论文标题
波纹管中液态线和环形层的稳定性和分解
Stability and breakup of liquid threads and annular layers in a corrugated tube
论文作者
论文摘要
我们研究了轴对称液态螺纹的稳定性和分解行为,该螺纹被另一个粘性流体层通过长波近似包围。这两种流体是不混溶的,并限制在浓度放置的圆柱管中。在模型中考虑了管墙波纹的效果,该模型可以访问墙壁形状和线界面动力学之间的相互作用。由于方程中存在非恒定系数,因此通过Floquet理论研究了线性化的系统,并且通过傅立叶 - 弗洛克 - 山方法数值计算频谱。所得的特征与基于薄环极限中的润滑模型获得的特征一致,在薄环极限中,由于毛细血管没有壁瓦拉吉,由于毛细血管的情况下,短波干扰会激发一些不稳定的长波。线性理论的这些结果也通过进化方程的直接数值模拟来证实。同时,发现从一个管子上的主要模式上的过渡,以造成管子,而无需散发到带有墙壁形状的一个模式。最后,当获得核心线的夹紧时,在非线性方案中显示了滴的形成。当管壁靠近螺纹界面时,也随着捏合的缝制,也可以缓慢地接近环形膜引流状态。另外,我们的结果证明了抑制捏合的可能性,具体取决于平均的环形层厚度和管半径的变化。
We study the stability and breakup behavior of an axisymmetric liquid thread which is surrounded by another viscous fluid layer through a long wave approximation. The two fluids are immiscible and confined in a concentrically placed cylindrical tube. The effect of the tube wall corrugation is taken into account in the model, which allows the access of the interaction between the wall shape and the thread interfacial dynamics. The linearized system is studied by the Floquet theory due to the presence of non-constant coefficients in the equation and the spectrum is computed numerically via the Fourier-Floquet-Hill method. The resulting features agree qualitatively with those obtained based on a lubrication model in the thin annulus limit, where the short-wave disturbances that would be stabilizing owing to the capillarity in the absence of wall corrugation, can excite some unstable long waves. Those results from the linear theory are also confirmed numerically by the direct numerical simulation on the evolution equations. Meanwhile, a transition on the dominant modes from the one for a tube without corrugation to the one with wall shape included is found. Finally the drop formation is shown in the nonlinear regime when the pinch off of the core thread is obtained. The annular film drainage regime is also approached slowly along with pinching when the tube wall is close to the thread interface. In addition, our results demonstrate the possibility to suppress pinching, depending on the averaged annular layer thickness and the variation in tube radius.