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NASA NTRS · 20260002383

Pinned in Microgravity: How Colloidal Suspensions Inhibit Droplet Motion

Abstract

Understanding the fundamental behavior of colloidal fluids in microgravity is critical for advancing material science, manufacturing, and biological processes. In this study we investigate the dynamics of a droplet containing colloidal suspension when ejected in short term microgravity. These conditions are generated using a 2.2 second drop tower. A custom droplet generator was designed to produce consistent size-controlled droplets containing passive colloidal particles. The particles are suspended in water and subsequently ejected out of a hydrophobic wedge under microgravity conditions, where the droplet ejection time can be predicted [Torres & Weislogel, 2021]. The ejection times will be compared with de-ionized water ejected from the same system to investigate the effects of change in density and surface tension caused by the colloids. Successful passive colloidal ejection will lay the foundation for active colloid research in the future.

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Jason Ebat, Veronica Keith, Claire Bolding, Ian Madden, Henry Nahra, Nancy Hall, Alicia Boymelgreen, Boris Khusid, Jarrod Schiffbauer. Pinned in Microgravity: How Colloidal Suspensions Inhibit Droplet Motion. https://ntrs.nasa.gov/citations/20260002383

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