Youxing Wei , Zhongya Xi , Yueyue Xia , Jianfeng Cai , Zhenghui Li , Zhimin Lu , Shunchun Yao
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引用次数: 0
Abstract
The innovative approach of using carbon-free NH3 co-firing with pulverized coal to reduce the CO2 emission of thermal power plants has drawn increasing attention. Understanding the complex gas–solid interactions among NH3, volatiles and char combustion is crucial for developing the NH3/coal co-firing technology. In this study, the TG-FTIR technique was used to systematically reveal the influence of NH3 existence on the entire process of coal pyrolysis-combustion, where the co-pyrolysis behavior, the evolution of N-containing species, the kinetic analysis of char combustion, and the physical and chemical properties of coal ash were investigated. The results show that NH3 mixing can promote the volatile release and char refinement, enhance the NH3 adsorption capacity on the char surface, and significantly improve the physicochemical properties of char. Meanwhile, it is found that the quaternary-N content of char increases by up to 31.30% as the NH3 mixing ratio increases from 5% to 50%, while the pyridine-N exhibits the opposite trend, with a maximum reduction of 48.20%. These changes effectively lower the combustion characteristic temperature and activation energy, thereby improving combustion efficiency. Furthermore, NH3 existence changes the composition and structure of coal ash, facilitates the deconstruction of inorganic functional groups, increases the reactive sites of Al-OH, and optimizes the surface pore structure and iron enrichment of coal particles. This mixed NH3 pre-pyrolysis and char combustion process provides novel insights for NH3/coal co-firing technology.
期刊介绍:
Encouraging a transition to a sustainable energy future is imperative for our world. Technologies that enable this shift in various sectors like transportation, heating, and power systems are of utmost importance. Sustainable Energy Technologies and Assessments welcomes papers focusing on a range of aspects and levels of technological advancements in energy generation and utilization. The aim is to reduce the negative environmental impact associated with energy production and consumption, spanning from laboratory experiments to real-world applications in the commercial sector.