Buckling Metamaterials for Extreme Vibration Damping

被引:40
作者
Dykstra, David M. J. [1 ]
Lenting, Coen [1 ]
Masurier, Alexandre [1 ]
Coulais, Corentin [1 ]
机构
[1] Univ Amsterdam, Inst Phys, Sci Pk 904, NL-1098 XH Amsterdam, Netherlands
基金
欧洲研究理事会;
关键词
buckling; dissipation; mechanical metamaterials; structural materials; vibration damping; COMPOSITE-MATERIALS; STIFFNESS; ISOLATOR; BEHAVIOR; BEAM;
D O I
10.1002/adma.202301747
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Damping mechanical resonances is a formidable challenge in an increasing number of applications. Many passive damping methods rely on using low stiffness, complex mechanical structures or electrical systems, which render them unfeasible in many of these applications. Herein, a new method for passive vibration damping, by allowing buckling of the primary load path in mechanical metamaterials and lattice structures, is introduced, which sets an upper limit for vibration transmission: the transmitted acceleration saturates at a maximum value in both tension and compression, no matter what the input acceleration is. This nonlinear mechanism leads to an extreme damping coefficient tan & delta; & AP; 0.23 in a metal metamaterial-orders of magnitude larger than the linear damping coefficient of traditional lightweight structural materials. This principle is demonstrated experimentally and numerically in free-standing rubber and metal mechanical metamaterials over a range of accelerations. It is also shown that damping nonlinearities even allow buckling-based vibration damping to work in tension, and that bidirectional buckling can further improve its performance. Buckling metamaterials pave the way toward extreme vibration damping without mass or stiffness penalty, and, as such, could be applicable in a multitude of high-tech applications, including aerospace, vehicles, and sensitive instruments.
引用
收藏
页数:12
相关论文
共 68 条
[1]   Hyper-damping properties of a stiff and stable linear oscillator with a negative stiffness element [J].
Antoniadis, I. ;
Chronopoulos, D. ;
Spitas, V. ;
Koulocheris, D. .
JOURNAL OF SOUND AND VIBRATION, 2015, 346 :37-52
[2]   A review of active vibration and noise suppression of plate-like structures with piezoelectric transducers [J].
Aridogan, Ugur ;
Basdogan, Ipek .
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2015, 26 (12) :1455-1476
[3]  
Ashby M. F., 2016, Materials Selection in Mechanical Design
[4]   Applications of Nonlinearity in Passive Vibration Control: A Review [J].
Balaji, P. S. ;
Karthik SelvaKumar, K. .
JOURNAL OF VIBRATION ENGINEERING & TECHNOLOGIES, 2021, 9 (02) :183-213
[5]  
Baz AM., 2019, ACTIVE PASSIVE VIBRA
[6]   Flexible mechanical metamaterials [J].
Bertoldi, Katia ;
Vitelli, Vincenzo ;
Christensen, Johan ;
van Hecke, Martin .
NATURE REVIEWS MATERIALS, 2017, 2 (11)
[7]   Negative Poisson's Ratio Behavior Induced by an Elastic Instability [J].
Bertoldi, Katia ;
Reis, Pedro M. ;
Willshaw, Stephen ;
Mullin, Tom .
ADVANCED MATERIALS, 2010, 22 (03) :361-+
[8]   Bayesian Machine Learning in Metamaterial Design: Fragile Becomes Supercompressible [J].
Bessa, Miguel A. ;
Glowacki, Piotr ;
Houlder, Michael .
ADVANCED MATERIALS, 2019, 31 (48)
[9]   On the jump-up and jump-down frequencies of the Duffing oscillator [J].
Brennan, M. J. ;
Kovacic, I. ;
Carrella, A. ;
Waters, T. P. .
JOURNAL OF SOUND AND VIBRATION, 2008, 318 (4-5) :1250-1261
[10]   Static analysis of a passive vibration isolator with quasi-zero-stiffness characteristic [J].
Carrella, A. ;
Brennan, M. J. ;
Waters, T. P. .
JOURNAL OF SOUND AND VIBRATION, 2007, 301 (3-5) :678-689