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Investigation of in-tube cooling of carbon dioxide at supercritical pressure by means of direct numerical simulation

机译:通过直接数值模拟研究超临界压力下的管内二氧化碳冷却

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To understand the cooling heat transfer behavior of carbon dioxide at supercritical pressure, direct numerical simulations of the flow and heat transfer in circular tubes have been performed at a pressure of 8 MPa, an inlet temperature of 342.05 K and a moderate inlet Reynolds number of 5400. The tube diameter was 2 mm, which is in the range of the hydraulic diameter of a compact heat exchanger. Both forced (gravity neglected) and mixed convection with upward or downward direction of the flow were simulated while the pipe is in vertical orientation. As result of thermal contraction, flow deceleration was observed primarily in the vicinity of the wall, which is opposite to the acceleration observed with wall heating. It is found that combined effects of deceleration and buoyancy in the upward flow enhance the heat transfer while the heat transfer in the downward flow is deteriorated. Further investigations have educed that in downward flow, when the direction of buoyancy force and flow are the same, all turbulent quantities diminish significantly in the axial direction, which is the reason for heat transfer deterioration. Quadrant and octant analyses are presented here to understand the effects of sweep and ejection events on turbulence. Finally, the anisotropy of the Reynolds stress tensor indicates that turbulence is modulated especially in the near-wall region in both upward and downward flow.
机译:为了了解二氧化碳在超临界压力下的冷却传热行为,已经在压力为8MPa,入口温度为342.05K和中等入口雷诺数为5400的情况下对圆管中的流动和传热进行了直接数值模拟。管径为2毫米,在紧凑型热交换器的水力直径范围内。当管道处于垂直方向时,模拟了向上或向下流动的强制(忽略重力)和混合对流。作为热收缩的结果,主要在壁附近观察到流减速,这与壁加热观察到的加速度相反。已经发现,向上流动中的减速和浮力的综合作用增强了热传递,而向下流动中的热传递却恶化了。进一步的研究表明,在向下的流动中,当浮力的方向和流动的方向相同时,所有的湍流量都在轴向上显着减少,这就是传热恶化的原因。此处提供象限和八分圆分析,以了解扫掠和喷射事件对湍流的影响。最后,雷诺应力张量的各向异性表明,湍流尤其是在向上和向下流动的近壁区域中受到调节。

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