Destabilization of lithium hydride and the thermodynamic assessment of the Li-Al-H system for solar thermal energy storage
dc.contributor.author | Javadian, Payam | |
dc.contributor.author | Sheppard, Drew | |
dc.contributor.author | Jensen, T. | |
dc.contributor.author | Buckley, Craig | |
dc.date.accessioned | 2017-01-30T15:24:59Z | |
dc.date.available | 2017-01-30T15:24:59Z | |
dc.date.created | 2016-11-01T19:30:19Z | |
dc.date.issued | 2016 | |
dc.identifier.citation | Javadian, P. and Sheppard, D. and Jensen, T. and Buckley, C. 2016. Destabilization of lithium hydride and the thermodynamic assessment of the Li-Al-H system for solar thermal energy storage. RSC Advances. 6 (97): pp. 94927-94933. | |
dc.identifier.uri | http://hdl.handle.net/20.500.11937/46052 | |
dc.identifier.doi | 10.1039/c6ra16983j | |
dc.description.abstract |
© 2016 The Royal Society of Chemistry. Lithium hydride destabilised with aluminium, LiH-Al (1:1 mole ratio) was systematically studied and its suitability as a thermal energy storage system in Concentrating Solar Power (CSP) applications was assessed. Pressure composition isotherms (PCI) measured between 506 °C and 652 °C were conducted to investigate the thermodynamics of H2 release. Above the peritectic temperature (596 °C) of LiAl, PCI measurements were not consistently reproducible, possibly due to the presence of a molten phase. However, below 596 °C, the hydrogen desorption enthalpy and entropy of LiH-Al was ?Hdes = 96.8 kJ (mol H2)-1 and ?Sdes = 114.3 J (K mol H2)-1, respectively LiH(s) at 956 °C, ?Hdes = 133.0 kJ (mol H2)-1 and ?Sdes = 110.0 J (K mol H2)-1. Compared to pure LiH, the Li-Al-H system has a reduced operating temperature (1 bar H2 pressure at T ~ 574 °C) that, combined with favourable attributes such as high reversibility, good kinetics and negligible hysteresis, makes the Li-Al-H system a potential candidate for solar thermal energy storage applications. Compared to pure LiH, the addition of Al can reduce the cost of the raw materials by up to 44%. This cost reduction is insufficient for next generation CSP but highlights the potential to improve the properties and cost of high temperature hydrides via destabilisation. | |
dc.publisher | Royal Society of Chemistry | |
dc.relation.sponsoredby | http://purl.org/au-research/grants/arc/LP150100730 | |
dc.title | Destabilization of lithium hydride and the thermodynamic assessment of the Li-Al-H system for solar thermal energy storage | |
dc.type | Journal Article | |
dcterms.source.volume | 6 | |
dcterms.source.number | 97 | |
dcterms.source.startPage | 94927 | |
dcterms.source.endPage | 94933 | |
dcterms.source.title | RSC Advances | |
curtin.department | Department of Physics and Astronomy | |
curtin.accessStatus | Fulltext not available |
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