Effect of boundary condition and aspect ratio on vortex-induced vibration response of a circular cylinder

2019 ◽  
Vol 188 ◽  
pp. 106244 ◽  
Author(s):  
Yun Gao ◽  
Zhuangzhuang Zhang ◽  
Li Zou ◽  
Zhi Zong ◽  
Bin Yang
2021 ◽  
Vol 238 ◽  
pp. 109735
Author(s):  
Hassan el Sheshtawy ◽  
Simon Tödter ◽  
Ould el Moctar ◽  
Jens Neugebauer ◽  
Thomas E. Schellin

2020 ◽  
Vol 196 ◽  
pp. 106822 ◽  
Author(s):  
Yuanchuan Liu ◽  
Fushun Liu ◽  
Enhao Wang ◽  
Qing Xiao ◽  
Liang Li

Soft Matter ◽  
2021 ◽  
Author(s):  
Yunhao Ding ◽  
Dianjinfeng Gong ◽  
Jing Yang ◽  
Zhen Xu ◽  
Zhichao Wang ◽  
...  

Packing structures of granular cylinders with aspect ratio close to one have been reconstructed with the help of magnetic resonance imaging techniques. By controlling the container boundary condition and preparation...


2017 ◽  
Vol 828 ◽  
pp. 196-235 ◽  
Author(s):  
Ravi Kumar R. Tumkur ◽  
Arne J. Pearlstein ◽  
Arif Masud ◽  
Oleg V. Gendelman ◽  
Antoine B. Blanchard ◽  
...  

We computationally investigate coupling of a nonlinear rotational dissipative element to a sprung circular cylinder allowed to undergo transverse vortex-induced vibration (VIV) in an incompressible flow. The dissipative element is a ‘nonlinear energy sink’ (NES), consisting of a mass rotating at fixed radius about the cylinder axis and a linear viscous damper that dissipates energy from the motion of the rotating mass. We consider the Reynolds number range $20\leqslant Re\leqslant 120$, with $Re$ based on cylinder diameter and free-stream velocity, and the cylinder restricted to rectilinear motion transverse to the mean flow. Interaction of this NES with the flow is mediated by the cylinder, whose rectilinear motion is mechanically linked to rotational motion of the NES mass through nonlinear inertial coupling. The rotational NES provides significant ‘passive’ suppression of VIV. Beyond suppression however, the rotational NES gives rise to a range of qualitatively new behaviours not found in transverse VIV of a sprung cylinder without an NES, or one with a ‘rectilinear NES’, considered previously. Specifically, the NES can either stabilize or destabilize the steady, symmetric, motionless-cylinder solution and can induce conditions under which suppression of VIV (and concomitant reduction in lift and drag) is accompanied by a greatly elongated region of attached vorticity in the wake, as well as conditions in which the cylinder motion and flow are temporally chaotic at relatively low $Re$.


Author(s):  
J. C. Jaeger

The object of this note is to indicate a numerical method for finding periodic solutions of a number of important problems in conduction of heat in which the boundary conditions are periodic in the time and may be linear or non-linear. One example is that of a circular cylinder which is heated by friction along the generators through a rotating arc of its circumference, the remainder of the surface being kept at constant temperature; here the boundary conditions are linear but mixed. Another example, which will be discussed in detail below, is that of the variation of the surface temperature of the moon during a lunation; in this case the boundary condition is non-linear. In all cases the thermal properties of the solid will be assumed to be independent of temperature. Only the semi-infinite solid will be considered here, though the method applies equally well to other cases.


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