4.6 Article

In Situ Grafted Composite Nanoparticles-Reinforced Polyurethane Elastomer Composites with Excellent Continuous Anti-Impact Performance

期刊

MATERIALS
卷 14, 期 20, 页码 -

出版社

MDPI
DOI: 10.3390/ma14206195

关键词

polyurethane elastomer; composite nanoparticles; continuous impact resistance

资金

  1. Hunan Provincial Natural Science Foundation of China [2021JJ30646, 2020JJ4086, 2020JJ5530]
  2. Educational Commission of Hunan Province of China [20B579, 19B570]
  3. Innovation Team of Hunan Province [2018RS3091]
  4. National Natural Science Foundation of China [12027813]
  5. High Technology Research and Development Program of Hunan Province of China [2022GK4038]

向作者/读者索取更多资源

Experimental tests and analysis have shown that compared with pure PUE, A-WS2@MWCNTs/PUE exhibits significantly improved static compressive strength and dynamic yield stress by 144.2% and 331.7% respectively. The composite filler enhances the interfacial interaction and synergy within the material, preventing crack growth and expansion, leading to better impact resistance and potential wider applications in protective fields.
Polyurethane elastomer (PUE) has attracted much attention in impact energy absorption due to its impressive toughness and easy processability. However, the lack of continuous impact resistance limits its wider application. Here, an amino-siloxane (APTES) grafted WS2-coated MWCNTs (A-WS2@MWCNTs) filler was synthesized, and A-WS2@MWCNTs/PUE was prepared by using the filler. Mechanical tests and impact damage characterization of pure PUE and composite PUE were carried out systematically. Compared with pure PUE, the static compressive strength and dynamic yield stress of A-WS2@MWCNTs/PUE are increased by 144.2% and 331.7%, respectively. A-WS2@MWCNTs/PUE remains intact after 10 consecutive impacts, while the pure PUE appears serious damage after only a one-time impact. The improvement of mechanical properties of A-WS2@MWCNTs/PUE lies in the interfacial interaction and synergy of composite fillers. Microscopic morphology observation and damage analysis show that the composite nanofiller has suitable interfacial compatibility with the PUE matrix and can inhibit crack growth and expansion. Therefore, this experiment provides an experimental and theoretical basis for the preparation of PUE with excellent impact resistance, which will help PUE to be more widely used in the protection field.

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