TY - JOUR
T1 - Vibration isolation via a scissor-like structured platform
AU - Sun, Xiuting
AU - Jing, Xingjian
AU - Xu, Jian
AU - Cheng, Li
PY - 2014/4/28
Y1 - 2014/4/28
N2 - More and more attentions are attracted to the analysis and design of nonlinear vibration control/isolation systems for better isolation performance. In this study, an isolation platform with n-layer scissor-like truss structure is investigated to explore novel design of passive/semi-active/active vibration control/isolation systems and to exploit potential nonlinear benefits in vibration suppression. Due to the special scissor-like structure, the dynamic response of the platform has inherent nonlinearities both in equivalent damping and stiffness characteristics (although only linear components are applied), and demonstrates good loading capacity and excellent equilibrium stability. With the mathematical modeling and analysis of the equivalent stiffness and damping of the system, it is shown that: (a) the structural nonlinearity in the system is very helpful in vibration isolation, (b) both equivalent stiffness and damping characteristics are nonlinear and could be designed/adjusted to a desired nonlinearity by tuning structural parameters, and (c) superior vibration isolation performances (e.g., quasi-zero stiffness characteristics etc.) can be achieved with different structural parameters. This scissor-like truss structure can potentially be employed in different engineering practices for much better vibration isolation or control. © 2014 Elsevier Ltd. All rights reserved.
AB - More and more attentions are attracted to the analysis and design of nonlinear vibration control/isolation systems for better isolation performance. In this study, an isolation platform with n-layer scissor-like truss structure is investigated to explore novel design of passive/semi-active/active vibration control/isolation systems and to exploit potential nonlinear benefits in vibration suppression. Due to the special scissor-like structure, the dynamic response of the platform has inherent nonlinearities both in equivalent damping and stiffness characteristics (although only linear components are applied), and demonstrates good loading capacity and excellent equilibrium stability. With the mathematical modeling and analysis of the equivalent stiffness and damping of the system, it is shown that: (a) the structural nonlinearity in the system is very helpful in vibration isolation, (b) both equivalent stiffness and damping characteristics are nonlinear and could be designed/adjusted to a desired nonlinearity by tuning structural parameters, and (c) superior vibration isolation performances (e.g., quasi-zero stiffness characteristics etc.) can be achieved with different structural parameters. This scissor-like truss structure can potentially be employed in different engineering practices for much better vibration isolation or control. © 2014 Elsevier Ltd. All rights reserved.
KW - DELAYED-RESONATOR
KW - SUSPENSION SYSTEM
KW - DESIGN
UR - http://www.scopus.com/inward/record.url?scp=84893736737&partnerID=8YFLogxK
UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-84893736737&origin=recordpage
U2 - 10.1016/j.jsv.2013.12.025
DO - 10.1016/j.jsv.2013.12.025
M3 - RGC 21 - Publication in refereed journal
SN - 0022-460X
VL - 333
SP - 2404
EP - 2420
JO - Journal of Sound and Vibration
JF - Journal of Sound and Vibration
IS - 9
ER -