Interface reconstruction of adhering droplets for distortion correction using glare points and deep learning
Maximilian Dreisbach, Itzel Hinojos, Jochen Kriegseis, Alexander, Stroh, Sebastian Burgmann

TL;DR
This paper presents a deep learning-based method for reconstructing the 3D interface of adhering droplets using glare points from shadowgraphy images, enabling accurate distortion correction in flow measurements at high velocities.
Contribution
It introduces a novel neural network approach that combines glare point analysis with deep learning for precise 3D droplet interface reconstruction under shear flows.
Findings
Effective 3D interface reconstruction at high flow velocities
Improved distortion correction for PIV measurements
Robust neural network performance with synthetic training data
Abstract
The flow within adhering droplets subjected to external shear flows has a significant influence on the stability and eventual detachment of the droplets from the surface. Most commonly, the velocity field inside adhering droplets is measured by means of particle image velocimetry (PIV), which requires a correction step for distortion caused by refraction of light at the gas-liquid interface. Current methods for distortion correction based on ray tracing are limited to low external flow velocities. However, the ray-tracing method can be extended to arbitrarily deformed droplet shapes if the instantaneous three-dimensional droplet interface is availble. In the present work, a previously introduced method for the image-based reconstruction of gas-liquid interfaces by means of deep learning is adapted to determine the instantaneous interface of adhering droplets in external shear flows. In…
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Taxonomy
TopicsSurface Roughness and Optical Measurements · Adhesion, Friction, and Surface Interactions · Fluid Dynamics and Heat Transfer
