Thermodynamic Analysis of Air-Blown Staged Gasification of Coal in a Flow

D. Svishchev
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引用次数: 1

Abstract

One of the ways to environmentally friendly use coal is an integrated gasification combined cycle. The most common oxidizing agent employed in gasification is oxygen. It is feasible to use air instead of oxygen to reduce the cost of generated electricity. The air gasification downsides can be reduced by using heated air and organizing a staged process. The paper is concerned with a thermodynamic analysis of the MHPS (Mitsubishi Hitachi Power Systems) air-blown staged gasifier. The analysis relies on an original approach that suggests investigating experimental data on a set of calculated ones. The experimental run nears the thermodynamic optimum, which coincides with the carbon boundary line. Cold gas efficiency can be increased from 78.6 to 81.5% by reducing the equivalence ratio. Thus, the temperature will decrease from 1 200 to 1 100 °C. The experimental run of the MHPS gasifier is not optimal thermodynamically, but it is probably optimal kinetically. The fact is that the rates of heterophase reactions decline near the carbon boundary, which leads to a sharp increase in fuel underburning and a decrease in efficiency. The experimental run is also located close to the region with the maximum thermal efficiency of the process, which is indicative of the high efficiency of converting air heat into chemical energy of producer gas.
气流吹煤阶段气化的热力学分析
综合气化联合循环是煤炭环保利用的途径之一。气化过程中最常用的氧化剂是氧气。用空气代替氧气来降低发电成本是可行的。空气气化的缺点可以通过使用加热空气和组织一个阶段的过程来减少。本文对三菱日立动力系统(MHPS)气吹分级气化炉进行了热力学分析。该分析依赖于一种原始方法,即在一组计算数据上调查实验数据。实验运行接近热力学最佳值,与碳边界线重合。降低当量比可使冷气效率由78.6提高到81.5%。因此,温度将从1200°C下降到1100°C。MHPS气化炉的实验运行在热力学上不是最佳的,但在动力学上可能是最佳的。事实是,在碳边界附近,异相反应的速率下降,这导致燃料欠燃率急剧增加,效率下降。实验运行的位置也接近该工艺热效率最高的区域,这表明空气热量转化为产气化学能的效率很高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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