A Plausible Model for the Sulfidation of a Calcium-Based Core-in-Shell Sorbent
Author(s) -
David Johann Ludwig Hasler,
L. K. Doraiswamy,
T.D. Wheelock
Publication year - 2003
Publication title -
industrial and engineering chemistry research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.878
H-Index - 221
eISSN - 1520-5045
pISSN - 0888-5885
DOI - 10.1021/ie020960p
Subject(s) - sulfidation , pellets , sorbent , porosity , pelletizing , inert , materials science , diffusion , coating , chemical engineering , shell (structure) , inert gas , composite material , mineralogy , metallurgy , chemistry , sulfur , adsorption , thermodynamics , organic chemistry , physics , engineering
A promising reusable sorbent for desulfurizing hot coal gas is being developed in the form of core-in-shell pellets which consist of a highly reactive CaO core encased in a porous protective shell made largely of an inert material. The spherical pellets are made by pelletizing plaster of Paris and then applying a coating of alumina (80%) and limestone (20%) particles. Subsequent high temperature treatment converts the cores to CaO and sinters the coating material to form the porous shells. The pellets absorb and react with H2S at high temperatures (e.g., 800−900 °C) to form CaS and are regenerated by applying a cyclic oxidation/reduction method. The rate of sulfidation does not appear to be controlled by chemical reaction but, instead, seems to be controlled by one or more of the following diffusion resistances: external gas film, porous shell, micropores between CaO grains in the core, and product layer surrounding CaO within each grain. After considering various models, a brief review of which is inclu...
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