A directly irradiated solar reactor for kinetic analysis of non-volatile metal oxides reductions
Authors/Creators
Description
A directly irradiated solar reactor was designed and built to develop kinetic analysis of metal oxides reductions present inmany high-temperature thermochemical processes. The reactions were monitored by measuring the oxygen concentrationin a carrier gas stream. The pattern flow in the reactor cavity was determined by applying the dispersion law. Thedimensionless group D/uL was calculated for flows of 9, 12, and 15 Nl/min, and room and operation temperature. It wasfound to be close to an ideal plug flow behavior in every case. The solar reactor was also thermally characterized, whichinvolved the operation temperature measurement and the thermal efficiency obtaining. For an incoming power of 530 W,temperatures higher than 1400 °C were measured at the middle of the cavity (where the sample should be placed), andthermal efficiency of 41.6% was calculated. Then, a methodology for kinetic analysis was proposed and applied to a casestudy. It consisted of a combination of experimental results and a numerical model that reproduced the reactant sampleperformance. Kinetic was obtained for the layer of reactive particles that were directly heated by concentrated radiation.Kinetic data were fitted to diffusion-controlled mechanism, and obtained kinetic parameters were E a = 362 kJ/mol andA = 1.39•10 9/s.
Files
Intl J of Energy Research - 2015 - Alonso - A directly irradiated solar reactor for kinetic analysis of non‐volatile metal.pdf
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(1.4 MB)
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Additional details
Dates
- Accepted
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2015-01-28
- Available
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2015-03-18