Design and operation of a metal hydride reactor within a thermochemical energy store for use in concentrated solar powerTools Adams, Marcus J. (2021) Design and operation of a metal hydride reactor within a thermochemical energy store for use in concentrated solar power. PhD thesis, University of Nottingham.
AbstractThis thesis covers the design of a metal hydride reactor within a thermo-chemical energy store for use in concentrated solar power (CSP). Thermo-chemical energy storage has been explored to improve on existing sensible heat technologies, potentially enabling fulfilment of CSP thermal energy storage cost targets, where metal hydrides have emerged as a TCES front-runner. This work introduces a unifying model for both the hydrogenation and dehydrogenation kinetics of MgH2, through the Site Availability Model (SAM). The model expands on Langmuir’s site theory, in which a site can also be unavailable or available to react. This “unavailability” is governed by the site availability driving force, incorporating ideas such as site de-activation and strain/relaxation, which is influenced by temperature and pressure. These phenomena are proposed for both hydrogenation and dehydrogenation. In addition, SAM assumes the rate determining step is at the surface, where both hydrogenation/dehydrogenation assume a spherical surface, with dehydrogenation including the concept of particle fragmentation.
Actions (Archive Staff Only)
|