Literature DB >> 12184687

A mechanism for mercury oxidation in coat-derived exhausts.

Stephen Niksa1, N Fujiwara, Y Fujita, K Tomura, H Moritomi, T Tuji, S Takasu.   

Abstract

This paper evaluates an elementary reaction mechanism for Hg0 oxidation in coal-derived exhausts consisting of a previously formulated homogeneous mechanism with 102 steps and a new three-step heterogeneous mechanism for unburned carbon (UBC) particles. Model predictions were evaluated with the extents of Hg oxidation monitored in the exhausts from a pilot-scale coal flame fired with five different coals. Exhaust conditions in the tests were very similar to those in full-scale systems. The predictions were quantitatively consistent with the reported coal-quality impacts over the full range of residence times. The role of Cl atoms in the homogeneous mechanism is hereby supplanted with carbon sites that have been chlorinated by HCl. The large storage capacity of carbon for Cl provided a source of Cl for Hg oxidation over a broad temperature range, so initiation was not problematic. Super-equilibrium levels of Cl atoms were not required, so Hg was predicted to oxidize in systems with realistic quench rates. Whereas many fundamental aspects of the heterogeneous chemistry remain uncertain, the information needed to characterize Hg oxidation in coal-derived exhausts is now evident: complete gas compositions (CO, hydrocarbons, H2O, O2 NOx, SOx), UBC properties (size, total surface area), and the ash partitioning throughout the exhaust system are required.

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Year:  2002        PMID: 12184687     DOI: 10.1080/10473289.2002.10470829

Source DB:  PubMed          Journal:  J Air Waste Manag Assoc        ISSN: 1096-2247            Impact factor:   2.235


  1 in total

1.  Mercury capture by native fly ash carbons in coal-fired power plants.

Authors:  James C Hower; Constance L Senior; Eric M Suuberg; Robert H Hurt; Jennifer L Wilcox; Edwin S Olson
Journal:  Prog Energy Combust Sci       Date:  2010-08-01
  1 in total

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