Virtual ultrasound machine operating in a GHz to MHz frequency range for particle-based biomedical simulations

U Urban Čoko (Theory Department, National Institute of Chemistry) T Tilen Potisk (Theory Department, National Institute of Chemistry) M Matej Praprotnik (Theory Department, National Institute of Chemistry)

Abstract

Ultrasound–matter interactions underpin numerous biomedical and soft-matter applications, yet simulating these phenomena is challenging due to the large separation of viscous and sonic time scales. Continuum methods capture large-scale wave propagation but cannot resolve microscale interactions, while particle-based approaches offer molecular resolution but struggle with efficiency and stability at larger scales. We introduce a particle-based virtual ultrasound machine that uses a smoothed dissipative particle dynamics variant with an implicit pressure solver and a negative-pressure stabilization scheme, required to mimic acoustic propagation across medically relevant MHz–GHz frequencies. We demonstrate its capabilities by modeling the acoustophoresis of encapsulated microbubbles, a key mechanism in ultrasound-mediated drug delivery. Beyond this application, the approach establishes a generalizable platform for simulating wave–matter interactions in soft and biological materials, opening promising directions for computational studies of acoustics-driven phenomena in science and engineering.

Article Details

Volume / Issue Vol. 123, Issue 29
Published July 21, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (3)

U

Urban Čoko

Theory Department, National Institute of Chemistry

T

Tilen Potisk

Theory Department, National Institute of Chemistry

M

Matej Praprotnik

Theory Department, National Institute of Chemistry