物理
机械
气泡
振荡(细胞信号)
线性稳定性
经典力学
惯性参考系
理论(学习稳定性)
Lift(数据挖掘)
联轴节(管道)
唤醒
不稳定性
模耦合
边界(拓扑)
刚度
模式(计算机接口)
剪切流
边值问题
剪切(地质)
机制(生物学)
变形(气象学)
水动力稳定性
附加质量
虚拟力
航程(航空)
粘性液体
粘性阻尼
扁球体
正常模式
线性增长
惯性
作者
Wei-Qiang Liu,Jian-Ming Jiang,Jie Zhang
标识
DOI:10.1017/jfm.2026.11771
摘要
The stability of two bubbles rising initially in line through a viscous liquid is revisited using a global linear stability analysis formulated within an arbitrary Lagrangian–Eulerian framework, complemented by fully resolved embedded boundary method simulations. Whereas previous studies attributed the promoted in-line stability of oblate bubbles to a deformation-enhanced wake entrainment, the present analysis demonstrates that the dominant stabilizing mechanism arises instead from an inclination-induced rotational feedback generated as the trailing bubble (TB) experiences the asymmetric shear of the leading bubble’s wake. This inclination–shear coupling, rather than deformation itself, governs the recovery of stability with increasing aspect ratio. Furthermore, the results reveal that the unstable drafting–kissing–tumbling mode originates from short-range, two-way coupling between the bubbles, whereas the asymmetric side-escape mode corresponds to a long-range, one-way interaction dominated by the TB response. In addition, a previously unreported oscillatory global mode emerges from the unsteady recirculation linking the two bubbles, acting as a hydrodynamic spring whose effective stiffness and damping govern the oscillation frequency and growth rate. Together, these findings identify inclination-induced lift as the primary mechanism controlling the stability of rising bubble pairs and provide a unified framework for interpreting their stationary and oscillatory transitions across a broad range of inertial and deformable regimes.
科研通智能强力驱动
Strongly Powered by AbleSci AI