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TURBULENT FLOW BEHAVIOUR IN A PIPE FULLY SUBMERGED IN A HOT FLUID

机译:完全浸没在热流体中的管道中的湍流行为

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We report on an experimental study conducted to investigate the flow behaviour in a heat exchanger pipe submerged in a hot stagnant fluid. Particle Image Velocimetry (PIV) was used to measure the two-dimensional velocity field in the mid-vertical plane of the tube. Fluid temperatures in the cross-sectional plane were also measured using thermocouples. The mode of heat transfer into the pipe was mixed convection where both inertia and buoyancy contributed to the convection. The results show that when the contribution of buoyancy-driven flow (natural convection) was smaller than that of the inertia-driven flow (forced convection), in an originally turbulent flow, the shear-induced turbulence dominated the flow and the turbulent velocity profile was not influenced by the heat input. In an originally laminar flow, the role of buoyancy was primarily limited to the initiation of instabilities in the laminar flow to trigger the turbulence transition. The temperature profiles indicate the presence of stably stratified layer inside the pipe in originally laminar flow regime that suppressed the heat transfer rate. In originally turbulent regime, the fluid temperature field was nearly uniform indicating efficient flow mixing.
机译:我们报告进行的一项实验研究,以调查浸没在热停滞流体中的换热管中的流动行为。粒子图像测速(PIV)用于测量管中垂直平面中的二维速度场。横截面中的流体温度也使用热电偶测量。传热到管道的方式是混合对流,其中惯性和浮力都有助于对流。结果表明,当浮力驱动流(自然对流)的贡献小于惯性驱动流(强迫对流)时,在原始湍流中,剪切力引起的湍流主导了该流,并且湍流速度曲线不受热量输入的影响。在最初的层流中,浮力的作用主要限于层流中不稳定性的引发,以触发湍流过渡。温度曲线表明,在原始层流状态下,管道内部存在稳定的分层层,从而抑制了传热速率。在最初的湍流状态下,流体温度场几乎是均匀的,表明有效的流动混合。

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