Bioinspired Structural Composite Flexible Material with High Cushion Performance
Abstract: Impacts occur everywhere, and they pose a serious threat to human health and production safety. Flexible materials with efficient cushioning and energy absorption are ideal candidates to provide protection from impacts. Despite the high demand, the cushioning capacity of protective materials is still limited. In this study, an integrated bionic strategy is proposed, and a bioinspired structural composite material with highly cushioning performance is developed on the basis of this strategy. The results demonstrated that the integrated bionic material, an S‐spider web‐foam, has excellent energy storage and dissipation as well as cushioning performance. Under impact loading, S‐spider web‐foam can reduce peak impact forces by a factor of 3.5 times better than silicone foam, achieving unprecedented cushioning performance. The results of this study deepen the understanding of flexible cushioning materials and may provide new strategies and inspiration for the preparation of high‐performance flexible cushioning materials.
- Standort
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Deutsche Nationalbibliothek Frankfurt am Main
- Umfang
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Online-Ressource
- Sprache
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Englisch
- Erschienen in
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Bioinspired Structural Composite Flexible Material with High Cushion Performance ; day:03 ; month:12 ; year:2023 ; extent:12
Advanced science ; (03.12.2023) (gesamt 12)
- Urheber
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Zhuang, Zhiqiang
Qian, Zhihui
Wang, Xu
Xu, Xiaolin
Chen, Boya
Song, Guangsheng
Liu, Xiangyu
Ren, Lei
Ren, Luquan
- DOI
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10.1002/advs.202304947
- URN
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urn:nbn:de:101:1-2023120414384435031707
- Rechteinformation
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Open Access; Der Zugriff auf das Objekt ist unbeschränkt möglich.
- Letzte Aktualisierung
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15.08.2025, 07:25 MESZ
Datenpartner
Deutsche Nationalbibliothek. Bei Fragen zum Objekt wenden Sie sich bitte an den Datenpartner.
Beteiligte
- Zhuang, Zhiqiang
- Qian, Zhihui
- Wang, Xu
- Xu, Xiaolin
- Chen, Boya
- Song, Guangsheng
- Liu, Xiangyu
- Ren, Lei
- Ren, Luquan