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Reducing steam transport pipe temperatures in power plants

机译:降低电厂的蒸汽输送管温度

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A cycle analysis has been applied to a model of a advanced ultra-supercritical steam plant with novel steam pipes. The transfer pipes proposed incorporate internal thermal coatings and are externally jacketed to enable cooling. This enables higher temperature working steam, while keeping the pipe wall temperature below the acceptable limit for more conventional steel alloys and avoiding the need to use higher cost austenitic stainless steels and nickel base alloys. The baseline design had a superheat temperature of 700 degrees C and a reheat temperature of 720 degrees C. A thermal coating thickness of 2.8 mm is sufficient to keep the wall temperatures of the steam transfer pipe after the supercritical boiler below 600 degrees C. For the transfer pipe located after the reheater a thicker coating or less ambitious reheat temperature is required to achieve acceptable pipe wall temperatures. Whereas subcritical plant has a calculated cycle efficiency of 42.1%, the elevated temperature and pressure in a customary ultra-supercritical steam boost cycle efficiency to 52.2%. Modifying this design with a thermal barrier lowers the cycle efficiency to 51.4%, still appreciably better than for subcritical plant. Alternative plant cooling arrangements might improve pipe temperatures but have minimal impact on overall cycle efficiency. (C) 2019 Elsevier Ltd. All rights reserved.
机译:循环分析已应用于具有新型蒸汽管的先进超超临界蒸汽设备的模型。提出的输送管带有内部热涂层,并在外部加外套以实现冷却。这样可以产生更高温度的工作蒸汽,同时将管壁温度保持在更常规的钢合金可接受的极限以下,并且无需使用成本更高的奥氏体不锈钢和镍基合金。基准设计的过热温度为700摄氏度,再热温度为720摄氏度。2.8毫米的热涂层厚度足以使超临界锅炉后的蒸汽输送管的壁温保持在600摄氏度以下。为了达到可接受的管壁温度,需要在再热器后的输液管上涂一层较厚的涂料或降低再热温度。亚临界工厂的循环效率经计算为42.1%,而常规超超临界蒸汽中升高的温度和压力将循环效率提高至52.2%。用隔热层修改此设计可将循环效率降低至51.4%,仍然明显优于亚临界电厂。替代性的工厂冷却布置可能会提高管道温度,但对整体循环效率的影响却很小。 (C)2019 Elsevier Ltd.保留所有权利。

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