HR: 1330h
AN: GC32A-0207    [PDF]
TI: CO$_2$ Extraction from Ambient Air Using Alkali-Metal Hydroxide Solutions Derived from Concrete Waste and Steel Slag
AU: * Stolaroff, J K
EM: jstolar@andrew.cmu.edu
AF: Civil and Environmental Engineering, Carnegie Mellon University, 118 Porter Hall, Pittsburgh, PA 15213-3890 United States
AU: Lowry, G V
EM: glowry@andrew.cmu.edu
AF: Civil and Environmental Engineering, Carnegie Mellon University, 118 Porter Hall, Pittsburgh, PA 15213-3890 United States
AU: Keith, D W
EM: keith@cmu.edu
AF: Engineering and Public Policy, Carnegie Mellon University, 129 Baker Hall, Pittsburgh, PA 15213-3890 United States
AB: To mitigate global climate change, deep reductions in CO$_2$ emissions are required in the coming decades. Carbon sequestration will play a crucial role in this reduction. Early adoption of carbon sequestration in low-cost niche markets will help develop the technology and experience required for large-scale deployment. One such niche may be the use of alkali metals from industrial waste streams to form carbonate minerals, a safe and stable means of sequestering carbon. In this research, the potential of using two industrial waste streams---concrete and steel slag---for sequestering carbon is assessed. The scheme is outlined as follows: Ca and Mg are leached with water from a finely ground bed of steel slag or concrete. The resulting solution is sprayed through air, capturing CO$_2$ and forming solid carbonates, and collected. The feasibility of this scheme is explored with a combination of experiments, theoretical calculations, cost accounting, and literature review. The dissolution kinetics of steel slag and concrete as a function of particle size and pH is examined. In stirred batch reactors, the majority of Ca which dissolved did so within the first hour, yielding between 50 and 250 $\frac{mg\; Ca}{g\; slag}$ and between 10 and 30 $\frac{mg\; Ca}{g\; concrete}$. The kinetics of dissolution are thus taken to be sufficiently fast to support the type of scheme described above. As proof-of-concept, further experiments were performed where water was dripped slowly through a stagnant column of slag or concrete and collected at the bottom. Leachate Ca concentrations in the range of 15 $mM$ were achieved --- sufficient to support the scheme. Using basic physical principles and numerical methods, the quantity of CO$_2$ captured by falling droplets is estimated. Proportion of water loss and required pumping energy is similarly estimated. The results indicate that sprays are capable of capturing CO$_2$ from the air and that the water and energy requirements are tractable. An example system for enacting the scheme is presented, along with capital and operational cost estimates. The system is found to be profitable for carbon credits above $\$5/ton\; C$. Many findings in this research apply to a more general set of systems which capture CO$_2$ from the air for sequestration. The metal-hydroxide solution in these systems is regenerated on site, allowing application of this scheme on as large a scale as needed. Implications of this study's findings for these more general carbon-capture systems is discussed.
DE: 1699 General or miscellaneous
SC: Global Climate Change [GC]
MN: 2003 Fall Meeting