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POWER GENERATION BY LOW CONDITION HEAT GENERATOR COMBINED WITH ADVANCED OXY-FUEL COMBUSTION LNG GAS TURBINE POWER PLANT

机译:低条件热发生器与先进的氧燃料燃烧式LNG燃气轮机发电厂联合发电

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We propose a novel concept for power generation that involves the combination of a low-condition heat generator (LCHG), such as a light water nuclear reactor or a biomass combustion boiler, with an advanced closed-cycle oxy-fuel combustion gas turbine—a type of complex and efficient oxy-fuel gas turbine plant, in accordance with our previous studies in combination with a simple oxy-fuel gas turbine plant. In this study, a LCHG is designed to heat water to saturated steam of a few MPa, to assist in the generation of the main working fluids, instead of a compressor used in the advanced oxy-fuel gas turbine. This saturated steam can have a lower pressure and temperature than those of an existing nuclear power plant or biomass-fired power plant. We estimated plant performances from a heat balance model based on a conceptual design of a plant for different gas turbine inlet pressures of 2.5-6.5 MPa and temperatures of 1300 and 1500°C, taking into account the work to produce O_2 and capture CO_2. While the net power generating efficiencies of a reference advanced oxy-fuel gas turbine plant are estimated to be about 52.0% and 56.0% at 1300 and 1500°C, respectively, and conventional steam power generation is assumed to have an efficiency of about 35% or less for pressures of 2.5-6.5 MPa, the proposed hybrid plant achieved 42.8-44.7% at 1300°C and 47.8-49.2% for 1500°C. In the proposed plant, the power output contributed by a LCHG may be obtained by subtracting five LNG contribution from the whole net power output. Even supposing that the generation efficiency of the LNG system in the proposed plant remains equal to that of the reference plant (56.0% at 1500°C), some components used in the reference plant are omitted by installation of the LCHG. The efficiency of LCHG system can be estimated 37.4% for 6.5 MPa and 33.2% for 2.5 MPa, even though the LHCG system may be regarded as consisting of fewer plant facilities than a conventional LCHG power plant.
机译:我们提出了一种新的发电概念,其中涉及将诸如轻水核反应堆或生物质燃烧锅炉之类的低温生热器(LCHG)与先进的闭环氧气-燃料燃气轮机相结合-根据我们以前的研究,结合简单的氧气-燃气轮机装置,我们可以找到一种类型的复杂高效的氧气-燃气轮机装置。在这项研究中,LCHG旨在将水加热到几MPa的饱和蒸汽,以帮助产生主要的工作流体,而不是用于先进的氧气-燃气轮机的压缩机。该饱和蒸汽的压力和温度可能低于现有核电站或生物质发电厂的压力和温度。我们基于热平衡模型估算了工厂的性能,该模型基于工厂的概念设计,适用于2.5-6.5 MPa的不同燃气轮机入口压力以及1300和1500°C的温度,同时考虑了生产O_2和捕获CO_2的工作。在1300和1500°C时,参考先进的含氧燃气轮机的净发电效率估计分别约为52.0%和56.0%,而常规蒸汽发电的效率约为35%。对于2.5-6.5 MPa或更低的压力,拟议的混合动力装置在1300°C下达到42.8-44.7%,在1500°C下达到47.8-49.2%。在拟议的工厂中,可以通过从整个净功率输出中减去五个LNG贡献来获得LCHG贡献的功率输出。即使假设拟议工厂中的LNG系统的发电效率仍保持与参考工厂相同(在1500°C下为56.0%),安装LCHG可以省去参考工厂中使用的某些组件。即使LHCG系统被认为比常规LCHG电厂更少的电厂设施组成,对于6.5 MPa的LCHG系统的效率也可以估计为37.4%,对于2.5 MPa的效率可以估计为33.2%。

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