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EVALUATION FOR SCALABILITY OF A COMBINED CYCLE USING GAS AND BOTTOMING SCO2 TURBINES

机译:使用气体和底部SCO2涡轮机的组合循环的可扩展性评估

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Bottoming cycles are drawing a real interest in a world where resources are becoming scarcer and the environmental footprint of power plants is becoming more controlled. Reduction of flue gas temperature, power generation boost without burning more fuel and even production of heat for cogeneration applications are very attractive and it becomes necessary to quantify how much can really be extracted from a simple cycle to be converted to a combined configuration. As supercritical CO_2 is becoming an emerging working fluid [2, 3, 5, 7 and 8] due not only to the fact that turbomachines are being designed significantly more compact, but also because of the fluid's high thermal efficiency in cycles, it raises an increased interest in its various applications. Evaluating the option of combined gas and supercritical CO_2 cycles for different gas turbine sizes, gas turbine exhaust gas temperatures and configurations of bottoming cycle type becomes an essential step toward creating guidelines for the question, "how much more can I get with what I have?". Using conceptual design tools for the cycle system generates fast and reliable results to draw this type of conclusion. This paper presents both the qualitative and quantitative advantages of combined cycles for scalability using machines ranging from small to several hundred MW gas turbines to determine which configurations of S-CO_2 bottoming cycles are best for pure electricity production.
机译:底层周期正在吸引一个真正的兴趣,其中在资源变得稀少,电厂的环境足迹变得更加控制。烟道气温度的降低,发电增压而不燃烧更多燃料甚至产生热电联产应用的热量非常有吸引力,并且必须量化从简单的循环中真正提取多少可以转换为组合配置。由于超临界CO_2正在成为新兴工作流体[2,3,5,7和8],这是由于涡轮机设计得明显更紧凑,而且由于流体在循环中的高热效率,因此它提高了增加了对各种应用的兴趣。评估组合气体和超临界CO_2循环的选项,用于不同的燃气轮机尺寸,燃气轮机排气气温和底循环型的配置成为为该问题创建指南的基本步骤,“我有多能得到我所拥有的东西? “。使用循环系统的概念设计工具产生快速且可靠的结果,以绘制此类结论。本文介绍了组合循环的定性和定量优势,用于使用从小到几百MW燃气轮机的机器来确定S-CO_2底层最适合纯电力生产的配置。

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