Instances of Safety-Related Advances in Hydrogen as Regards Its Gaseous Transport and Buffer Storage and Its Solid-State Storage

Author:

Lamari Farida1ORCID,Weinberger Benno2ORCID,Langlois Patrick1ORCID,Fruchart Daniel34

Affiliation:

1. Laboratoire des Sciences des Procédés et des Matériaux—CNRS UPR 3407, Université Sorbonne Paris Nord, 99 avenue Jean-Baptiste Clément, 93430 Villetaneuse, France

2. Ineris, Parc technologique Alata, 60550 Verneuil-en-Halatte, France

3. Institut Néel—CNRS UPR 2940, Université Grenoble Alpes, 25 avenue des Martyrs, 38042 Grenoble, France

4. JOMI LEMAN, 1115 route de St Thomas, 26190 La Motte Fanjas, France

Abstract

As part of the ongoing transition from fossil fuels to renewable energies, advances are particularly expected in terms of safe and cost-effective solutions. Publicising instances of such advances and emphasising global safety considerations constitute the rationale for this communication. Knowing that high-strength steels can prove economically relevant in the foreseeable future for transporting hydrogen in pipelines by limiting the pipe wall thickness required to withstand high pressure, one advance relates to a bench designed to assess the safe transport or renewable-energy-related buffer storage of hydrogen gas. That bench has been implemented at the technology readiness level TRL 6 to test initially intact, damaged, or pre-notched 500 mm-long pipe sections with nominal diameters ranging from 300 to 900 mm in order to appropriately validate or question the use of reputedly satisfactory predictive models in terms of hydrogen embrittlement and potential corollary failure. The other advance discussed herein relates to the reactivation of a previously fruitful applied research into safe mass solid-state hydrogen storage by magnesium hydride through a new public–private partnership. This latest development comes at a time when markets have started driving the hydrogen economy, bearing in mind that phase-change materials make it possible to level out heat transfers during the absorption/melting and solidification/desorption cycles and to attain an overall energy efficiency of up to 80% for MgH2-based compacts doped with expanded natural graphite.

Funder

French research-funding Agence Nationale de la Recherche

Publisher

MDPI AG

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