Preprint
Article

This version is not peer-reviewed.

A Simple Model for Self-Propelled Liquid Surfers

Submitted:

14 May 2026

Posted:

20 May 2026

You are already at the latest version

Abstract
Self-propelled liquid droplets floating on air–water interfaces can exhibit dynamics far richer than steady translation. We develop a simple nonlinear framework for such liquid surfers by connecting Marangoni-driven hydrodynamics with low-dimensional dynamical modeling. Using the Lorentz reciprocal theorem, we show that propulsion can arise even in a force-free setting, and that the droplet velocity is determined either by the surface-tension difference across the droplet at the air–water interface or by the difference in surface-tension gradients, depending on the relaxation length scales in the concentration and velocity fields along the interface. Coupling this result to interfacial transport yields a reduced velocity equation with a pitchfork bifurcation from rest to steady propulsion. Extending the model to include two relaxing force components further yields a minimal three-variable model that reproduces stable propulsion, back-and-forth motion, and more complex dynamics. This framework provides a compact basis for understanding and classifying the dynamics of self-propelled liquid droplets.
Keywords: 
;  ;  ;  ;  
Copyright: This open access article is published under a Creative Commons CC BY 4.0 license, which permit the free download, distribution, and reuse, provided that the author and preprint are cited in any reuse.
Prerpints.org logo

Preprints.org is a free preprint server supported by MDPI in Basel, Switzerland.

Subscribe

Disclaimer

Terms of Use

Privacy Policy

Privacy Settings

© 2026 MDPI (Basel, Switzerland) unless otherwise stated