TY - JOUR
T1 - Stacked Rayleigh-Taylor Instabilities Grow Drops into Soft Stalactitelike Structures
AU - Venkateswaran, Barath
AU - Jones, Trevor J.
AU - Kresge, Grace
AU - Marthelot, Joel
AU - Jambon-Puillet, Etienne
AU - Brun, P. T.
N1 - Publisher Copyright:
© 2024 American Physical Society.
PY - 2024/11/8
Y1 - 2024/11/8
N2 - The interplay between thin film hydrodynamics and solidification produces formidably intricate geophysical structures, such as stalactites and icicles, whose shape is a testimony of their long growth. In simpler settings, liquid films can also produce regular patterns. When coated on the underside of a flat plate, these films are unstable and yield lattices of drops following the Rayleigh-Taylor instability. While this interfacial instability is well-studied in Newtonian fluids, much less is known about what happens when the thin film solidifies. Here, we coat the underside of a surface with liquid elastomer, allowing the film to destabilize and flow while it cures into an elastic solid. Once the first coating yields an array of solid droplets, this iterative coat-flow-cure process is repeated and gives rise to corrugated slender structures, which we name “flexicles” for their resemblance to icicles. We study the subtle combination of chaos and order that confers our flexicles their structure, shape, arrangement, and, ultimately, deformability.
AB - The interplay between thin film hydrodynamics and solidification produces formidably intricate geophysical structures, such as stalactites and icicles, whose shape is a testimony of their long growth. In simpler settings, liquid films can also produce regular patterns. When coated on the underside of a flat plate, these films are unstable and yield lattices of drops following the Rayleigh-Taylor instability. While this interfacial instability is well-studied in Newtonian fluids, much less is known about what happens when the thin film solidifies. Here, we coat the underside of a surface with liquid elastomer, allowing the film to destabilize and flow while it cures into an elastic solid. Once the first coating yields an array of solid droplets, this iterative coat-flow-cure process is repeated and gives rise to corrugated slender structures, which we name “flexicles” for their resemblance to icicles. We study the subtle combination of chaos and order that confers our flexicles their structure, shape, arrangement, and, ultimately, deformability.
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U2 - 10.1103/PhysRevLett.133.198201
DO - 10.1103/PhysRevLett.133.198201
M3 - Article
C2 - 39576928
AN - SCOPUS:85210549171
SN - 0031-9007
VL - 133
JO - Physical review letters
JF - Physical review letters
IS - 19
M1 - 198201
ER -