TY - JOUR
T1 - Mechanics of pressurized cellular sheets
AU - Chandler, Thomas G.J.
AU - Ferria, Jordan
AU - Shorthose, Oliver
AU - Allain, Jean Marc
AU - Maiolino, Perla
AU - Boudaoud, Arezki
AU - Vella, Dominic
N1 - Publisher Copyright:
© 2025 The Author(s).
PY - 2025/2/12
Y1 - 2025/2/12
N2 - Everyday experience shows that cellular sheets are stiffened by the presence of a pressurized gas: from bicycle inner tubes to bubble wrap, the presence of an internal pressure increases the stiffness of otherwise floppy structures. The same is true of plants, with turgor pressure (due to the presence of water) taking the place of gas pressure; indeed, in the absence of water, many plants wilt. However, the mechanical basis of this stiffening is somewhat opaque: simple attempts to rationalize it suggest that the stiffness should be independent of the pressure, at odds with everyday experience. Here, we study the mechanics of sheets that are a single-cell thick and show how a pressure-dependent bending stiffness may arise. Our model rationalizes observations of turgor-driven shrinkage in plant cells and also suggests that turgor is unlikely to provide significant structural support in many monolayer leaves, such as those found in mosses. However, for such systems, turgor does provide a way to control leaf shape, in accordance with observations of curling upon drying of moss leaves. Guided by our results, we also present a biomimetic actuator that uncurls upon pressurization.
AB - Everyday experience shows that cellular sheets are stiffened by the presence of a pressurized gas: from bicycle inner tubes to bubble wrap, the presence of an internal pressure increases the stiffness of otherwise floppy structures. The same is true of plants, with turgor pressure (due to the presence of water) taking the place of gas pressure; indeed, in the absence of water, many plants wilt. However, the mechanical basis of this stiffening is somewhat opaque: simple attempts to rationalize it suggest that the stiffness should be independent of the pressure, at odds with everyday experience. Here, we study the mechanics of sheets that are a single-cell thick and show how a pressure-dependent bending stiffness may arise. Our model rationalizes observations of turgor-driven shrinkage in plant cells and also suggests that turgor is unlikely to provide significant structural support in many monolayer leaves, such as those found in mosses. However, for such systems, turgor does provide a way to control leaf shape, in accordance with observations of curling upon drying of moss leaves. Guided by our results, we also present a biomimetic actuator that uncurls upon pressurization.
KW - bryophytes
KW - cellular solids
KW - turgor
UR - https://www.scopus.com/pages/publications/85218170664
U2 - 10.1098/rsif.2024.0653
DO - 10.1098/rsif.2024.0653
M3 - Article
AN - SCOPUS:85218170664
SN - 1742-5689
VL - 22
JO - Journal of the Royal Society Interface
JF - Journal of the Royal Society Interface
IS - 223
M1 - 20240653
ER -