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NUMERICAL INVESTIGATION OF CHAR REACTIVITY IN OXY-COAL COMBUSTION IN CARBON CAPTURE AND SEQUESTRATION TECHNOLOGIES

机译:碳捕集与分离技术中焦煤燃烧中炭反应性的数值研究

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Oxy-coal combustion with CO_2 capture from flue gas is an emerging technology that can be adapted to both new and existing coal-fired power stations leading to substantial reduction in carbon emission from the power generation industry. However, switching to oxy-coal brings a number of uncertainties to the combustion process and there is a significant knowledge gap in this new technology. Computational Fluid Dynamic (CFD) studies can be used as one of the tool to identify the extent of the modifications required due to changes in the process. One of the possible challenges is related to the the changes in char combustion and char reactivity which may have an impact on unburned carbon in the furnace. In this study, two approaches have been undertaken to investigate the impact of oxy-coal combustion on char reactivity: simple equilibrium calculations and numerical 3-D simulations. As the focus of this study, the influence of CO_2-O_2 combustion environment on char reactivity and particularly carbon in ash has been investigated. It has been found that the effect of C-CO_2 and C-H_2O reactions on overall char reactivity cannot be disregarded. In addition, in this study, it is suggested that using the Langmuir-Hinshelwood mechanism can provide a more accurate prediction for the effect of gasification reactions on unburnt carbon and char reactivity. The accuracy of the CFD modeling has been investigated using experimental data from a one MW_(th) combustion test facility. In order to improve the validity of the CFD code for design purposes, further modeling improvements for accurate predictions are addressed.
机译:从烟气中捕获CO_2的富氧煤燃烧是一项新兴技术,可以同时应用于新的和现有的燃煤电站,从而显着减少发电行业的碳排放量。但是,改用氧气煤给燃烧过程带来了许多不确定性,并且这项新技术存在很大的知识空白。计算流体动力学(CFD)研究可用作确定由于工艺变化而需要进行的修改程度的工具之一。可能的挑战之一与焦炭燃烧和焦炭反应性的变化有关,这些变化可能会对熔炉中未燃烧的碳产生影响。在这项研究中,已经采取了两种方法来研究氧煤燃烧对炭反应性的影响:简单的平衡计算和数值3D模拟。作为研究的重点,研究了CO_2-O_2燃烧环境对炭反应性,特别是灰分中碳的影响。已经发现,不能忽视C-CO_2和C-H_2O反应对总体炭反应性的影响。此外,在这项研究中,建议使用Langmuir-Hinshelwood机理可以更准确地预测气化反应对未燃烧碳和焦炭反应性的影响。 CFD建模的准确性已使用1 MW_(th)的实验数据进行了研究 燃烧测试设备。为了提高CFD代码出于设计目的的有效性,提出了对准确预测进行进一步建模的改进。

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