Numerical investigation of the water entry of cylinders without and with spin
Abstract:
We consider the water entry of horizontal cylinders with vertical impact velocity, either kept constant or freely falling, without and with spin, into quiescent water under the effect of gravity. We focus on the flow and cavity forming stages with non-dimensional submergence time , Froude numbers , spin ratios and mass ratios , all of . We develop numerical simulations using a modified smoothed particle hydrodynamics method to obtain pbkp_redictions for the impact kinematics and dynamics. These are in detailed agreement with available experiments. We elucidate the evolutions of the free surface, contact point positions, flow field, forces and trajectories and their dependence on , and . We define and quantify the contact point location as a function of , clarifying the qualitative difference between sub-and supercritical and the observed absence of air-entrained trailing cavities at low . By subtracting the buoyancy associated with , we show that, unlike the total drag, the remaining dynamic components are qualitatively similar for all . For a freely falling cylinder, we show that the total drag can be pbkp_redicted from the constant velocity case with the same instantaneous velocity, providing a simple way to pbkp_redict its trajectory based on the latter. The presence of spin results in lift, even when the asymmetry in is small. For fixed , lift increases with subcritical . For a freely falling cylinder, the lateral motion causes an appreciable asymmetry in and a reduction in lift.
Año de publicación:
2017
Keywords:
- computational methods
- wave-structure interactions
- waves/free-surface flows
Fuente:
Tipo de documento:
Article
Estado:
Acceso restringido
Áreas de conocimiento:
- Dinámica de fluidos
- Dinámica de fluidos
- Dinámica de fluidos
Áreas temáticas:
- Mecánica de fluidos