An Easy-To Self-Healing Smart Design for Increasing Impact Strength and Crashworthiness Resistance of Honeycomb Sandwich Structures
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Date
2022
Authors
Journal Title
Journal ISSN
Volume Title
Publisher
Sage Publications Ltd
Open Access Color
Green Open Access
Yes
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Publicly Funded
No
Abstract
In this paper, the dynamic compression impact response of an aluminum honeycomb core filled with open-cell foams impregnated with self-healing liquid agents was investigated experimentally. Samples were subjected to a variety of impacts in order to determine healing time and self-healing performance. Three different sandwich specimens were developed to evaluate the effectiveness of self-healing. The sandwich specimens are designated as B (empty honeycomb core cells), S (only open-cell soft polyurethane foam-filled honeycomb core cells), and self-healing agent (SHA) (open-cell soft polyurethane foams impregnated with liquid self-healing agents). The test results were presented by considering the crashworthiness and healing efficiency criteria, and the impact characteristics of the samples were compared related to these criteria. After testing, the results demonstrated that the self-healing agent specimens had much fewer buckling deformation and displacement than their counterparts. Significant improvements were achieved in healing efficiencies and crashworthiness evaluation criteria. The peak load and the energy needed to attain peak load are considered healing efficiency criteria. Self-healing agent specimens reached 29.7% and 12.9% more peak loads, and in the energy absorbed up to peak loads 140% and 34.9% higher values than the B and S sandwiches. In the same samples, crushing strain features were acquired as 50% versus 66%, indicating less displacement in self-healing agent specimens than counterparts. The results indicated that an aluminum honeycomb sandwich structure that can heal itself after damage and recover impact characteristics remarkably could be produced practically.
Description
Keywords
Multiple impact, sandwich material, self-healing system, crashworthiness, honeycomb core, fluid impregnated foam, Syntactic Foam, Panels, Optimization, Composites, Behavior
Turkish CoHE Thesis Center URL
Fields of Science
0203 mechanical engineering, 02 engineering and technology, 0210 nano-technology
Citation
WoS Q
Q3
Scopus Q
Q2

OpenCitations Citation Count
1
Source
Proceedings of The Institution of Mechanical Engineers Part L-Journal of Materials-Design and Applications
Volume
237
Issue
Start Page
812
End Page
829
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Citations
CrossRef : 1
Scopus : 2
Captures
Mendeley Readers : 4
SCOPUS™ Citations
1
checked on Feb 03, 2026
Web of Science™ Citations
1
checked on Feb 03, 2026
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OpenAlex FWCI
0.10901628
Sustainable Development Goals
3
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