首页> 外文会议>ASME turbo expo >NUMERICAL INVESTIGATION AND PERFORMANCE OPTIMIZATION OF AN AIR-COOLED STEAM CONDENSER CELL UNDER AMBIENT CONDITIONS
【24h】

NUMERICAL INVESTIGATION AND PERFORMANCE OPTIMIZATION OF AN AIR-COOLED STEAM CONDENSER CELL UNDER AMBIENT CONDITIONS

机译:环境条件下空冷蒸汽冷凝器单元的数值研究与性能优化

获取原文

摘要

Air-cooled steam condensers (ACSCs) are so sensitive to the unpredictable ambient conditions that it is quite necessary to find the mechanism how the ambient conditions get into reaction and reasonable measurements can be employed to improve the performance. The numerical model of an ACSC cell is established in the paper. The influence of the ambient conditions on the performance of the ACSC cell is investigated, and the final stable back pressure (absolute pressure) the ACSC cell operates at is forecasted. Finally, wind wall is equipped to change the flow field around the ACSC cell and the performance is optimized. Aerodynamic characteristic of the ACSC cell is simulated by employing the FAN boundary and porous media model in FLUENT. User Define Function (UDF) based on the actual steam property is loaded to simulate the condensation of the steam in the exchangers. The flow field around the ACSC cell varies with the different wind speeds and directions. As a result, the fan volumetric effectiveness and the exchanger performance both decrease under high wind speed and adverse wind direction. Wind temperature gets into reaction mainly because it changes the cold side temperature of the exchangers. Under high wind temperature, the reduced temperature difference decreases the heat transfer rate between the exhaust steam and the ambient air. The equipped wind wall successfully reduces the hot air recirculation (HAR) although the fan performance is also affected due to the gathering effect between the wind wall and heat exchangers, and the performance of the ACSC cell is significantly improved under the dual effects.
机译:风冷式蒸汽冷凝器(ACSC)对不可预测的环境条件非常敏感,因此非常有必要找到一种机制,以了解环境条件如何发生反应,并可以采用合理的测量方法来改善性能。建立了ACSC电池的数值模型。研究了环境条件对ACSC电池性能的影响,并预测了ACSC电池工作时的最终稳定背压(绝对压力)。最后,配备了防风墙以改变ACSC单元周围的流场,并优化了性能。通过在FLUENT中采用FAN边界和多孔介质模型来模拟ACSC电池的空气动力学特性。加载基于实际蒸汽属性的用户定义功能(UDF),以模拟交换器中蒸汽的冷凝。 ACSC单元周围的流场随风速和风向的不同而变化。结果,在高风速和不利的风向下,风扇的容积效率和交换器性能均下降。风温起反应的主要原因是它改变了交换器的冷侧温度。在高风温下,减小的温差会降低废气和环境空气之间的传热速率。尽管由于风壁和热交换器之间的聚集效应,风扇性能也受到影响,但配备的风壁成功地减少了热空气再循环(HAR),并且在双重效应下,ACSC电池的性能得到了显着改善。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号