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MODELING AND COMPUTATIONAL STUDY ON MICROBUBBLE TWO-PHASE TURBULENT FLOW

机译:微泡两相湍流的建模与计算研究

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The drag reduction is needed for the economical ship operations and the suppression of CO_2 emission. Microbubble injection is one of the promising techniques for the purpose. It was experimentally confirmed that the skin friction could be reduced remarkably, by injecting the microbubbles with the diameter of 0.5 to 1.0mm from the bottom of a ship hull. Although a great number of papers can be seen in the literatures, unfortunately, the efficient and accurate computer code, which can calculate the global flow phenomenon around a ship hull and can be used in the ship design, has never been developed. In the present study, the correlations between liquid and microbubbles are modeled and computed, by using the two-fluid model. The Reynolds stress transport model is employed for the accurate prediction of the bubble behavior around a ship. The present model is tuned and verified, based on the fundamental experiment conducted by Kodama et al. in 2000. Furthermore, using the present model, the drag reduction mechanism by microbubbles is numerically investigated for a wide variety of void fraction and flow conditions. It is confirmed that the present Reynolds stress model can capture the characteristic of drag reduction by the microbubbles.
机译:需要用于经济船舶操作和CO_2发射的抑制减阻。注射微泡是为目的的有前途的技术之一。通过实验确认了皮肤摩擦,可以显着降低,通过用0.5直径至1.0mm从船舶船体的底部注入微泡。虽然论文大量可以在文献中可以看出,不幸的是,高效,准确的计算机代码,由此可以推算周围船体全球流动现象,可在船舶设计中使用,从来没有被开发出来。在本研究中,液体和微泡之间的相关性进行建模和计算,通过使用双流体模型。采用雷诺应力传输模型用于围绕船的气泡的行为的准确的预测。本模型被调谐和验证,基于由Kodama等人进行的基础实验。在2000年此外,使用本模型中,由微泡减阻机构进行了数值研究了各种各样的空隙率和流动条件。据证实,在本雷诺应力模型可以通过微泡捕获减阻的特性。

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