Planar shock-induced bubble collapse and jetting in water captured via x-ray phase contrast imaging

G Guillaume T. Bokman (Institute of Fluid Dynamics, Department of Mechanical and Process Engineering, ETH Zürich 1 , Sonneggstrasse 3, 8092 Zürich,) S Samuele Fiorini (Institute of Fluid Dynamics, Department of Mechanical and Process Engineering, ETH Zürich 1 , Sonneggstrasse 3, 8092 Zürich,) J Jergus Strucka (Plasma Physics Group, Imperial College London 2 , London SW7 2BW,) B Bratislav Lukic S Simon N. Bland (Plasma Physics Group, Imperial College London 2 , London SW7 2BW,) K Kassim Mughal (Plasma Physics Group, Imperial College London 2 , London SW7 2BW,) S Siwei Liu A Alexander Rack O Outi Supponen (Institute of Fluid Dynamics, Department of Mechanical and Process Engineering, ETH Zürich 1 , Sonneggstrasse 3, 8092 Zürich,)

Abstract

Shock wave–bubble interactions in water manifest rich dynamics driven by a combination of strong pressure and density mismatches. They have a wide variety of applications, including the injection of pharmaceuticals, and through scaling, enable the exploration of various aspects of high-energy-density systems such as inertial confinement fusion. In this work, the interaction between a micrometric nitrogen bubble and a planar shock wave, characterized by a Mach number of M=1.24 and a peak pressure of pmax=0.57 GPa, is experimentally recorded using ultra-high-speed x-ray phase contrast imaging. Highly resolved radiographs provide access to all phase discontinuities along the beam path, offering quantities such as the time-varying bubble size, the speed of a jet produced during the bubble collapse, and the time evolution of the shock wave front, which are critical benchmark data for numerical scheme validation. This study addresses the lack of well-characterized, repeatable, and high spatiotemporal resolution experiments at negative Atwood numbers by providing shock–bubble visualization and corresponding numerical simulation.

Article Details

Volume / Issue Vol. 127, Issue 1
Published July 07, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (9)

G

Guillaume T. Bokman

Institute of Fluid Dynamics, Department of Mechanical and Process Engineering, ETH Zürich 1 , Sonneggstrasse 3, 8092 Zürich,

S

Samuele Fiorini

Institute of Fluid Dynamics, Department of Mechanical and Process Engineering, ETH Zürich 1 , Sonneggstrasse 3, 8092 Zürich,

J

Jergus Strucka

Plasma Physics Group, Imperial College London 2 , London SW7 2BW,

B

Bratislav Lukic

S

Simon N. Bland

Plasma Physics Group, Imperial College London 2 , London SW7 2BW,

K

Kassim Mughal

Plasma Physics Group, Imperial College London 2 , London SW7 2BW,

S

Siwei Liu

A

Alexander Rack

O

Outi Supponen

Institute of Fluid Dynamics, Department of Mechanical and Process Engineering, ETH Zürich 1 , Sonneggstrasse 3, 8092 Zürich,