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March 1, 20260 citationsOpen Access

Insights on mechanical and morphological metal hydride powder characteristics during hydrogen interaction and stress mitigation strategies for hydrogen storage vessels

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GSG. StahlkopfMPMaximilian PassingJPJulian Puszkiel

Key Points

  • The study aims to understand the mechanical properties of metal hydride powders during hydrogen cycling and their effects on stress in storage vessels.
  • Analyzed interstitial metal hydride alloys
  • Utilized synchrotron-radiation micro-computed tomography
  • Examined radial expansion forces in vertical containers
  • Measured local pressures and packing densities during cycling
  • Observed up to 50 cycles of particle decrepitation
  • Achieved a maximum packing density of 91% in lower layers
  • Measured local pressures of 605 bar in hydrogenated state
  • Demonstrated stress reduction of up to 45% with optimized PSDs
  • Increased storage capacity by 87% within the same tank volume

Abstract

Interstitial metal hydride alloys exhibit significant volume changes between the hydrogenated and dehydrogenated states during cycling, resulting in macroscopic stresses in powder beds that must be considered in tank design. Interactions are complex, and these stresses are primarily influenced by the local particle size distribution (PSD) and packing density. This study examines radial expansion forces in vertical storage containers using AB 2 - type hydride alloys and synchrotron-radiation micro-computed tomography (SRμCT). Up to 50 cycles, progressive particle decrepitation occurs, with densification in the lower layers reaching a 91% packing density. This results in local pressures of up to 605 bar in the hydrogenated state. A new empirical equation links packing density to exponentially increasing stress. Experiments have shown that optimized PSDs can reduce stress by up to 45% and increase storage capacity by 87% within the same tank volume.

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Cite This Study

Stahlkopf et al. (2026) studied this question.

synapsesocial.com/papers/69a3d8caec16d51705d2feebhttps://doi.org/10.3204/pubdb-2026-00761
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