CATEGORY: CHEMICAL LOOPING
Energy Procedia, Volume 37, 2013, Pages 567–574
GHGT-11
Reactor
choices for chemical looping combustion (CLC) — Dependencies on materials
characteristics
Erin Kimball (a), Arnold Lambert (b), Anita Fossdal (c), Rebecca
Leenman (a), Elodie Comte (b), W.A.P. van den Bos (a), Richard Blom (c)
a TNO, P.O. Box 6012, NL-2600 JA Delft, The Netherlands
b IFPEN, Rond-point de l’échangeur de Solaize, 69360 Solaize, France
c SINTEF, Pb. 124 Blindern, N-0314 Oslo Norway
Abstract
The
physio-chemical stability of the oxygen carrier material during chemical
looping combustion (CLC) operation is crucial. In the present paper we discuss
the challenges connected to operating a metal oxide base material in a cyclic
manner between oxidizing and reducing atmospheres. Especially, focus has been
put on the phase changes occurring within the oxygen carrier particles leading
to changes in particle volume during operation and consequently, with time,
also particle disintegration. Particle sintering may also occur for some oxygen
carrier materials in their reduced form. These challenges have been exemplified
through lab-scale CLC experiments carried out both in fixed bed and fluidized
bed reactors.
Introduction
CLC is a cyclic process where a metal oxide first is used to combust a fuel,
and then the reduced metal oxide is re-oxidized in air before a new cycle can
be carried out (see Figure 1). Such a red-ox cycle can in principle be carried
out in two ways; either i) by moving the metal oxide between static gas streams
or ii) by keeping the metal oxide static while switching the gas streams.
Option i) is in most cases implemented with a dual circulating fluidized bed
(CFB) reactor setup where the metal oxide powder circulates between a fuel
reactor, in which the combustion takes place, and an air reactor, where
re-oxidation takes place [6][7] CFB reactors have recently gained by far the
most attention within the CLC community since this reactor type already has
commercial applications for combustion processes (boilers) and within refinery
processes, such as fluidized catalytic cracking (FCC). Option ii) most often
involves one or more fixed bed reactors where complex valving sequences assure
cyclic gas feeding to the reactors and optimal gas separation. Initial CLC
experiments were carried out in single fixed bed reactors [3][8].
In the present contribution we will discuss, in more general terms, the
properties of the oxygen carrier materials in connection to the kind of reactor
used for the CLC process. We will also present data from real CLC experiments
conducted in various reactor types using NiO/NiAl2O4 [10] as oxygen carrier
(OC) and discuss the material deactivation and particle degradation observed in
terms of changes in the particle properties during red-ox cycling at the
relevant conditions. The Cu based material Cu0.95Fe1.05AlO4 [9] has been
included due to its extreme changes in particle morphology upon red-ox cycling.
Also, the changes in particle morphologies upon unplanned stops and failures in
the CLC process will be discussed.
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