Nonlinear Span Assessment by Amplitude-Dependent Linearization

被引:6
|
作者
Peek, Ralf [1 ]
机构
[1] Peek Solut, Barcelona 08392, Spain
关键词
computational mechanics and design; offshore pipelines; soil-pipeline interaction; system integrity assessment; vortex-induced vibration; TIME-DOMAIN SIMULATION; CROSS-FLOW;
D O I
10.1115/1.4047103
中图分类号
P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Although it has long been recognized that vortex-induced vibrations of subsea pipeline spans involve nonlinear and inelastic behavior, the current practice to assess such spans for fatigue and ultimate loading conditions is based on the modal analysis assuming linear behavior. Nevertheless, nonlinearity can be captured approximately by making the linearization amplitude dependent. The eigenvalue problem to be solved for the natural frequencies and mode shapes then involves a stiffness matrix that depends on the mode shape and amplitude of vibration. An important part of the nonlinearity comes from the soil, which is generally represented by springs. This paper presents a simple and particularly effective algorithm to solve this nonlinear eigenvalue problem by using the same algorithm that serves to track the bifurcated solution branches in quasi-static structural stability (buckling) analyses. This method is applied to an example in which the nonlinearity comes from the soil springs. The results demonstrate the importance of the nonlinearity, even at relatively low vortex-induced vibrations (VIV) amplitudes typical of the pure inline response. The inelasticity of the soil springs is also used to calculate the associated contribution to the modal damping ratio.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Amplitude-dependent dynamical behavior of PVC
    Povolo, F
    Goyanes, SN
    JOURNAL OF APPLIED POLYMER SCIENCE, 1996, 61 (02) : 359 - 366
  • [22] Amplitude-dependent modal properties of an eleven-span motorway bridge under forced vibration conditions
    Chen, G-W.
    Beskhyroun, S.
    Omenzetter, P.
    LIFE-CYCLE OF STRUCTURAL SYSTEMS: DESIGN, ASSESSMENT, MAINTENANCE AND MANAGEMENT, 2015, : 1147 - 1153
  • [23] Experimental evidence of amplitude-dependent surface wave dispersion via nonlinear contact resonances
    Hajarolasvadi, Setare
    Celli, Paolo
    Kim, Brian
    Elbanna, Ahmed E.
    Daraio, Chiara
    APPLIED PHYSICS LETTERS, 2023, 123 (08)
  • [24] AMPLITUDE-DEPENDENT INTERNAL FRICTION IN SODIUM CHLORIDE
    HOLDEN, SJ
    HESLIN, TM
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1968, 13 (11): : 1392 - &
  • [25] Computer simulation of amplitude-dependent internal friction
    Blagoveshchenskii, V. V.
    Panin, I. G.
    PHYSICS OF THE SOLID STATE, 2010, 52 (08) : 1625 - 1628
  • [26] FURTHER COMMENTS ON AMPLITUDE-DEPENDENT DAMPING IN ZIRCONIUM
    RITCHIE, IG
    ATRENS, A
    SCRIPTA METALLURGICA, 1977, 11 (02): : 107 - 108
  • [27] COMMENTS ON AMPLITUDE-DEPENDENT DAMPING IN ZIRCONIUM - REPLY
    POVOLO, F
    SCRIPTA METALLURGICA, 1976, 10 (07): : 627 - 629
  • [28] Amplitude-dependent damping and acoustoplastic effect in crystals
    Lebedev, AB
    NONDESTRUCTIVE CHARACTERIZATION OF MATERIALS VII, PTS 1 AND 2, 1996, 210-2 : 519 - 526
  • [29] On solitary waves in case of amplitude-dependent nonlinearity
    Tamm, Kert
    Peets, Tanel
    CHAOS SOLITONS & FRACTALS, 2015, 73 : 108 - 114
  • [30] AMPLITUDE-DEPENDENT PART OF INTERNAL FRICTION OF ALUMINUM
    PEGUIN, P
    PEREZ, J
    GOBIN, P
    TRANSACTIONS OF THE METALLURGICAL SOCIETY OF AIME, 1967, 239 (04): : 438 - &