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CO2濃度對高鈣粉煤灰高溫固碳性能及其火山灰活性的影響

Effect of CO2 concentration on high-temperature carbon fixation and pozzolanic activity of high-calcium fly ash

  • 摘要: 為實現高鈣粉煤灰對燃煤電廠CO2的捕集并提升其火山灰活性,本文研究了不同氣氛下高鈣粉煤灰干法碳酸化的固碳性能及其對火山灰活性的影響. 采用空氣、模擬煙氣、O1C4(體積比VO2VCO2=1∶4)混合氣氛和純CO2氣氛,通過XRD、FTIR、N2吸附、SEM–EDS等手段表征碳酸化前后高鈣粉煤灰的物化結構,利用TG分析其固碳性能,并以固碳后高鈣粉煤灰–水泥結石體的抗壓強度為火山灰活性評價指標,表征分析不同齡期結石體的水化產物及微觀形貌,探究其作為建筑材料的可行性. 結果表明:煙氣、混合氣氛和純CO2氣氛下的固碳率分別為7.63%、8.25%和11.03%,單位CO2貢獻度分別為0.44、0.10和0.11,表明高鈣粉煤灰干法碳酸化效率較高,且煙氣氣氛下固碳效果最佳. 固碳后高鈣粉煤灰與水泥結石體的抗壓強度顯著提升:7 d抗壓強度分別增長6.4%、48.5%和72.5%,28 d分別增長7.6%、13.8%和44.7%,說明固碳顯著提升了高鈣粉煤灰的火山灰活性. 原因可能是CaCO3與水化鋁酸鈣反應生成單碳型水化碳鋁酸鈣,使鈣礬石穩定存在,孔結構更密實,孔隙率降低,從而提高結石體的抗壓強度.

     

    Abstract: To simultaneously capture CO2 emitted from coal-fired power plants and enhance the pozzolanic activity of high-calcium fly ash, this study investigates the carbon fixation behavior of high-calcium fly ash through dry carbonation under various atmospheric conditions. The influence of carbon fixation on the pozzolanic activity of the fly ash is also evaluated. The atmospheres used for dry carbonation include air, simulated flue gas, a mixture of O1C4(VO2VCO2=1∶4), and pure CO2. The physical and chemical characteristics of high-calcium fly ash before and after carbonation were analyzed using XRD, FTIR, N2 adsorption, and SEM–EDS. Carbon fixation performance was assessed through thermogravimetric analysis (TG). The pozzolanic activity was evaluated by measuring the compressive strength of cement-hardened pastes incorporating carbonated fly ash at different curing ages. The results show that the carbon fixation rates under flue gas, the O1C4 mixture, and pure CO2 atmospheres were 7.63%, 8.25%, and 11.03%, respectively. The corresponding contributions of unit CO2 to carbon fixation (i.e., the ratio of fixation rate to CO2 content in the atmosphere) were 0.44, 0.10, and 0.11, indicating that high-calcium fly ash exhibits high dry carbonation efficiency, with optimal performance under flue gas conditions. XRD results revealed stronger CaCO3 diffraction peaks in the carbonated SFg, SO1C4, and SC samples, while SEM images showed irregular block-shaped calcite particles adhered to the ash surface. The carbonated fly ash participated in cement hydration, contributing to improved volumetric stability. Following carbonation in flue gas, O1C4, and pure CO2 atmospheres, the 7-day compressive strength of fly ash-cement hardened pastes increased by 6.4%, 48.5%, and 72.5%, respectively, compared to uncarbonated samples. Similarly, 28-d compressive strength increased by 7.6%, 13.8%, and 44.7%, respectively. These results demonstrate that carbonation significantly enhances the pozzolanic activity of high-calcium fly ash, likely due to the formation of monocarbonate hydrates from the reaction of CaCO3 with hydrated calcium aluminate. This stabilizes ettringite and results in a denser pore structure, reducing porosity and improving compressive strength. Based on carbon fixation efficiency and compressive strength development, carbonation under a pure CO2 atmosphere yielded the most favorable results. It is therefore recommended to increase CO2 content during carbonation to enhance the pozzolanic activity of high-calcium fly ash, supporting its use as a cementitious material capable of capturing CO2 from flue gas while delivering high pozzolanic activity.

     

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