首页> 外文期刊>The Journal of Supercritical Fluids >Simulation of supercritical water-hydrocarbon mixing in a cylindrical tee at intermediate Reynolds number: Impact of temperature difference between streams
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Simulation of supercritical water-hydrocarbon mixing in a cylindrical tee at intermediate Reynolds number: Impact of temperature difference between streams

机译:雷诺数为中等的圆柱三通中超临界水-烃混合的模拟:料流之间温差的影响

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The objective of this work is to study the impact of the temperature difference between the streams on the flow dynamics and mixing of supercritical water (SCW) and a model hydrocarbon (n-decane), under fully miscible conditions, in a small-scale cylindrical tee mixer (pipe ID =2.4 mm), at an intermediate inlet Reynolds number of 500 using 3-D CFD simulations. When the water and n-decane streams enter the mixer at inlet temperatures of 800 K and 700 K respectively (Delta T = 100 K), the flow remains laminar and the variations of density and viscosity with temperature do not have a significant impact on the flow and mixing dynamics. However, when the water inlet temperature is 1000 K (Delta T = 300 K), the water-HC shear layer becomes unstable close to x = 5D downstream of the mixing joint followed by shear-layer rollup and transition to turbulence. This leads to significant enhancement in the mixing rate. However, in a simulation of SCW n-decane mixing with the same inlet conditions but with the physical properties held fixed at the inlet values (no variation with temperature), the shear layer remains stable and steady state is reached. It was found that, the large variation of temperature of 300 K within the mixing layer leads to an increase in the local fluid density and a decrease in the local fluid viscosity within the mixing layer attributed mainly to the cooling of water and the heating of n-decane respectively. These physical property variations result in an increase in the local Reynolds number within the shear layer rendering it unstable to perturbations in the flow. Thus, the variations in mixture density and viscosity with temperature under near-critical conditions were found to have a significant impact on the flow and mixing dynamics in the tee mixer. (C) 2014 Elsevier B.V. All rights reserved.
机译:这项工作的目的是研究在完全混溶的条件下,在小尺寸圆柱体中,流之间的温差对流动动力学以及超临界水(SCW)和模型碳氢化合物(正癸烷)混合的影响。使用3-D CFD模拟,在中间入口雷诺数为500的情况下,使用三通混合器(管道ID = 2.4 mm)。当水流和正癸烷流分别在入口温度为800 K和700 K(Delta T = 100 K)进入混合器时,流体保持层流状态,密度和粘度随温度的变化不会对混合器产生重大影响。流动和混合动力学。但是,当进水温度为1000 K(Delta T = 300 K)时,水-HC剪切层在混合接缝下游靠近x = 5D处变得不稳定,随后剪切层卷起并过渡到湍流。这导致混合速率的显着提高。但是,在具有相同入口条件但物理特性保持固定在入口值(不随温度变化)的SCW正癸烷混合模拟中,剪切层保持稳定并达到稳态。已经发现,混合层内300 K的温度变化大导致混合层内局部流体密度增加和局部流体粘度降低,这主要归因于水的冷却和n的加热。 -癸烷这些物理性质的变化导致剪切层内局部雷诺数的增加,使其对流中的扰动不稳定。因此,发现在近临界条件下混合物密度和粘度随温度的变化对三通混合器的流动和混合动力学有重大影响。 (C)2014 Elsevier B.V.保留所有权利。

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