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Integration of in-situ CO_2-oxy coal gasification with advanced power generating systems performing in a chemical looping approach of clean combustion

机译:将原位CO_2-氧煤气化与先进的发电系统集成在一起,以清洁燃烧的化学循环方式执行

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Underground coal gasification (UCG) is a clean coal technology to utilize deep coal resources effectively. In-situ CO_2-oxy coal gasification may eliminate the operational difficulty of the steam gasification process and utilize CO_2 (greenhouse gas) effectively. Furthermore, it is necessary to convert the clean gasified energy from the UCG into clean combustion energy for an end-use. In order to achieve efficient clean power production, the present work investigates the thermodynamic feasibility of integration of CO_2 based UCG with power generating systems operating in a chemical looping combustion (CLC) of product gas. The use of CO enriched syngas from O_2/CO_2 based UCG reduces the difficulty of the heat balance between a fuel reactor and an air reactor in a nickel oxygen-carrier based CLC system. Thermodynamic analyses have been made for various routes of power generation systems such as subcritical, supercritical and ultra-supercritical boiler based steam turbines and gas turbines for the UCG integrated system. It is shown, based on mass and energy balance analysis, that the integration of CO_2 based UCG with the CLC system reduces the energy penalty of carbon capture and storage (CCS) significantly. A net thermal efficiency of 29.42% is estimated for the CCS incorporated system, which operates in a subcritical condition based steam turbine power plant. Furthermore, it is found that the efficiency of the proposed steam turbine system increases to 35.40% for an ultra-supercritical operating condition. The effect of operating temperature of the air reactor and the fuel reactor of the CLC system on the net thermal efficiency of combined cycle power plant is investigated. It is found that a net thermal efficiency of 42.53% can be obtained for the CCS incorporated combined cycle power system operating at an air reactor temperature of 1200 ℃.
机译:地下煤气化技术是一种有效利用深部煤炭资源的清洁煤技术。原位CO_2-氧气煤气化可以消除蒸汽气化过程的操作困难,并有效利用CO_2(温室气体)。此外,有必要将来自UCG的清洁气化能转换为清洁燃烧能以供最终使用。为了实现有效的清洁电力生产,本工作研究了基于CO_2的UCG与在产物气的化学回路燃烧(CLC)中运行的发电系统集成的热力学可行性。来自基于O_2 / CO_2的UCG的富含CO的合成气的使用降低了基于镍氧载体的CLC系统中燃料反应器和空气反应器之间热平衡的难度。已经对发电系统的各种路径进行了热力学分析,例如用于UCG集成系统的亚临界,超临界和超超临界锅炉蒸汽轮机和燃气轮机。根据质量和能量平衡分析,结果表明,基于CO_2的UCG与CLC系统的集成可显着减少碳捕获和存储(CCS)的能量损失。据估计,装有CCS的系统的净热效率为29.42%,该系统在亚临界条件下的蒸汽轮机发电站运行。此外,发现对于超超临界工况,所提出的蒸汽涡轮系统的效率提高到35.40%。研究了CLC系统的空气反应堆和燃料反应堆的工作温度对联合循环电厂净热效率的影响。研究发现,在空气反应堆温度为1200℃的条件下运行的装有CCS的联合循环发电系统,可获得的净热效率为42.53%。

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