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首页> 外文期刊>Journal of Fluid Mechanics >Dynamics of a vortex ring moving perpendicularly to the axis of a rotating fluid
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Dynamics of a vortex ring moving perpendicularly to the axis of a rotating fluid

机译:垂直于旋转流体轴线运动的涡流环的动力学

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摘要

The dynamics of a vortex ring moving orthogonally to the rotation vector of a uniformly rotating fluid is analysed by laboratory experiments and numerical simulations. In the rotating system the vortex ring describes a curved trajectory, turning in the opposite sense to the system's anti-clockwise rotation. This behaviour has been explained by using the analogy with the motion of a sphere in a rotating fluid for which Proudman (1916) computed the forces acting on the body surface. Measurements have revealed that the angular velocity of the vortex ring in its curved trajectory is opposite to the background rotation rate, so that the vortex has a fixed orientation in an inertial frame of reference and that the curvature increases proportionally to the rotation rate. The dynamics of the vorticity of the vortex ring is affected by the background rotation in such a way that the part of the vortex core in clockwise rotation shrinks while the anti-clockwise-rotating core part widens. By this opposite forcing on either side of the vortex core Kelvin waves are excited, travelling along the toroidal axis of the vortex ring, with a net mass how which is responsible for the accumulation of passive scalars on the anti-clockwise-rotating core part. In addition, the curved motion of the vortex ring modifies its self-induced strain field, resulting in stripping of vorticity filaments at the front of the vortex ring from the anti-clockwise-rotating core part and at the rear from the core part in clockwise rotation. Vortex lines, being deflected by the main vortex ring due to induction of relative vorticity, are stretched by the local straining field and form a horizontally extending vortex pair behind the vortex ring. This vortex pair propagates by its self-induced motion towards the clockwise-rotating side of the vortex ring and thus contributes to the deformation of the ring core. The deflection of vortex lines from the main vortex ring persists during the whole motion and is responsible for the gradual erosion of the coherent toroidal structure of the initial vortex ring. [References: 19]
机译:通过实验室实验和数值模拟分析了与均匀旋转的流体的旋转向量正交移动的涡流环的动力学。在旋转系统中,涡流环呈弯曲的轨迹,其旋转方向与系统的逆时针旋转方向相反。这种行为已经通过使用球体在旋转流体中的运动进行类比来解释,Proudman(1916)为此计算了作用在体表上的力。测量表明,旋涡环在其弯曲轨迹中的角速度与背景旋转速度相反,因此旋涡在惯性参考系中具有固定的方向,并且曲率与旋转速度成比例地增加。涡旋环的涡旋动力学受到背景旋转的影响,使得旋涡芯的顺时针旋转部分缩小而逆时针旋转的核心部分变宽。通过在旋涡芯两侧的这种相反的强迫,开尔文波被激发,沿着旋涡环的环形轴行进,具有净质量,这是如何导致无源标量在逆时针旋转的磁芯部分上累积的。另外,涡流环的弯曲运动改变了它的自感应应变场,导致涡流丝在涡流环的前部从逆时针旋转的核心部分剥离,并在后部从核心部分的后部沿顺时针方向剥离。回转。由于诱导了相对涡旋而被主涡旋环偏转的涡旋线被局部应变场拉伸,并在涡旋环后面形成水平延伸的涡旋对。该涡流对通过其自感应运动向涡流环的顺时针旋转侧传播,因此有助于环芯的变形。在整个运动过程中,涡旋线从主涡旋环的偏折持续存在,并导致初始涡旋环的相干环形结构逐渐腐蚀。 [参考:19]

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