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Numerical study of g-jitter induced double-diffusive convection

机译:g抖动引起的双扩散对流的数值研究

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A finite element study is presented of double-diffusive convection driven by g-jitter in a microgravity environment. Mathematical formulations are presented and extensive simulations are carried out for g-jitter induced fluid flow, temperature distribution, and solutal transport in an alloy system under consideration for space flights. Computations include the use of idealized single-frequency and multifrequency g-jitter as well as the real g-jitter data taken during an actual Space Shuttle flight. Little correlation is seen between these velocity components for the g-jitter components studied. The temperature field is basically undisturbed by convection because of a small Pr nnumber for the fluid. The disturbance of the concentration field, however, is pronounced, and the local variation of the concentration follows the velocity oscillation in time. It is found that although the concentration field varies in both position and time, the local concentration gradient remains approximately constant in time. Numerical study further indicates that with an increase in g-jitter force (or amplitude), the nonlinear convective effects become much more obvious, which in turn drastically change the concentration fields. The simulated, results computed using the g-jitter data taken during space flights show that both the velocity and concentration become random, following approximately the same pattern as the g-jitter perturbations. [References: 16]
机译:提出了在微重力环境下由g抖动驱动的双扩散对流的有限元研究。提出了数学公式,并针对考虑空间飞行的合金系统中的g抖动引起的流体流动,温度分布和溶质迁移进行了广泛的模拟。计算包括使用理想化的单频和多频g抖动以及实际航天飞机飞行期间获取的实际g抖动数据。对于所研究的g抖动分量,这些速度分量之间几乎没有相关性。由于流体的Pr n值小,因此温度场基本上不受对流干扰。然而,浓度场的扰动是明显的,并且浓度的局部变化随时间随速度振荡。发现尽管浓度场在位置和时间上都变化,但是局部浓度梯度在时间上保持大致恒定。数值研究进一步表明,随着g抖动力(或振幅)的增加,非线性对流效应变得更加明显,从而极大地改变了浓度场。使用在太空飞行期间获取的g抖动数据计算出的模拟结果表明,速度和浓度都变得随机,遵循与g抖动摄动近似相同的模式。 [参考:16]

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