Localization in Finite Asymmetric Vibro-Impact Chains

被引:2
|
作者
Grinberg, Itay [1 ]
Gendelman, Oleg V. [2 ]
机构
[1] Univ Illinois, Dept Mech Sci & Engn, Urbana, IL 61801 USA
[2] Technion Israel Inst Technol, Fac Mech Engn, Haifa, Israel
来源
基金
以色列科学基金会;
关键词
discrete breathers; discrete solitons; vibro-impact system; stability; monodromy matrix; DISCRETE BREATHERS; DRIVEN; SOLITONS;
D O I
10.1137/17M1151924
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
We explore the dynamics of localized periodic solutions (discrete solitons, or discrete breathers) in a finite one-dimensional chain of asymmetric vibro-impact oscillators. The model is intended to simulate dynamical responses of crack arrays, motion of rigid elements between obstacles, as well as the behavior of arrays of microscopic vibro-impact oscillators. The explored chain involves a parabolic on-site potential with asymmetric rigid constraints (the displacement domain of each particle is finite and asymmetric with respect to its equilibrium position) and a linear nearest-neighbor coupling. When the particle approaches the constraint, it undergoes an impact that satisfies the Newton impact law. The restitution coefficient may be less than unity, and it is the only source of damping in the model. Nonlinearity of the system stems from the impact interactions. We demonstrate that this vibro-impact model allows derivation of exact analytical solutions for the asymmetric discrete breathers, in both conservative and forced-damped settings. The asymmetry makes two types of breathers possible: breathers that impact both constraints or only one constraint. Transition between these two types of breathers occurs through a grazing bifurcation. Special character of the nonlinearity permits explicit derivation of the monodromy matrix. Therefore, the stability of the obtained breather solutions can be studied with the desired accuracy in the framework of simple methods of linear algebra, and with rather moderate computational efforts. All three generic scenarios of loss of stability (pitchfork, Neimark-Sacker, and period doubling bifurcations) are observed.
引用
收藏
页码:1961 / 1988
页数:28
相关论文
共 50 条
  • [41] Auxiliary Sliding Motions of Vibro-Impact Systems
    Gorbikov, S. P.
    [J]. AUTOMATION AND REMOTE CONTROL, 2020, 81 (08) : 1413 - 1430
  • [42] Modelling of high frequency vibro-impact drilling
    Pavlovskaia, Ekaterina
    Hendry, David C.
    Wiercigroch, Marian
    [J]. INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2015, 91 : 110 - 119
  • [43] Topology of vibro-impact systems in the neighborhood of grazing
    Kryzhevich, Sergey
    Wiercigroch, Marian
    [J]. PHYSICA D-NONLINEAR PHENOMENA, 2012, 241 (22) : 1919 - 1931
  • [44] Dynamical behaviour of a controlled vibro-impact system
    王亮
    徐伟
    李颖
    [J]. Chinese Physics B, 2008, 17 (07) : 2446 - 2450
  • [45] On stiffness and damping of vibro-impact dynamics of backlash
    Ruderman, Michael
    [J]. PROCEEDINGS OF 2021 IEEE 30TH INTERNATIONAL SYMPOSIUM ON INDUSTRIAL ELECTRONICS (ISIE), 2021,
  • [46] Vibro-Impact Behavior of Two Orthogonal Beams
    Ervin, Elizabeth K.
    [J]. JOURNAL OF ENGINEERING MECHANICS, 2009, 135 (06) : 529 - 537
  • [47] Vibro-impact action in the function of the oscillation damping
    Mitic, Slavka
    [J]. PROCEEDINGS OF INTERNATIONAL CONFERENCE ON HEALTH MONITORING OF STRUCTURE, MATERIALS AND ENVIRONMENT, VOLS 1 AND 2, 2007, : 829 - 833
  • [48] AN EFFICIENT TECHNIQUE FOR THE APPROXIMATE ANALYSIS OF VIBRO-IMPACT
    MILLER, RK
    FATEMI, B
    [J]. JOURNAL OF VIBRATION ACOUSTICS STRESS AND RELIABILITY IN DESIGN-TRANSACTIONS OF THE ASME, 1983, 105 (03): : 332 - 336
  • [49] Dynamics of a small vibro-impact pile driver
    Luo, G. W.
    Yao, H. M.
    [J]. NONLINEAR ANALYSIS-REAL WORLD APPLICATIONS, 2008, 9 (04) : 1361 - 1377
  • [50] Global Dynamics of a Vibro-Impact Energy Harvester
    Cao, Zhenbang
    Ma, Haotong
    Yu, Xuegang
    Shi, Jianliang
    Yang, Hu
    Tan, Yi
    Ren, Ge
    [J]. MATHEMATICS, 2022, 10 (03)