Study on Dynamic Solidification of Digital Droplets and Random Behaviors during the Recalescence Process in a Spiral-shaped Milli-reactor
Yulin Wang, Z. L. Wang

TL;DR
This study investigates the complex and random solidification behaviors of digital droplets in a spiral microreactor, revealing key factors affecting freezing processes and proposing ways to improve digital freezing control.
Contribution
It introduces a novel spiral-shaped milli-reactor for studying droplet freezing, identifies five nucleation profiles, and analyzes how flow rate and temperature influence freezing randomness.
Findings
Five distinct nucleation profiles determine freezing evolution.
Freezing front velocity depends on temperature, aligning with phase-field simulations.
Flow rate adjustments can optimize digital freezing of droplets.
Abstract
In this study, we designed a spiral-shaped milli-reactor with a T-junction microchannel to generate digital droplets for studying and observing the digital freezing process of droplets. During the study of the recalescence and solidification processes of digital droplets dynamically moving in microchannels, we found that although the digital generation of droplets in our channel aligns well with the literature, achieving the digitalization of the droplet freezing process is very challenging. Even the initial phase of freezing (the recalescence process) exhibits significant randomness. A key feature of the randomness in the freezing process is the nucleation position of droplets within the channel, which significantly impacts the digital characteristics and hinders digital freezing. During the investigation of freezing randomness, we identified five distinct nucleation profiles, which…
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Taxonomy
TopicsSolidification and crystal growth phenomena
