Extreme damping in composite materials with negative-stiffness inclusions

被引:0
|
作者
R. S. Lakes
T. Lee
A. Bersie
Y. C. Wang
机构
[1] Department of Engineering Physics,Rheology Research Center
[2] Engineering Mechanics Program,undefined
[3] Biomedical Engineering Department,undefined
[4] Materials Science Program,undefined
[5] University of Wisconsin-Madison,undefined
[6] 147 Engineering Research Building,undefined
来源
Nature | 2001年 / 410卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
When a force deforms an elastic object, practical experience suggests that the resulting displacement will be in the same direction as the force. This property is known as positive stiffness1. Less familiar is the concept of negative stiffness, where the deforming force and the resulting displacement are in opposite directions. (Negative stiffness is distinct from negative Poisson's ratio2,3,4,5,6, which refers to the occurrence of lateral expansion upon stretching an object.) Negative stiffness can occur, for example, when the deforming object has stored7 (or is supplied8 with) energy. This property is usually unstable, but it has been shown theoretically9 that inclusions of negative stiffness can be stabilized within a positive-stiffness matrix. Here we describe the experimental realization of this composite approach by embedding negative-stiffness inclusions of ferroelastic vanadium dioxide in a pure tin matrix. The resulting composites exhibit extreme mechanical damping and large anomalies in stiffness, as a consequence of the high local strains that result from the inclusions deforming more than the composite as a whole. Moreover, for certain temperature ranges, the negative-stiffness inclusions are more effective than diamond inclusions for increasing the overall composite stiffness. We expect that such composites could be useful as high damping materials, as stiff structural elements or for actuator-type applications.
引用
收藏
页码:565 / 567
页数:2
相关论文
共 50 条
  • [21] Innovative negative-stiffness inerter-based mechanical networks
    Barredo, Eduardo
    Lopez Rojas, Gilberto
    Mayen, Jan
    Flores-Hernandez, A. A.
    INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2021, 205
  • [22] CONVERGENCE AND STABILITY OF STEP-BY-STEP INTEGRATION FOR MODEL WITH NEGATIVE-STIFFNESS
    CHENG, M
    EARTHQUAKE ENGINEERING & STRUCTURAL DYNAMICS, 1988, 16 (02): : 227 - 244
  • [23] Mechanical performance of negative-stiffness multistable bi-material composites
    Mehreganian, Navid
    Razi, Shayan
    Fallah, Arash S.
    Sareh, Pooya
    ACTA MECHANICA, 2025, 236 (02) : 995 - 1017
  • [24] Wave propagation in elastic and damped structures with stabilized negative-stiffness components
    Drugan, W. J.
    JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2017, 106 : 34 - 45
  • [25] Two-dimensional viscoelastic discrete triangular system with negative-stiffness components
    Wang, YC
    Swadener, JG
    Lakes, RS
    PHILOSOPHICAL MAGAZINE LETTERS, 2006, 86 (02) : 99 - 112
  • [26] Optimal design of negative-stiffness dampers for improved efficiency of structural seismic isolation
    Luo, Hao
    Zhu, Hongping
    Ikago, Kohju
    JOURNAL OF BUILDING ENGINEERING, 2023, 68
  • [27] Rigorous bounds on the effective moduli of composites and inhomogeneous bodies with negative-stiffness phases
    Kochmann, Dennis M.
    Milton, Graeme W.
    JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2014, 71 : 46 - 63
  • [28] COMPOSITE-MATERIALS WHICH EXHIBIT HIGH STIFFNESS AND HIGH VISCOELASTIC DAMPING
    BRODT, M
    LAKES, RS
    JOURNAL OF COMPOSITE MATERIALS, 1995, 29 (14) : 1823 - 1833
  • [29] Enhanced acoustic insulation properties of composite metamaterials having embedded negative stiffness inclusions
    Chronopoulos, D.
    Antoniadis, I.
    Ampatzidis, T.
    EXTREME MECHANICS LETTERS, 2017, 12 : 48 - 54
  • [30] Study on Negative-stiffness Absorbing Vibration Performance for Rest Tremor of Human Arm
    Liu H.
    Liu Q.
    Han D.
    Jiang Y.
    Wu H.
    Hunan Daxue Xuebao/Journal of Hunan University Natural Sciences, 2024, 51 (02): : 227 - 235