Application of Core-Shell-Structured K2CO3-Based Sorbents in Postcombustion CO2Capture: Statistical Analysis and Optimization Using Response Surface Methodology

Autor: Bararpour, S. Toufigh, Adanez, Juan, Mahinpey, Nader
Zdroj: Energy & Fuels; March 2020, Vol. 34 Issue: 3 p3429-3439, 11p
Abstrakt: This study investigates the effect of core-shell-structured supports prepared with alumina as the core on the CO2capture performance of K2CO3. One main issue in using alumina-based-supported K2CO3is the high moisture uptake of the sorbent, which converts active sites of K2CO3to hydrated byproducts with a very low CO2capture capacity. To address this issue, the support was shelled with a less hydrophilic material using a core-shell technique. Six core-shell-structured supports were prepared using alumina-based cores (γ-alumina and boehmite), and TiO2, ZrO2, and SiO2shells. K2CO3was impregnated on each support and tested in a thermogravimetric analyzer over ten cycles. K2CO3/boehmite/TiO2showed the lowest moisture uptake and the highest surface area, and thus the best CO2capture performance. A semiempirical model was developed using a response surface methodology to optimize the CO2capture capacity of K2CO3/boehmite/TiO2. The optimal amounts of the operating parameters including carbonation temperature, carbonation time, and H2O-to-CO2flow rate ratio, were 61 °C, 40 min, and 1.15, respectively. The maximum CO2capture capacity at the optimal point was 6.61 mmol CO2/g K2CO3, which is equal to 92% of the theoretical value. Therefore, the use of K2CO3/boehmite/TiO2at the obtained optimal condition is proposed as a suitable option for postcombustion processes.
Databáze: Supplemental Index