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A chemically intercooled gas turbine cycle for recovery of low-temperature thermal energy

机译:化学中冷燃气轮机循环,用于回收低温热能

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摘要

In this paper, we have proposed a gas turbine combined cycle with the integration of low-temperature thermal energy and methanol decomposition, and also investigated a principle of the cascade utilization of chemical exergy of fuel. Here, the combustion of methanol fuel is divided up into two steps: the methanol is decomposed into the syngas with hydrogen and carbon monoxide through recovering the low-temperature thermal energy from an intercooler of a gas turbine, and then the syngas is combusted with air, namely, the indirect combustion of methanol. As a result, the exergy destruction in the combustion of syngas is expected to be decreased by 7.5 percentage points of the input energy of cycle; at the same time, the low-temperature thermal energy is upgraded to the chemical energy of fuel, and the thermal efficiency of this gas turbine cycle is expected to be about 6 percent points higher than that of a conventionally combined cycle with intercooling at the turbine inlet temperature of 1300℃ and at a given overall pressure ratio of 15. The promising results obtained here indicated that this gas turbine combined cycle could simultaneously accomplish the decrease of exergy destruction in combustion and the upgrade of low-temperature thermal energy levels, leading to the effective utilization of clean syngas fuel and the recovery of low-temperature thermal energy in power system.
机译:本文提出了一种结合了低温热能和甲醇分解的燃气轮机联合循环系统,并研究了燃料化学能级联利用的原理。在此,甲醇燃料的燃烧分为两个步骤:通过从燃气轮机的中间冷却器回收低温热能,使甲醇与氢气和一氧化碳分解为合成气,然后将合成气与空气燃烧即甲醇的间接燃烧。结果,合成气燃烧的火用破坏预计将减少循环输入能量的7.5个百分点。同时,低温热能被升级为燃料的化学能,该燃气轮机循环的热效率预计将比传统的联合循环并在涡轮机上进行中冷的热效率高约6%。在给定的总压力比为15的条件下,进气温度为1300℃。在此获得的令人鼓舞的结果表明,这种燃气轮机联合循环可同时实现燃烧时火用破坏的减少和低温热能水平的提升,从而有效利用清洁合成气燃料并回收电力系统中的低温热能。

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  • 来源
    《Energy》 |2006年第11期|p.1554-1566|共13页
  • 作者单位

    Institute of Engineering Thermophysics, Chinese Academy of Sciences P.O. Box 2706, Beijing 100080, People's Republic of China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 能源与动力工程;
  • 关键词

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