首页> 外文期刊>Experiments in Fluids: Experimental Methods and Their Applications to Fluid Flow >On improvement of PIV image interrogation near stationary interfaces
【24h】

On improvement of PIV image interrogation near stationary interfaces

机译:关于改进静止界面附近的PIV图像询问的方法

获取原文
获取原文并翻译 | 示例
           

摘要

In this paper the problem posed by interfaces when present in PIV measurements is addressed. Different image pre-processing, processing and post-processing methodologies with the intention to minimize the interface effects are discussed and assessed using Monte Carlo simulations. Image treatment prior to the correlation process is shown to be incapable of fully removing the effects of the intensity pedestal across the object edge. The inherent assumption of periodicity in the signal causes the FFT-based correlation technique to perform the worst when the correlation window contains a signal truncation. Instead, an extended version of the masking technique introduced by Ronneberger et al. (Proceedings of the 9th international symposium on applications of laser techniques to fluid mechanics, Lisbon, 1998) is able to minimize the interface-correlation, resolving only the particle displacement peak. Once the displacement vector is obtained, the geometric center of the interrogation area is not the correct placement. Instead, the centre of mass position allows an unbiased representation of the wall flow (Usera et al. in Proceedings of the 12th international symposium on applications of laser techniques to fluid mechanics, Lisbon, 2004). The aforementioned concepts have been implemented in an adaptive interrogation methodology (Theunissen et al. in Meas Sci Technol 18:275-287, 2007) where additionally non-isotropic resolution and re-orientation of the correlation windows is applied near the interface, maximizing the wall-normal spatial resolution. The increase in resolution and robustness are demonstrated by application to a set of experimental images of a flat-plate, subsonic, turbulent boundary layer and a hypersonic flow over a double compression ramp.
机译:本文解决了PIV测量中存在的接口所带来的问题。使用蒙特卡洛模拟讨论并评估了不同的图像预处理,处理和后处理方法,目的是最大程度地减少界面影响。相关处理之前的图像处理显示无法完全消除整个物体边缘的强度基座的影响。当相关窗口包含信号截断时,信号中周期性的固有假设导致基于FFT的相关技术表现最差。取而代之的是Ronneberger等人引入的掩蔽技术的扩展版本。 (第9届国际激光技术在流体力学中的应用国际研讨会论文集,里斯本,1998年)能够使界面相关性最小化,仅解决了粒子位移峰。一旦获得位移矢量,则询问区域的几何中心不是正确的位置。取而代之的是,质心位置允许壁流的无偏表示(Usera等人在第12届将激光技术应用于流体力学的国际研讨会论文集,里斯本,2004年)。前述概念已经在自适应询问方法中实现(Theunissen等人,Meas Sci Technol 18:275-287,2007),其中在界面附近还应用了非各向同性的分辨率和相关窗口的重新定向,从而最大化了壁法向空间分辨率。通过应用于平板,亚音速,湍流边界层和双压缩斜面上的超音速流的一组实验图像,证明了分辨率和鲁棒性的提高。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号