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Numerical study of the characteristics of supercavitation on a cone in a stationary evaporator

机译:固定式蒸发器中锥形超空化特性的数值研究

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Computation results of the supercavitation on a cone in a bounded axial cold water (20 ℃) flow, obtained by ANSYS13 CFX and FLUENT, are found to correlate with experimental data. CFX solution has captured considerable backflow, and temperature gradient of 7℃ between free water stream and steam inside the supercavity, with the average water vapor temperature of supercavity volume equal to 17.8 ℃, while FLUENT has revealed negligible temperature gradient, and the position of backflow vortex is different. Although we have used the same setup and appropriate meshes for both solvers, due to different cavitation models: mixture Rayleigh-Plesset and Schnerr-Sauer, for CFX and FLUENT, respectively, we have found wide discrepancy in the resulted thermal, mass, and velocity flow fields. Understanding thermal, mass, and velocity fields of the supercavitating flow is important for the development of an industrial application of supercavitation for the design of the evaporators, open-type heat exchangers, coolers, deaerators, mixers, and chemical reactors. The CFX solver have been used for revealing the multiply factor response of the supercavitating flow on the temperature of source water, its inlet velocity, rate of steam extraction from the supercavity, and the degree of flow obstruction by the cavitator. This analysis goes beyond the presently referred experimental results, and the influences of the each factor on the supercavitating flow dynamics have been formulated in respect of the steam volume fraction, steam motion and effective temperature influence on the interphase heat mass transfer.
机译:通过ANSYS13 CFX和FLUENT获得的有限轴向冷水(20℃)流中锥体上的超空化计算结果与实验数据相关。 CFX溶液捕获了相当大的回流,超腔内部自由水流与蒸汽之间的温度梯度为7℃,超腔体积的平均水蒸气温度等于17.8℃,而FLUENT的温度梯度可忽略不计,并且回流位置涡旋是不同的。尽管我们对两个求解器使用了相同的设置和合适的网格,但是由于空化模型的不同:对于CFX和FLUENT,混合模型分别为Rayleigh-Plesset和Schnerr-Sauer,但我们发现所产生的热,质量和速度存在很大差异流场。了解超空化流的热场,质量场和速度场对于开发用于蒸发器,敞开式热交换器,冷却器,脱气器,混合器和化学反应器的设计的超空化工业应用非常重要。 CFX求解器已用于揭示超空化流对原水温度,其入口速度,从超空化中抽出蒸汽的速率以及空化器对流的阻塞程度的倍数响应。该分析超出了目前提到的实验结果,并且已经针对蒸汽体积分数,蒸汽运动和有效温度对相间传热的影响,阐述了每种因素对超空化流动动力学的影响。

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