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Vibration damping mechanism of CuAlMn/polymer/carbon nanomaterials multi-scale composites

Authors :
Jialiang Yin
Yin Xiong
Zhenghong Zhu
Zhaohan Jiang
Zhou Li
Zixiang Dai
Shen Gong
Pang Yongjie
Fanmengjing Wang
Source :
Composites Part B: Engineering. 199:108266
Publication Year :
2020
Publisher :
Elsevier BV, 2020.

Abstract

A novel CuAlMn/polymer/carbon nanomaterials multi-scale composite with damping capability was successfully prepared. These composite materials composed of a CuAlMn memory alloy foam skeleton and a polymer matrix, which was in turn reinforced with different carbon nanomaterials. Experiment results show that the loss factor of CuAlMn/polymer/CNT composite is above 0.1, while the loss factor of CuAlMn/polymer/(Au@CNT + CNF + GNS) composite is higher than 0.12 over the entire temperature range, with the highest value reaching about 0.15. Also, it can be seen that the storage modulus of CuAlMn/polymer composite is above 3500 MPa, while CuAlMn/polymer/(Au@CNT + CNF + GNS) composite is about 1000 MPa. The loss factor for CuAlMn/polymer/(Au@CNT + CNF + GNS) composite is highest, and the storage modulus of it is lowest. A three-phase model was introduced to analyze the damping mechanism of the composite. The results indicate that the damping performance of the prepared composites is mainly affected by interfacial loss, which can be effectively improved by increasing the mismatch of elastic modulus near the interface and/or increasing the interfacial area. On these bases, the optimal performance of the composite material was predicted by calculation and simulation. This multi-scale composite offers a tremendously promising future, which needs further thorough exploration.

Details

ISSN :
13598368
Volume :
199
Database :
OpenAIRE
Journal :
Composites Part B: Engineering
Accession number :
edsair.doi...........f6c35b878e3f57d6d7dc55140d60de25
Full Text :
https://doi.org/10.1016/j.compositesb.2020.108266