Hydrogen permeability of thin-ply composites after mechanical loading
Journal article, 2024

Hydrogen is a sustainable alternative to conventional fuels, and it may be obtained with near zero carbon footprint. However, hydrogen storage remains a key challenge, and the use of composite tanks has gained significant interest over the last few years. In addition, thin-ply composites promote fibre damage by delaying matrix microcracking and free edge delamination. In this work, the H2 permeation/diffusion performance of virgin and mechanically loaded thin cross-ply laminates is studied. In addition, Scanning Electron Microscopy (SEM) is used to identify defects and micro-damage in the laminates and explain the experimental values. The study shows that the hydrogen (H2) barrier performances of thin-ply composites are lower than conventional metallic systems. Obtained permeability values, however, resulted well below the allowable limits for most combinations of temperature and pressure and remain unaffected despite the application of high tensile strains showing that permeation is not accelerated.

Permeability

Hydrogen storage

Thin-ply composites

Diffusivity

Author

Ioannis Katsivalis

Chalmers, Industrial and Materials Science, Material and Computational Mechanics

Virginia Signorini

University of Bologna

Fredrik Ohlsson

Oxeon AB

Christoph Langhammer

Chalmers, Physics, Chemical Physics

Matteo Minelli

University of Bologna

Leif Asp

Chalmers, Industrial and Materials Science, Material and Computational Mechanics

Composites Part A: Applied Science and Manufacturing

1359-835X (ISSN)

Vol. 176 107867

Liquid hydrogen tanks

Swedish Energy Agency (52439-1), 2021-07-01 -- 2022-12-30.

Vehicle On-board storage integrating Liquid ANd compressed hydrogen Tanks (VOLANT)

Chalmers (Dnr C 2021-0040), 2022-01-01 -- 2023-12-31.

Subject Categories

Mechanical Engineering

Aerospace Engineering

Applied Mechanics

Composite Science and Engineering

DOI

10.1016/j.compositesa.2023.107867

More information

Latest update

11/7/2023