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Heat load capability matching principle and its applications to anti-freezing of air-cooled condenser

机译:热负荷能力匹配原理及其在风冷冷凝器防冻中的应用

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摘要

Air-cooled condenser in power plants takes a risk of freezing in extremely cold days, so it is of benefit to the safe and economical operation of direct dry cooling system to propose the anti-freezing principles and take measures. On the basis of the heat load balance between the exhaust steam and cooling air, the heat load capacity matching principle for the anti-freezing of air-cooled condenser is proposed with reference to the freezing point of water. By applying heat exchanger model to the finned tube bundles of air-cooled condenser, the thermo-aerodynamic behavior of cooling air, the condensation of exhaust steam and the sensible heat rejection of condensate in a representative air-cooled condenser cell are synchronously modeled and resolved. The correlations among the ambient temperature, flow rate of cooling air, exhaust steam flow rate and quality, and back pressure of turbine that prevent the air-cooled condenser from freezing are discussed, and the anti-freezing flow rate of exhaust steam, back pressure of turbine and flow rate of axial flow fan are obtained. The results show that the anti-freezing flow rate of exhaust steam and back pressure both increase with decreasing the ambient temperature and increasing the flow rate of axial flow fan, from which derive the secure steam flow rate that can reduce the back pressure as much as possible to improve thermal efficiency. The anti-freezing fan flow rate increases with increasing the exhaust steam flow rate and ambient temperature, but varies little with back pressure. The increased steam quality will result in a higher heat load at the steam side, which allows a higher rotational speed of fan to be free of freezing for air-cooled condenser. The application of heat load capacity matching principle to the anti-freezing of air-cooled condenser contributes to the secure and optimal operation of dry cooling system in power plants.
机译:发电厂的风冷冷凝器在极冷的天气中有冻结的危险,因此提出防冻原理并采取措施有利于直接干式冷却系统的安全经济运行。基于废气与冷却空气之间的热负荷平衡,结合水的凝固点,提出了风冷冷凝器防冻的热负荷容量匹配原理。通过将热交换器模型应用于风冷式冷凝器的翅片管束,同步建模并解决了冷却空气的热空气动力学行为,代表性冷凝式风冷式冷凝器中的排气冷凝水和冷凝水的显热排除问题。 。讨论了环境温度,冷却空气流量,排气蒸汽流量和质量以及防止空冷冷凝器冻结的涡轮机背压之间的关系,以及排气蒸汽的抗冻流量,背压计算出涡轮的功率和轴流风机的流量。结果表明,随着环境温度的降低和轴流风机流量的增加,排汽的抗冻流量和背压均增加,由此得出的安全蒸汽流量可以最大程度地降低背压。有可能提高热效率。防冻风扇的流量随排气流量和环境温度的增加而增加,但随背压的变化很小。蒸汽质量的提高将导致蒸汽侧的热负荷更高,从而使风扇的更高转速不受空冷冷凝器的冻结。热负荷容量匹配原理在风冷冷凝器防冻中的应用有助于电厂干冷系统的安全和最佳运行。

著录项

  • 来源
    《Applied Energy》 |2014年第15期|34-43|共10页
  • 作者单位

    Key Laboratory of Condition Monitoring and Control for Power Plant Equipments of Ministry of Education, China School of Energy Power and Mechanical Engineering, North China Electric Power University, Beijing J02206, China;

    Key Laboratory of Condition Monitoring and Control for Power Plant Equipments of Ministry of Education, China School of Energy Power and Mechanical Engineering, North China Electric Power University, Beijing J02206, China;

    Key Laboratory of Condition Monitoring and Control for Power Plant Equipments of Ministry of Education, China School of Energy Power and Mechanical Engineering, North China Electric Power University, Beijing J02206, China;

    Key Laboratory of Condition Monitoring and Control for Power Plant Equipments of Ministry of Education, China School of Energy Power and Mechanical Engineering, North China Electric Power University, Beijing J02206, China;

  • 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

    Air-cooled condenser; Heat load capability; Anti-freezing; Back pressure; Ambient temperature; Axial flow fan;

    机译:风冷冷凝器;热负荷能力;防冻;背压;环境温度轴流风机;

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