach. Materials and Design, 30(5), 1533-1541. doi:10.1016/j.matdes.2008.07.054
WoS Q
Q1
Scopus Q
Q1

OpenCitations Citation Count
31
Source
Materials and Design
Volume
30
Issue
5
Start Page
1533
End Page
1541
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Citations
CrossRef : 20
Scopus : 41
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Mendeley Readers : 67
SCOPUS™ Citations
41
checked on Apr 27, 2026
Web of Science™ Citations
33
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Page Views
1513
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Downloads
655
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