skip to main content
OSTI.GOV title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: Sequestration of CO2 in Mixtures of Caustic Byproduct and Saline Waste Water

Journal Article · · Environmental Engineering Science

Ex-situ carbonation of mixtures of caustic byproduct materials and produced oil-field brine provides a niche opportunity to sequester anthropogenic CO2, while concomitantly reducing the basicity of the reactive slurry. A series of tests were conducted to investigate a novel reaction concept designed to achieve neutralization of mixtures of acidic oil field produced brine and caustic industrial byproducts while sequestering substantial quantities of anthropogenic carbon dioxide (C02) in a mixed-flow reactor. Experiments were conducted to determine the COrbearing capacity of reactive mixtures of brine from the Oriskany Sandstone Formation with three caustic industrial byproducts: flue gas desulfurization (FGO) spray dryer ash, Class C fly ash subbituminous coal combustion byproduct, and bauxite residue slurry from the alumina production process. Reactions were conducted in a closed, well-mixed (1,500 rpm) reactor with gas composed of 29.46% vol./vol. CO2 balanced by nitrogen gas (N2) fed at a rate of 300mL/min. Reactions were carried out at ambient conditions. Results show linear relationships between caustic byproduct addition and COrbearing capacity, with relatively small impact of brine addition as compared to deionized water addition. FGO spray dryer ash/brine mixtures exhibited higher CO2 reactivity than those using Class C fly ash (0.759 moles CO2, at 23.6% solids by weight and 0.036 moles CO2 at 23.3% solids by weight, respectively). Bauxite residue exhibited moderate capacities in mixtures with higher percent solids (0.335 moles CO2 in 40% solids bauxite residue slurry). Carbonation capacity of caustic byproduct/ acidic brine mixtures was shown to increase linearly with respect to percent caustic byproduct addition, but enhanced mineral carbonate precipitation resulting from synergistic reaction of brine cations with increased dissolved carbonate species was not observed in the short term.

Research Organization:
National Energy Technology Lab. (NETL), Pittsburgh, PA, and Morgantown, WV (United States). In-house Research
Sponsoring Organization:
USDOE Office of Fossil Energy (FE)
OSTI ID:
1011238
Report Number(s):
NETL-TPR2373
Journal Information:
Environmental Engineering Science, Vol. 26, Issue 8; ISSN 1092--8758
Country of Publication:
United States
Language:
English

Similar Records

Sequestration of CO 2 in Mixtures of Caustic Byproduct and Saline Waste Water
Journal Article · Sat Aug 01 00:00:00 EDT 2009 · Environmental Engineering Science · OSTI ID:1011238

Sequestration of CO2 in Mixtures of Caustic Byproduct and Saline Waste Water
Journal Article · Sat Aug 01 00:00:00 EDT 2009 · Environmental Engineering Science · OSTI ID:1011238

Sequestration of CO{sub 2} in Mixtures of Caustic Byproduct and Saline Waste Water
Journal Article · Sat Aug 15 00:00:00 EDT 2009 · Environmental Engineering Science · OSTI ID:1011238