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为研究超声速气流中液体横向射流的破碎过程,采用脉冲背景光方法和VOF方法开展了实验和数值研究。为提高液体横向射流中气液界面和气流场特征捕捉的精确性,采用自适应网格技术对于气液界面、激波出现位置进行网格细化,计算得到了较为精细的气液界面、激波特征及涡系结构。研究结果表明:在低成本仿真模拟条件下,利用自适应网格计算得到的射流轨迹和轮廓与实验吻合较好,射流轨迹的最大误差为10%;射流初始段在超声速气流条件下,仍然存在一段高度约为1.9倍喷孔直径且圆柱形态保持较好的连续光滑液柱。随着喷注压降的升高,液柱的长度逐渐增大;主流气体流经液柱发生三维绕流,在射流附近和近壁面区域形成不断演化的反转涡对,反转涡对的形成加速了液体射流一次破碎过程。 相似文献
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Angel O.U. Parentis Bruno S. Zossi Hagay Amit Ana G. Elias 《Advances in Space Research (includes Cospar's Information Bulletin, Space Research Today)》2021,67(10):3228-3236
The geomagnetic field, modified by the solar wind, determines the shape, area and location of polar caps and auroral zones, among other magnetosphere and upper atmosphere characteristics. Since the field varies greatly with time it is of interest to analyze polar caps and auroral zones variations linked to magnetic field variations of intensity and pattern. Polar caps and auroral zones locations and areas for various single harmonic axial field configurations are obtained analytically assuming a simple magnetopause model. As the axial degree n increases, the polar caps and auroral zones total number, given by n + 1 and 2n respectively, also increase. However, their total areas decrease from a larger value in the case of an axial dipole to a minimum for an axial octupole (n = 3), and then increase for increasing degrees. The increasing rate is much higher in the auroral zones case to the point that it exceeds the dipolar value at n = 5 while in the polar caps case this occurs at n = 8. The absolute latitudes of the auroral zones and polar caps that reside around the geographical poles increase with axial degree. Our results represent an end-member case of the evolution of auroral zones and polar caps during polarity reversals if the transition involves axial dipole energy cascade to higher axial degrees. Evidence for such an energy transfer is found in the historical record of the geomagnetic secular variation. 相似文献
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复杂曲面逆向渐进成形的关键是如何确定渐进成形的运动轨迹。渐进成形的运动轨迹是按照成形件的等高线来进行加工的,传统的渐进成形是按照曲面已有的CAD模型,利用现有的后处理加工软件生成等高线加工轨迹进行加工。但由于复杂曲面没有已知的CAD模型或者已知的曲面方程,等高线图无法直接获得,因此,复杂曲面的逆向成形首先要解决等高线图的生成问题。本文通过对复杂曲面已知的离散点进行拟合获得曲面方程,从而得到逆向曲面的等高线图,并综合运用Java及MATLAB的编程优势对实物进行逆向CAD建模,由等高线图再编译成数控加工信息来完成复杂曲面的逆向渐进成形加工。文中给出了该方法的具体算法,并通过有限元数值模拟仿真实际曲面的逆向渐进成形验证了该方法的可行性。 相似文献
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