Intelligent Construction Automation Center, Kyungpook National University, Daegu 41566, Republic of Korea.
Mineral Resources Research Division, Korea Institute of Geoscience and Mineral Resources, Daejeon 34132, Republic of Korea; University of Science and Technology, Daejeon 34113, Republic of Korea.
Waste Manag. 2020 Oct;116:140-146. doi: 10.1016/j.wasman.2020.08.001. Epub 2020 Aug 12.
Integrated gasification combined cycle (IGCC) is a highly efficient method for producing electricity but discharges a byproduct in the form of a glassy slag, similar to other electricity generation operations. Several technologies for recycling IGCC slag have been developed thus far, although the results obtained are not promising or universally applicable. We quantitatively characterized an IGCC slag by using various testing methods, including an automated scanning electron microscopy-energy dispersive spectrometry (SEM-EDS) system, to recognize its potential for recycling. The IGCC slag did not contain free CaO, and the absence of free lime would address a concern of volumetric expansion during hydration. Automated SEM-EDS analysis revealed that approximately 98% of the IGCC slag particles consisted of calcium-rich aluminosilicate materials. Obvious differences in the concentrations of Si, Al, and Ca between the amorphous phases and the average chemical bulk were recognized. The chemical composition of the amorphous Si-Al-Ca phases was similar to that of Class C fly ash, while the average bulk composition of the IGCC slag was in between that of Class C and Class F fly ashes. Considering this discrepancy, understanding the dissolution mechanism of the reactive amorphous fraction as well as an exact assessment of the reaction products based on the role of Ca in alkali-activated materials provides a new approach for the valorization of IGCC slag.
整体煤气化联合循环(IGCC)是一种高效发电方法,但会以玻璃态炉渣的形式排放副产品,这与其他发电作业类似。迄今为止,已经开发出了几种用于回收 IGCC 炉渣的技术,但得到的结果并不理想或不具有普遍适用性。我们使用各种测试方法,包括自动化扫描电子显微镜-能量色散光谱(SEM-EDS)系统,对 IGCC 炉渣进行了定量表征,以确定其回收利用的潜力。IGCC 炉渣中不含游离 CaO,而且没有游离石灰,这解决了在水合过程中体积膨胀的问题。自动化 SEM-EDS 分析表明,大约 98%的 IGCC 炉渣颗粒由富钙铝硅酸盐材料组成。在无定形相与平均化学总体之间,发现了 Si、Al 和 Ca 的浓度存在明显差异。无定形 Si-Al-Ca 相的化学成分类似于 C 类飞灰,而 IGCC 炉渣的平均总体化学成分则介于 C 类和 F 类飞灰之间。考虑到这种差异,了解反应性无定形部分的溶解机制以及基于 Ca 在碱激活材料中的作用对反应产物进行准确评估,为 IGCC 炉渣的增值利用提供了一种新方法。