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Imaginary particle tracking accelerometry based on time-resolved velocity fields

机译:基于时间分辨速度字段的虚粒子跟踪加速度

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摘要

An accurate calculation of material acceleration is important for particle image velocimetry-based pressure reconstruction. Therefore, an imaginary particle tracking accelerometry (IPTA) approach based on time-resolved velocity fields is described in this paper for a better determination of acceleration. Multi-velocity fields and a least squares polynomial fitting of the velocity along imaginary particle trajectories are introduced to improve the acceleration accuracy. The process of imaginary particle tracking is operated iteratively until a convergence condition is satisfied. Then the Lagrangian acceleration (or the material acceleration in the Eulerian coordinates) is acquired by the first-order time derivation of the fitting polynomial. In addition, the sensitivity of the IPTA approach to different levels of noise and parameters that affect its performance is investigated. A criterion is proposed to determine these parameters when using IPTA to calculate the acceleration. Performance of the IPTA method is compared with other velocity-based accelerometry methods, including both Eulerian and Lagrangian methods. Assessments are conducted in a synthetic solid body rotation flow, a synthetic flow of a vortex ring, and an experimental jet flow. The results show that IPTA is a robust method for experimental acceleration determination that can both improve the accuracy of acceleration and provide better physical characteristics of the flow field.
机译:精确计算材料加速对于基于粒子图像速度的压力重建是重要的。因此,本文描述了基于时间分辨速度场的假想粒子跟踪加速度(IPTA)方法,以更好地确定加速度。引入多速度场和最小二乘沿着假想粒子轨迹的速度的多项式拟合,以提高加速度精度。迭代地操作假想粒子跟踪过程,直到满足会聚条件。然后通过拟合多项式的一阶时间推导来获取拉格朗日加速度(或欧拉坐标中的材料加速度)。此外,研究了IPTA方法对影响其性能的不同噪声和参数的敏感性。建议使用IPTA计算加速度时确定这些参数的标准。将IPTA方法的性能与其他基于速度的加速度方法进行比较,包括欧拉和拉格朗日方法。评估在合成固体旋转流动中进行,涡旋环的合成流动和实验射流。结果表明,IPTA是用于实验加速度测定的稳健方法,可以提高加速度的准确性并提供流场的更好的物理特性。

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    Beijing Univ Aeronaut &

    Astronaut Minist Educ Key Lab Fluid Mech Beijing 100191 Peoples R China;

    Beijing Univ Aeronaut &

    Astronaut Minist Educ Key Lab Fluid Mech Beijing 100191 Peoples R China;

    Beijing Univ Aeronaut &

    Astronaut Minist Educ Key Lab Fluid Mech Beijing 100191 Peoples R China;

    Beijing Univ Aeronaut &

    Astronaut Minist Educ Key Lab Fluid Mech Beijing 100191 Peoples R China;

    Beijing Univ Aeronaut &

    Astronaut Minist Educ Key Lab Fluid Mech Beijing 100191 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
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