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hal.structure.identifierJRC Institute for Energy and Transport [IET]
dc.contributor.authorMORETTO, P.
hal.structure.identifierJRC Institute for Energy and Transport [IET]
hal.structure.identifierInstitut de Chimie et des Matériaux Paris-Est [ICMPE]
dc.contributor.authorZLOTEA, C.
hal.structure.identifierJRC Institute for Energy and Transport [IET]
dc.contributor.authorDOLCI, F.
hal.structure.identifierJohnson Matthey Technology Centre
dc.contributor.authorAMIEIRO, A.
hal.structure.identifierInstitut de Chimie de la Matière Condensée de Bordeaux [ICMCB]
dc.contributor.authorBOBET, Jean-Louis
hal.structure.identifierDepartment of Mobility, Environment, and Energy, Div. "Hydrogen and Energy"and Technology"
dc.contributor.authorBORGSCHULTE, A.
hal.structure.identifierMetallurgical & Materials Engineering Department (MS 388)
dc.contributor.authorCHANDRA, D.
hal.structure.identifierNational Institute of Advanced Industrial Science and Technology [AIST]
dc.contributor.authorENOKI, H.
hal.structure.identifierMatériaux, Rayonnements, Structure [NEEL - MRS]
dc.contributor.authorDE RANGO, Patricia
hal.structure.identifierMicro et NanoMagnétisme [NEEL - MNM]
dc.contributor.authorFRUCHART, Daniel
hal.structure.identifierDepartment of Nanotechnology [Geesthacht]
dc.contributor.authorJEPSEN, J.
hal.structure.identifierInstitut de Chimie et des Matériaux Paris-Est [ICMPE]
dc.contributor.authorLATROCHE, Michel
hal.structure.identifierInstitut für Metallische Werkstoffe [Dresden]
dc.contributor.authorLLAMAS JANSA, I.
hal.structure.identifierMaterials and Physics Research Centre
dc.contributor.authorMOSER, D.
hal.structure.identifierInstitute for Energy Technology
dc.contributor.authorSARTORI, S.
hal.structure.identifierGRINM
dc.contributor.authorWANG, S. M.
hal.structure.identifierJet Propulsion Laboratory [JPL]
dc.contributor.authorZAN, J. A.
dc.date.issued2013
dc.identifier.issn0360-3199
dc.description.abstractEnA Round Robin Test exercise on magnesium hydride (MgH2) was performed by 14 laboratories with the aim to compare experimental isothermal data such PCI curves, kinetics curves and formation enthalpies together with a basic statistical evaluation of the results. The full hydrogen capacity was found to vary in the range 5.1-6.4 wt.% at 280 °C (553 K) and in the range 5.3-6.6 wt.% at 320 °C (593 K) (value for 1 MPa hydrogen pressure). The relative standard deviations of 6.9% and 7.2%, respectively, were measured for absorption. The absorption plateau pressure of magnesium hydride varies between 0.08 and 0.14 MPa with an average of 0.10 MPa and a relative standard deviation of 17.3% at 280 °C (553 K). At 320 °C (593 K) the absorption plateau pressure results fall in the range 0.26-0.45 MPa, with a relative standard deviation of 17.6%. Kinetics curves were affected by much higher data dispersion than the PCI data. The enthalpy of absorption was −75.7 KJ/moleH2, with a relative standard deviation of 4.4%. The results highlight the importance of well defined measuring and reporting protocols as a base for future standard procedures.
dc.language.isoen
dc.publisherElsevier
dc.subject.enRound Robin Test
dc.subject.enMagnesium hydride
dc.subject.enKinetics
dc.subject.enThermodynamics
dc.subject.enEnthalpy
dc.title.enA Round Robin Test exercise on hydrogen absorption/desorption properties of a magnesium hydride based material
dc.typeArticle de revue
dc.identifier.doi10.1016/j.ijhydene.2013.03.118
dc.subject.halChimie/Matériaux
bordeaux.journalInternational Journal of Hydrogen Energy
bordeaux.page6704-6717
bordeaux.volume38
bordeaux.issue16
bordeaux.peerReviewedoui
hal.identifierhal-00827891
hal.version1
hal.popularnon
hal.audienceInternationale
hal.origin.linkhttps://hal.archives-ouvertes.fr//hal-00827891v1
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