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A thermodynamic analysis and economic evaluation of an integrated lignite upgrading and power generation system

机译:集成褐煤升级和发电系统的热力学分析与经济评价

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Effective upgrading for efficient utilisation of lignite is of great significance for countries that highly dependent on coal for power generation. This work proposed and evaluated an integrated system for lignite upgrading and utilisation using pre-drying, low-temperature oxidative pyrolysis (LTOP) and power generation, beneficially converting lignite into an exportable thermal coal while generating power locally. In the proposed system, LTOP was adopted to upgrade lignite, and the pre-drying process would reduce the moisture content of lignite prior to LTOP and boiler using steam bleeds from the conjunct steam turbine, saving a part of reaction heat consumed by moisture evaporation. The energy of raw syngas produced in LTOP process was efficiently utilised by co-combusting with a portion of pre-dried lignite in boiler, and the sensible heat of upgraded coal was recovered by preheating the feed/condensate water of steam turbine unit. With the developed models and process simulation, the mass and energy balance of the proposed integrated system for upgrading Zhundong lignite (ZD) in conjunction with a 600 MW supercritical electric power plant were determined. Detailed thermodynamic analysis showed that the proposed system produces annually 1.66 million tonnes of exportable upgraded coal with lower heating value (LHV) of 29.45 MJ/kg, as well as 3118.5 GWh electricity, with overall energy efficiency at 79.6% and the ratio of produced electricity over the energy of upgrade coal product at 22.9%. As a considerable technical route for long-distance energy transportation, economics of deploying the proposed systems in northwestern China and exporting the upgraded coal (TR-I) to the eastern seaboard over a distance of 3000 km was quantified, and compared with the option of adopting ultra-high voltage (UHV) electric power transmission (TR-II). It was shown that, the overall CAPEX of TR-I is similar to 59% less than that of TR-II and the gross cost of electricity (COE) of TR-I is cent 5.20/kWh, also much lower than that of the TR-II.
机译:对高效利用褐煤的有效升级对于高度依赖于发电煤炭的国家具有重要意义。该工作提出和评估了使用预干燥,低温氧化热解(LTOP)和发电的褐煤升级和利用的集成系统,其中有利地将褐煤转化为可出口的热煤,同时在本地发电。在拟议的系统中,采用LTOP升级褐煤,并且预干燥过程将在加入蒸汽涡轮机中使用蒸汽流出的蒸汽流出之前降低褐煤的水分含量,从而节省了水分蒸发消耗的一部分反应热量。通过与锅炉中的一部分预干燥的褐煤共同燃烧,通过将液体涡轮机组的进料/冷凝水回收,通过共燃烧加入LTOP工艺中产生的原始合成气的能量。利用开发的模型和工艺模拟,确定了升级Zhundong Lignite(ZD)的拟议集成系统的质量和能量平衡与600 MW超临界电力厂进行了升级。详细的热力学分析表明,该制定的系统每年生产166万吨出口升级煤,其供热值(LHV)为29.45 MJ / kg,电压为3118.5亿元,总能效为79.6%和生产电量的比例。在升级煤产能的能量下22.9%。作为长途能源运输的大量技术途径,在中国西北部部署所提出的系统并将升级的煤炭(TR-I)出口到东部海岸的经济学,量化,并与选项相比采用超高压(UHV)电力传输(TR-II)。结果表明,TR-1的总体支出与TR-II的总和少于59%,TR-I的电力总成本(COE)为5.20 /千瓦时,也远低于那个TR-II。

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