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Optimization of boiler cold-end and integration with the steam cycle in supercritical units

机译:优化锅炉冷端并与超临界机组中的蒸汽循环整合

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摘要

In order to gain an extra increment of efficiency to compensate for capital costs, one of the main issues in the design of advanced supercritical power plants is the reduction of boiler exit gas temperature below typical values of conventional, subcritical units.rnCurrently, the use of heat exchange surfaces made of plastic has become feasible, thereby avoiding corrosion and fouling problems derived from cold-end acid condensate. In this manner, flue gas temperature can be reduced down to typically 90 ℃, which obviously leads to an increase of boiler efficiency. Besides, there is an additional energy available for heating the main condensate flow of the power cycle. If modification of air-gas rotary heaters is also considered, a manifold of possibilities opens up for plant optimization and integration of components. The objective of this paper is to analyze this class of schemes for increasing power output and net efficiency of a reference supercritical plant. A complete simulation of the steam cycle is assembled using Aspen Plus and different plant configurations are examined under reduced exit gas temperatures. Several uses of flue gas energy are considered, taking into account limits of temperature and realistic efficiencies of heat exchangers. Mass (low rates, point of extraction of condensate, pressures and temperatures are selected heuristically to optimize performance. Finally, required exchange areas are estimated, and a cost analysis is carried out in order to economically assess the new configurations and estimate the additional profit for the plant.
机译:为了获得更高的效率增量以补偿资本成本,高级超临界电厂的设计中的主要问题之一是将锅炉出口气体温度降低到低于常规亚临界机组的典型值。由塑料制成的热交换表面已经变得可行,从而避免了由冷端酸性冷凝物引起的腐蚀和结垢问题。这样,烟气温度可以降低到典型的90℃,这显然导致锅炉效率的提高。此外,还有其他能量可用于加热功率循环的主要冷凝水。如果还考虑对燃气旋转加热器进行改造,则为工厂优化和部件集成开辟了多种可能性。本文的目的是分析此类方案,以提高参考超临界电站的功率输出和净效率。使用Aspen Plus可以对蒸汽循环进行完整的模拟,并在降低的出口气体温度下检查不同的设备配置。考虑到温度限制和热交换器的实际效率,考虑了烟气能量的几种用途。试探性地选择质量(低流量,冷凝水提取点,压力和温度)以优化性能。最后,估计所需的交换面积,并进行成本分析,以便经济地评估新的配置并估计可带来的额外利润植物。

著录项

  • 来源
    《Applied Energy》 |2010年第5期|1651-1660|共10页
  • 作者单位

    CIRCE - Center of Research of Energy Resources and Consumptions, Department of Mechanical Engineering, University of Zaragoza, Maria de Luna 3, 50018 Zaragoza, Spain;

    CIRCE - Center of Research of Energy Resources and Consumptions, Department of Mechanical Engineering, University of Zaragoza, Maria de Luna 3, 50018 Zaragoza, Spain;

    CIRCE - Center of Research of Energy Resources and Consumptions, Department of Mechanical Engineering, University of Zaragoza, Maria de Luna 3, 50018 Zaragoza, Spain;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    supercritical steam cycle; integration; flue gas heat recovery; efficiency;

    机译:超临界蒸汽循环积分;烟气热回收;效率;
  • 入库时间 2022-08-18 00:10:23

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