Droplet impact on elastic substrates: force scaling crossover

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Yokoyama, Yuto, Maruoka, Hirokazu, Tagawa, Yoshiyuki
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866912220441477120
author Yokoyama, Yuto
Maruoka, Hirokazu
Tagawa, Yoshiyuki
author_facet Yokoyama, Yuto
Maruoka, Hirokazu
Tagawa, Yoshiyuki
contents Droplet impacts are fundamental to fluid-structure interactions, shaping processes from erosion to bioprinting. While previous scaling laws have provided insights into droplet dynamics, force scaling laws remain insufficiently understood, particularly for soft substrates where both the droplet and substrate deform significantly. Here, we show that droplet impacts on elastic substrates exhibit a scaling crossover in maximum impact force, transitioning from inertial force scaling, typical for rigid substrates under high inertia, to Hertzian impact scaling, characteristic of rigid spheres on elastic substrates. Using high-speed photoelastic tomography, we captured high-resolution dynamic stress fields and identified a similarity parameter governing the interplay between droplet inertia, substrate elasticity, and deformation time scales. Our findings redefine how substrate properties influence impact forces, demonstrating that droplets under high inertia -- long thought to follow inertial force scaling -- can instead follow Hertzian impact scaling on soft substrates. This framework provides practical insights for designing soft, impact-resistant materials.
format Preprint
id arxiv_https___arxiv_org_abs_2412_12439
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Droplet impact on elastic substrates: force scaling crossover
Yokoyama, Yuto
Maruoka, Hirokazu
Tagawa, Yoshiyuki
Soft Condensed Matter
Fluid Dynamics
Droplet impacts are fundamental to fluid-structure interactions, shaping processes from erosion to bioprinting. While previous scaling laws have provided insights into droplet dynamics, force scaling laws remain insufficiently understood, particularly for soft substrates where both the droplet and substrate deform significantly. Here, we show that droplet impacts on elastic substrates exhibit a scaling crossover in maximum impact force, transitioning from inertial force scaling, typical for rigid substrates under high inertia, to Hertzian impact scaling, characteristic of rigid spheres on elastic substrates. Using high-speed photoelastic tomography, we captured high-resolution dynamic stress fields and identified a similarity parameter governing the interplay between droplet inertia, substrate elasticity, and deformation time scales. Our findings redefine how substrate properties influence impact forces, demonstrating that droplets under high inertia -- long thought to follow inertial force scaling -- can instead follow Hertzian impact scaling on soft substrates. This framework provides practical insights for designing soft, impact-resistant materials.
title Droplet impact on elastic substrates: force scaling crossover
topic Soft Condensed Matter
Fluid Dynamics
url https://arxiv.org/abs/2412.12439