低温工学
Online ISSN : 1880-0408
Print ISSN : 0389-2441
ISSN-L : 0389-2441
研究論文
二流体ノズルによるマイクロスラッシュ粒子生成の融合計算
石本 淳
著者情報
ジャーナル フリー

2009 年 44 巻 2 号 p. 68-76

詳細
抄録

The fundamental characteristics of the atomization behavior of micro-slush nitrogen (SN2) jet flow through a twofluid nozzle was numerically investigated and visualized by a new type of integrated simulation technique. Computational Fluid Dynamics (CFD) analysis is focused on the production mechanism of micro-slush nitrogen particles in a two-fluid nozzle and on the consecutive atomizing spray flow characteristics of the micro-slush jet. Based on the numerically predicted nozzle atomization performance, a new type of superadiabatic two-fluid ejector nozzle is developed. This nozzle is capable of generating and atomizing micro-slush nitrogen by means of liquid-gas impingement of a pressurized subcooled liquid nitrogen (LN2) flow and a low-temperature, high-speed gaseous helium (GHe) flow. The application of micro-slush as a refrigerant for long-distance high-temperature superconducting cables (HTS) is anticipated, and its production technology is expected to result in an extensive improvement in the effective cooling performance of superconducting systems. Computation indicates that the cryogenic microslush atomization rate and the multiphase spraying flow characteristics are affected by rapid LN2-GHe mixing and turbulence perturbation upstream of the two-fluid nozzle, hydrodynamic instabilities at the gas-liquid interface, and shear stress between the liquid core and periphery of the LN2 jet. Calculation of the effect of micro-slush atomization on the jet thermal field revealed that high-speed mixing of LN2-GHe swirling flow extensively enhances the heat transfer between the LN2 phase and the GHe phase. Furthermore, the performance of the micro-slush production nozzle was experimentally investigated by Particle Image Velocimetry (PIV), and measurement results were compared with the numerical results. (Translation of the article originally published in Cryogenics 49 (2009) 39-50)

著者関連情報
© 2009 公益社団法人 低温工学・超電導学会 (旧 社団法人 低温工学協会)
前の記事 次の記事
feedback
Top