Literature DB >> 11355461

Entrained-flow adsorption of mercury using activated carbon.

S D Serre1, B K Gullett, S B Ghorishi.   

Abstract

Bench-scale experiments were conducted in a flow reactor to simulate entrained-flow capture of elemental mercury (Hg0) by activated carbon. Adsorption of Hg0 by several commercial activated carbons was examined at different C:Hg ratios (by weight) (350:1-29,000:1), particle sizes (4-44 microns), Hg0 concentrations (44, 86, and 124 ppb), and temperatures (23-250 degrees C). Increasing the C:Hg ratio from 2100:1 to 11,000:1 resulted in an increase in removal from 11 to 30% for particle sizes of 4-8 microns and a residence time of 6.5 sec. Mercury capture increased with a decrease in particle size. At 100 degrees C and an Hg0 concentration of 86 ppb, a 20% Hg0 reduction was obtained with 4- to 8-micron particles, compared with only a 7% reduction for 24- to 44-micron particles. Mercury uptake decreased with an increase in temperature over a range of 21-150 degrees C. Only a small amount of the Hg0 uptake capacity is being utilized (less than 1%) at such short residence times. Increasing the residence time over a range of 3.8-13 sec did not increase adsorption for a lignite-based carbon; however, increasing the time from 3.6 to 12 sec resulted in higher Hg0 removal for a bituminous-based carbon.

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Year:  2001        PMID: 11355461     DOI: 10.1080/10473289.2001.10464302

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


  2 in total

1.  Adsorption of Mercury on Chlorine-Modified Activated Carbon: Breakthrough Curves and Temperature-Programmed Desorption.

Authors:  Julian Steinhaus; Christoph Pasel; Christian Bläker; Dieter Bathen
Journal:  ACS Omega       Date:  2022-06-28

2.  Impact of H2O on the Adsorption of Hg0 on Activated Carbon.

Authors:  Julian Steinhaus; Christoph Pasel; Christian Bläker; Dieter Bathen
Journal:  ACS Omega       Date:  2021-06-24
  2 in total

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