A SHPB Experimental Study on Dynamic Mechanical Property of High-Damping Rubber
A split Hopkinson pressure bar (SHPB) experiment was done to examine the feasibility and explosion resistance of high-damping rubber materials developed for use in the area of antiexplosion applications. Through the experiment, the dynamic mechanical properties of the high-damping rubber were determ...
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2018-01-01
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Online Access: | http://dx.doi.org/10.1155/2018/3128268 |
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doaj-cfb0d0d7b4b94fcca961dea958acfc1e2020-11-24T20:57:41ZengHindawi LimitedShock and Vibration1070-96221875-92032018-01-01201810.1155/2018/31282683128268A SHPB Experimental Study on Dynamic Mechanical Property of High-Damping RubberXiudi Li0Huaiyuan Mao1Ke Xu2Chaoyang Miao3Department of Military Facility, The Army Logistics University of PLA, Chongqing 401311, ChinaDepartment of Military Facility, The Army Logistics University of PLA, Chongqing 401311, ChinaDepartment of Military Facility, The Army Logistics University of PLA, Chongqing 401311, ChinaNo. 89800 Army Force of PLA, Beijing 100000, ChinaA split Hopkinson pressure bar (SHPB) experiment was done to examine the feasibility and explosion resistance of high-damping rubber materials developed for use in the area of antiexplosion applications. Through the experiment, the dynamic mechanical properties of the high-damping rubber were determined. The existence of dynamic compressive stress-strain curves at various strain rates of the high-damping rubber have been confirmed from the SHPB experiment. The variation law of the dynamic compression performance with the strain rate is studied, and the energy absorption characteristics of high-damping rubber materials are analyzed. To study the microstructural changes of the high-damping rubber before and after impact, a scanning electron microscopy (SEM) test was done. The results indicated that the stress-strain curve and dynamic modulus of high-damping rubber has an obvious strain rate effect, and the strength and energy absorption ability of high-damping rubber material increases with an increase in the strain rate; the ideal energy absorption efficiency of high-damping rubber can reach 0.8 at a high strain rate and the ideal energy absorption efficiency is more than 0.5 in a wide deformation range; when compared with aluminum foam, the energy absorption effect for high-damping rubber is more apparent. In the event of a compressed deformation or the creation of holes, there may be a change in the main internal mechanism of the high buffering and energy absorption capacity of the high-damping rubber.http://dx.doi.org/10.1155/2018/3128268 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xiudi Li Huaiyuan Mao Ke Xu Chaoyang Miao |
spellingShingle |
Xiudi Li Huaiyuan Mao Ke Xu Chaoyang Miao A SHPB Experimental Study on Dynamic Mechanical Property of High-Damping Rubber Shock and Vibration |
author_facet |
Xiudi Li Huaiyuan Mao Ke Xu Chaoyang Miao |
author_sort |
Xiudi Li |
title |
A SHPB Experimental Study on Dynamic Mechanical Property of High-Damping Rubber |
title_short |
A SHPB Experimental Study on Dynamic Mechanical Property of High-Damping Rubber |
title_full |
A SHPB Experimental Study on Dynamic Mechanical Property of High-Damping Rubber |
title_fullStr |
A SHPB Experimental Study on Dynamic Mechanical Property of High-Damping Rubber |
title_full_unstemmed |
A SHPB Experimental Study on Dynamic Mechanical Property of High-Damping Rubber |
title_sort |
shpb experimental study on dynamic mechanical property of high-damping rubber |
publisher |
Hindawi Limited |
series |
Shock and Vibration |
issn |
1070-9622 1875-9203 |
publishDate |
2018-01-01 |
description |
A split Hopkinson pressure bar (SHPB) experiment was done to examine the feasibility and explosion resistance of high-damping rubber materials developed for use in the area of antiexplosion applications. Through the experiment, the dynamic mechanical properties of the high-damping rubber were determined. The existence of dynamic compressive stress-strain curves at various strain rates of the high-damping rubber have been confirmed from the SHPB experiment. The variation law of the dynamic compression performance with the strain rate is studied, and the energy absorption characteristics of high-damping rubber materials are analyzed. To study the microstructural changes of the high-damping rubber before and after impact, a scanning electron microscopy (SEM) test was done. The results indicated that the stress-strain curve and dynamic modulus of high-damping rubber has an obvious strain rate effect, and the strength and energy absorption ability of high-damping rubber material increases with an increase in the strain rate; the ideal energy absorption efficiency of high-damping rubber can reach 0.8 at a high strain rate and the ideal energy absorption efficiency is more than 0.5 in a wide deformation range; when compared with aluminum foam, the energy absorption effect for high-damping rubber is more apparent. In the event of a compressed deformation or the creation of holes, there may be a change in the main internal mechanism of the high buffering and energy absorption capacity of the high-damping rubber. |
url |
http://dx.doi.org/10.1155/2018/3128268 |
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