首页> 外文会议>International conference on energy sustainability >PRESSURISED OXY-COAL COMBUSTION RANKINE-CYCLE FOR FUTURE ZERO EMISSION POWER PLANTS: PROCESS DESIGN AND ENERGY ANALYSIS
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PRESSURISED OXY-COAL COMBUSTION RANKINE-CYCLE FOR FUTURE ZERO EMISSION POWER PLANTS: PROCESS DESIGN AND ENERGY ANALYSIS

机译:未来零发射电厂的加压氧 - 煤燃烧兰骑兵循环:工艺设计和能源分析

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This paper presents the process design and the energy analysis for a coal-fired power plant based on pressurised oxy-coal combustion and including carbon capture technologies. A combustion technology performing a pressurised combustion of coal in an atmosphere of O_2/CO_2/H_2O and including flue gases recycling has been selected. Combustion and steam production occur in separated equipments and the combustor's design allows achieving high ash removal efficiency. The Rankine cycle has been chosen as the most viable thermodynamic cycle in a short-term scenario. Oxygen required by the combustion process is supplied by a cryogenic Air Separation Unit (ASU) and a double-reheat ultrasupercritical cycle is employed with main steam conditions of 250bar/605°C and reheat steam temperatures of 605°C/620°C. All choices related to thermal cycle selection and process design have been conducted upon the principle of feasibility and reliability. In order to increase net plant efficiency both sensible and latent heat is recovered from the flue gas stream before entering the purification and compression section. By operating in pressure it becomes possible to recover a larger amount of heat than in the atmospheric case. As a result, all low pressure steam bleedings and the corresponding regenerative heat exchangers can be eliminated. Process simulation is carried out in the paper and the expected efficiency is evaluated, as well as other cycle performance parameters. Since a relevant benefit may arise from the combustion of cheap coals, the impact of burning high-ash content and low ash-fusion-temperature coals is assessed. The impact of energy penalties associated to oxygen production and the benefit arising from high heat-transfer coefficients due to the increased pressure of the flue gas are deeply investigated.
机译:本文介绍了基于加压氧燃烧的燃煤发电厂的过程设计和能源分析,包括碳捕获技术。已经选择了在O_2 / CO_2 / H_2O的气氛中进行加压煤的燃烧技术,并包括烟道气回收回收。燃烧和蒸汽生产发生在分离设备中,并且燃烧器的设计允许实现高灰分去除效率。在短期场景中被选择为最可行的热力学循环。通过低温空气分离单元(ASU)提供燃烧过程所需的氧气,并使用250bar / 605℃的主蒸汽条件和605°C / 620℃的热蒸汽条件使用双重再加热临界循环。所有与热循环选择和工艺设计相关的选项都是在可行性和可靠性原理上进行的。为了提高净工厂效率,在进入净化和压缩部分之前,从烟道气流中回收明智和潜热。通过压力工作,可以在大气壳中回收更大的热量。结果,可以消除所有低压蒸汽出血和相应的再生热交换器。处理仿真在纸上进行,评估预期效率,以及其他循环性能参数。由于相关益处可能会从廉价煤的燃烧中产生,因此评估燃烧的高灰分含量和低灰分熔化煤的影响。对氧生产相关的能量惩罚的影响以及由于烟气压力增加而产生的高传热系数引起的益处被深受研究。

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