Effects of Fan Inflow Distortions on Heat Exchange in Air-Cooled Condensers: Unsteady Computations With Synthetic Blade Model

Gino Angelini, Tommaso Bonanni, A. Corsini, G. Delibra, L. Tieghi, David Volponi
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Abstract

Heat exchange in air-cooled condensers (ACC) is achieved by forced convection of fresh air on bundle of tubes by means of forced-draft axial-flow fans. These fans are characterized by low solidity and low hub ratio, large diameters, relatively low rotational velocity, high efficiencies. This combination usually leads to fans with non-stalling characteristics, with pressure rise continuously rising when reducing the flow rate, at least in standard (ISO or AMCA) test rigs. In real-life installations, in fact, it is quite difficult to characterize these fans, due to the practical difficulties arising in setting up a proper test rig and to control the boundary conditions of the system, in particular the fan inflow conditions. Here we focus on a real-life setting of ACC, numerically simulated with URANS. In this work the fan is simulated with a Synthetic Blade Model presented in [1]. This model is derived from actuator disk theory, and allows to simulate the unsteady movement of the blades and compute a non-constant azimuthal distribution of lift and drag forces, partially accounting for non-constant deviation in the blade-to-blade passage, while drastically reducing the mesh requirements. In this way it is possible to model the shedding of wakes behind the blades and their interaction with the heat exchanger. The flow will be assumed to be incompressible, due to the low Mach number and heat transfer will be treated assuming temperature to be a passive scalar convected by the flow. Duty point of the fan and heat exchange in the ACC will be studied while inflow conditions, in order to account for free inflow with a constant velocity distribution as well as distortions due to lateral wind. Computations will be carried out on the Virtual Test Rig of developed at Sapienza within the OpenFOAM 2.3.x library with a URANS approach and k-ε closure.
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风机流入变形对风冷冷凝器换热的影响:综合叶片模型的非定常计算
空冷式冷凝器(ACC)的换热是通过强制通风轴流风机使新风在管束上强制对流来实现的。这些风机的特点是低固体度和低轮毂比,大直径,相对低的转速,高效率。这种组合通常导致风机具有不失速特性,至少在标准(ISO或AMCA)测试台中,降低流量时压力上升持续上升。事实上,在实际安装中,由于在设置适当的试验台和控制系统的边界条件,特别是风扇流入条件方面存在实际困难,因此很难对这些风扇进行表征。在这里,我们专注于ACC的现实设置,用URANS进行数值模拟。本文采用文献[1]中的合成叶片模型对风机进行仿真。该模型来源于执行盘理论,可以模拟叶片的非定常运动,计算出升力和阻力的非恒定方位分布,部分考虑了叶片间通道的非恒定偏差,同时大大降低了网格要求。通过这种方式,可以模拟叶片后面尾迹的脱落及其与热交换器的相互作用。由于马赫数低,流将被假定为不可压缩,传热将被假定温度是被流对流的被动标量。在入流条件下,研究ACC风机的工作点和热交换,以解释匀速分布的自由入流以及侧风造成的扭曲。计算将在Sapienza在OpenFOAM 2.3中开发的虚拟测试平台上进行。使用URANS方法和k-ε闭包。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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