Synthesis of porous zeolite molecular sieve using titanium-bearing blast furnace slag and its CO2 adsorption performance
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1.State Key Laboratory of Vanadium and Titanium Resources Comprehensive Utilization;2.Faculty of Chemical Engineering,Kunming University of Science and Technology

Clc Number:

X701

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The project was supported by open project of State Key Laboratory of Comprehensive Utilization of Vanadium and Titanium Resources (2022P4FZG03A); Applied Basic Research Program of Yunnan Province, China (Grant No., 202101BE070001-031); Analysis and Measurement Project of Kunming University of Science and Technology (Grant No., 2022T20160009)

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    Abstract:

    Using titanium-containing blast furnace slag produced during the smelting process of vanadium titanium magnetite concentrate as raw material, porous zeolite molecular sieve adsorbent was synthesized by the step of "acid treatment-alkali melting-hydrothermal crystallization". The effect of sodium metaaluminate addition on the structure type of porous zeolite was investigated. Dynamic adsorption method was used to evaluate the CO2 adsorption performance of the as-synthesized samples under different conditions, and the adsorption behavior was analyzed by data fitting with different kinetic models. The results of XRD、SEM、FTIR characterizations showed that the hydrothermal crystallization product in turn completed the transformation from “amorphous-preliminary crystallization-FAU type-LTA type” zeolite molecular sieve structure with the increase of sodium metaaluminate addition. The results of CO2 adsorption experiments showed that the Z-4 sample activated at 350 °C exhibited excellent adsorption performance at adsorption temperature of 25 °C, with the CO2 breakthrough and saturation adsorption capacities reaching 2.16 mmol?g-1 and 3.39 mmol?g-1, respectively. The CO2 adsorption behavior conformed to the pseudo-second-order kinetic model, and the adsorption was mainly physical and chemical adsorption, and the adsorption rate could reach 4.709 mmol?g-1?s-1. After 5 regeneration cycles, the saturation adsorption capacity remained basically unchanged, showing a good cyclic stability.

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History
  • Received:September 21,2023
  • Revised:December 27,2023
  • Adopted:November 14,2023
  • Online: August 08,2024
  • Published:
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