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Performance Forecast of Air-Cooled Steam Condenser under Windy Conditions

机译:大风条件下风冷式蒸汽冷凝器的性能预测

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摘要

Ambient wind has adverse impacts on the thermal-flow performances of air-cooled steam condensers (ACSCs). It is useful to understand the mechanisms of such influences so as to improve and optimize the performance of condensers. The flow fields around an ACSC at different wind speeds and directions are numerically investigated in this paper. It is found that the negative pressure region under the ACSC platform results in volumetric effectiveness reduction of the windward fans with increasing wind speed, and hot air recirculation or reversed flow in condenser cells causes a fan inlet air temperature increase. Under windy conditions, if a main building blockage effect exists, either hot air recirculation will occur, or else reversed flow may arise. The negative pressure region under the platform plays a leading role in the heat transfer effectiveness reduction. From the scale of condenser cell instead of the whole ACSC, stable backpressures corresponding to the windy conditions are forecasted by the combination of the effectiveness-NTU method and the numerical method, which makes the model closed to the true status. The increasing amplitudes of the backpressures reach, respectively, 14.3, 15.4, and 6.4kPa at +X, +Y and west-northwest wind direction as the wind speed increases from 0 to 9m/s.
机译:周围的风对风冷蒸汽冷凝器(ACSC)的热流性能有不利影响。了解这种影响的机制以改善和优化冷凝器的性能非常有用。本文通过数值研究了不同风速和风向下ACSC周围的流场。发现在ACSC平台下的负压区域会导致风向风扇的容积效率随风速的增加而减小,并且热空气再循环或冷凝器电池中的逆流会导致风扇入口空气温度升高。在有风的条件下,如果存在主要建筑物阻塞效应,则将发生热空气再循环,否则可能会产生逆流。平台下方的负压区域在降低传热效率方面起着主导作用。通过有效性-NTU方法和数值方法相结合,从冷凝器电池的规模而不是整个ACSC的角度,预测了与大风条件相对应的稳定背压,从而使模型接近于真实状态。随着风速从0上升到9m / s,在+ X,+ Y和西北偏北的风向,背压的增加幅度分别达到14.3、15.4和6.4kPa。

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