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Multi-angular Flame Measurements and Analysis in a Supersonic Wind Tunnel Using Fiber-Based Endoscopes

机译:基于纤维内窥镜的超音速风洞中多角度火焰测量与分析

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摘要

This paper reports new measurements and analysis made in the Research Cell 19 supersonic wind-tunnel facility housed at the Air Force Research Laboratory. The measurements include planar chemiluminescence from multiple angular positions obtained using fiber-based endoscopes (FBEs) and the accompanying velocity fields obtained using particle image velocimetry (PIV). The measurements capture the flame dynamics from different angles (e.g., the top and both sides) simultaneously. The analysis of such data by proper orthogonal decomposition (POD) will also be reported. Nonintrusive and full-field imaging measurements provide a wealth of information for model validation and design optimization of propulsion systems. However, it is challenging to obtain such measurements due to various implementation difficulties such as optical access, thermal management, and equipment cost. This work therefore explores the application of the FBEs for nonintrusive imaging measurements in the supersonic propulsion systems. The FBEs used in this work are demonstrated to overcome many of the practical difficulties and significantly facilitate the measurements. The FBEs are bendable and have relatively small footprints (compared to high-speed cameras), which facilitates line-of-sight optical access. Also, the FBEs can tolerate higher temperatures than high-speed cameras, ameliorating the thermal management issues. Finally, the FBEs, after customization, can enable the capture of multiple images (e.g., images of the flow fields at multi-angles) onto the same camera chip, greatly reducing the equipment cost of the measurements. The multi-angle data sets, enabled by the FBEs as discussed above, were analyzed by POD to extract the dominating flame modes when examined from various angular positions. Similar analysis was performed on the accompanying PIV data to examine the corresponding modes of the flow fields. The POD analysis provides a quantitative measure of the dominating spatial modes of the flame and flow structures, and is an effective mathematical tool to extract key physics from large data sets as the high-speed measurements collected in this study. However, the past POD analysis has been limited to data obtained from one orientation only. The availability of data at multiple angles in this study is expected to provide further insights into the flame and flow structures in high-speed propulsion systems.
机译:本文报告了位于空军研究实验室的Research Cell 19超音速风洞设施中进行的新测量和分析。测量包括使用基于纤维的内窥镜(FBE)从多个角度位置获得的平面化学发光,以及使用粒子图像测速仪(PIV)获得的伴随速度场。这些测量同时捕获了来自不同角度(例如顶部和两侧)的火焰动力学。也将报告通过适当的正交分解(POD)对此类数据进行的分析。非侵入式和全视场成像测量为推进系统的模型验证和设计优化提供了大量信息。然而,由于诸如光接入,热管理和设备成本的各种实施困难,获得这样的测量是具有挑战性的。因此,这项工作探索了FBE在超音速推进系统中用于非侵入式成像测量的应用。事实证明,这项工作中使用的FBE克服了许多实际困难,并极大地方便了测量。 FBE是可弯曲的,并且具有相对较小的占地面积(与高速相机相比),这有利于视线光学访问。此外,与高速摄像机相比,FBE可以承受更高的温度,从而改善了热管理问题。最后,定制后的FBE可以将多个图像(例如,多角度的流场图像)捕获到同一相机芯片上,从而大大降低了测量设备的成本。当从各个角度位置检查时,POD分析了由上述FBE启用的多角度数据集,以提取主要火焰模式。对随附的PIV数据进行了类似的分析,以检查流场的相应模式。 POD分析提供了火焰和流动结构的主要空间模式的定量度量,并且是一种有效的数学工具,可以从大型数据集中提取关键物理,作为本研究中收集的高速测量值。但是,过去的POD分析仅限于从一个方向获得的数据。这项研究中多个角度的数据可用性有望为高速推进系统中的火焰和流动结构提供进一步的见识。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2016年第2期|021601.1-021601.10|共10页
  • 作者单位

    Department of Aerospace and Ocean Engineering, Virginia Tech, Blacksburg, VA 24061 Department of Mechanical Engineering, Virginia Tech, Blacksburg, VA 24061;

    Department of Mechanical Engineering, Virginia Tech, Blacksburg, VA 24061;

    Department of Aerospace and Ocean Engineering, Virginia Tech, Blacksburg, VA 24061;

    Air Force Research Laboratory, Dayton, OH 45433;

    Air Force Research Laboratory, Dayton, OH 45433;

    Air Force Research Laboratory, Dayton, OH 45433;

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