Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7214528 | Composites Science and Technology | 2018 | 26 Pages |
Abstract
The dynamic mechanical properties of magnetorheological plastomers (MRPs) were investigated by using a Split Hopkinson Pressure Bar (SHPB) equipped with an electromagnetic accessory. Both the SHPB and rheological test indicated the mechanical properties of MRPs increased with strain rate, which demonstrated the typical rate dependent stiffening performance. With strain rate increased from 1580 sâ1 to 7900 sâ1, the maximum stress of MRPs increased from 31â¯MPa to 66â¯MPa. MRPs also exhibited a magnetic strengthening behavior due to the MR effect. Keeping the strain rate at 6500 sâ1, the maximum stress increased 19.8â¯MPa as the magnetic flux density increased from 0 to 480â¯mT and the increase rate of maximum stress reached to 34%. Moreover, a high-speed camera was also used to capture the deformation of MRPs in both low and high strain rates. Based on the above results, a possible mechanism was proposed to investigate the dynamic mechanical properties of the MRPs. The synergistic effect between the magnetic field dependent particle structure evolution and polymer chain deformation were responded for the MR behavior and strain rate stiffening characteristic, respectively.
Related Topics
Physical Sciences and Engineering
Engineering
Engineering (General)
Authors
Jiaqi Xu, Pengfei Wang, Haoming Pang, Yunpeng Wang, Jie Wu, Shouhu Xuan, Xinglong Gong,