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An analysis of integration of a power plant with a lignite superheated steam drying unit

机译:电厂与褐煤过热蒸汽干燥装置的集成分析

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Future developments of energy conversion systems are expected to be based on second and third generation technology. One of the most innovative designs involves the integration of hard coal or lignite gasification technology with a gas turbine (GT) combined cycle, which is known as an Integrated Gasification Combined Cycle. This may constitute an advantageous future energy option, especially for the use of lignite. Gasification also provides one of the most efficient ways to produce clean fuel for the next electrical energy generating fuel cells and cars, as it permits the additional production of syngas with low levels of CO2 emissions. However, the performance of lignite (brown coal) fired IGCC is degraded by the very high content of moisture in the lignite. The most appropriate approach in order to fully utilise the potential of this type of fuel is the use of a drying system.In the present paper, an Integrated Gasification Combined Cycle for electricity production, coupled with a fuel preparation unit and a coal superheated steam drying system, is analysed. The novelty of the proposed system is its uniqueness in being equipped with a superheated coal drying system, which constitutes a potentially advantageous method of raising the calorific value of lignite and enhancing its use as a fuel. The proposed system permits lignite to become a valuable resource. The combined system is able to generate electricity with a thermal efficiency higher than for conventional systems and it decreases air pollution and fuel consumption. The system consists of seven dependent subsystems: fuel preparation (lignite drying), air separation unit (ASU), coal gasification, gas cleaning system, regeneration system heat recovery steam generator system, steam turbine and gas turbine. The present analysis demonstrates that lignite consists of more than 50 wt % (wet basis) moisture content before the drying process. In the analysed system, the process of drying coal takes place using steam at a pressure 1.2 bar and a temperature of 133.84 degrees C, which allows brown coal to be dried to 20 wt % (wet basis) of moisture content. The results show that with the coal drying system it is possible to increase significantly the efficiency of the system of the Integrated Gasification Combined Cycle up to 48%-56%, depending on the thermodynamic parameters of the process. The selected thermodynamic parameters are validated and compared with experimental data. (C) 2019 The Authors. Published by Elsevier Ltd.
机译:能量转换系统的未来发展预计将基于第二代和第三代技术。最具创新性的设计之一涉及将硬煤或褐煤气化技术与燃气轮机(GT)联合循环集成在一起,这称为集成气化联合循环。这可能构成有利的未来能源选择,尤其是对于褐煤的使用。气化还提供了生产下一代燃料电池和汽车的清洁燃料的最有效方法之一,因为它允许以较低的CO2排放量生产合成气。然而,褐煤(褐煤)燃烧的IGCC的性能由于褐煤中非常高的水分含量而降低。为了充分利用这种燃料的潜力,最合适的方法是使用干燥系统。在本文中,用于发电的集成气化联合循环系统,结合燃料制备单元和煤过热蒸汽干燥系统,进行分析。所提出的系统的新颖性在于其配备有过热煤干燥系统的独特性,这构成了提高褐煤的热值并增强其用作燃料的潜在有利方法。提议的系统允许褐煤成为有价值的资源。该组合系统能够以比传统系统更高的热效率发电,并且减少了空气污染和燃料消耗。该系统由七个从属子系统组成:燃料准备(褐煤干燥),空气分离单元(ASU),煤气化,气体净化系统,再生系统,热回收蒸汽发生器系统,蒸汽轮机和燃气轮机。本分析表明褐煤在干燥过程之前由超过50 wt%(湿基)的水分组成。在分析的系统中,使用压力为1.2巴,温度为133.84摄氏度的蒸汽进行煤炭干燥的过程,使褐煤干燥至水分含量为20 wt%(湿基)。结果表明,使用煤干燥系统,可以根据过程的热力学参数,将整体气化联合循环系统的效率显着提高至48%-56%。验证所选的热力学参数,并将其与实验数据进行比较。 (C)2019作者。由Elsevier Ltd.发布

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