Self-Buckling of Pressurized Cylindrical Tubes

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Andersen, Morten Opstrup, Olsen, Nikolaj Tønner Osvald, Bhola, Diksha, Borsuk, Aleca, Brodersen, Craig, Geitmann, Anja, Pezzulla, Matteo
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866915822042087424
author Andersen, Morten Opstrup
Olsen, Nikolaj Tønner Osvald
Bhola, Diksha
Borsuk, Aleca
Brodersen, Craig
Geitmann, Anja
Pezzulla, Matteo
author_facet Andersen, Morten Opstrup
Olsen, Nikolaj Tønner Osvald
Bhola, Diksha
Borsuk, Aleca
Brodersen, Craig
Geitmann, Anja
Pezzulla, Matteo
contents We investigate the buckling of hollow cylindrical tubes subject to their own weight and internal pressure, inspired by the columnar cells of the palisade mesophyll in dicotyledon leaves which resemble pressurized cylindrical tubes. When the internal pressure in the cylinder is equal to the outside pressure, the problem is usually termed self-buckling, which has been studied extensively for solid rods, hollow cylinders, and thin cylindrical shells. Specifically, we perform FEM simulations and desktop-scale experiments to determine the instability thresholds for different geometrical parameters. We first test our models against self-buckling results without pressure for solid rods and hollow cylindrical tubes, and then proceed to determine the critical buckling pressure for a set of material and geometrical parameters. We find that positive internal pressures can stiffen cylinders that are unstable under their own weight, leading to an effective Young's modulus that we show scales linearly with the applied pressure. On the contrary, cylinders that are stable under self-weight, buckle under a negative pressure, resembling classical results on pressure-induced ring buckling. Our findings offer new insights on the interplay between gravity and pressure for the mechanical instability of hollow cylindrical tubes, which we hope will be useful for the study of both engineering and biological structures under similar loads.
format Preprint
id arxiv_https___arxiv_org_abs_2602_23836
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Self-Buckling of Pressurized Cylindrical Tubes
Andersen, Morten Opstrup
Olsen, Nikolaj Tønner Osvald
Bhola, Diksha
Borsuk, Aleca
Brodersen, Craig
Geitmann, Anja
Pezzulla, Matteo
Soft Condensed Matter
We investigate the buckling of hollow cylindrical tubes subject to their own weight and internal pressure, inspired by the columnar cells of the palisade mesophyll in dicotyledon leaves which resemble pressurized cylindrical tubes. When the internal pressure in the cylinder is equal to the outside pressure, the problem is usually termed self-buckling, which has been studied extensively for solid rods, hollow cylinders, and thin cylindrical shells. Specifically, we perform FEM simulations and desktop-scale experiments to determine the instability thresholds for different geometrical parameters. We first test our models against self-buckling results without pressure for solid rods and hollow cylindrical tubes, and then proceed to determine the critical buckling pressure for a set of material and geometrical parameters. We find that positive internal pressures can stiffen cylinders that are unstable under their own weight, leading to an effective Young's modulus that we show scales linearly with the applied pressure. On the contrary, cylinders that are stable under self-weight, buckle under a negative pressure, resembling classical results on pressure-induced ring buckling. Our findings offer new insights on the interplay between gravity and pressure for the mechanical instability of hollow cylindrical tubes, which we hope will be useful for the study of both engineering and biological structures under similar loads.
title Self-Buckling of Pressurized Cylindrical Tubes
topic Soft Condensed Matter
url https://arxiv.org/abs/2602.23836