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Tuned Passive Control of Acoustic Damping of Perforated Liners

机译:穿孔管声阻尼的调谐被动控制

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To suppress combustion instabilities, perforated liners can be fitted along the bounding walls of a combustor to provide acoustic damping. These liners are typically subjected to a low-Mach-number bias flow (a cooling flow through perforated holes), and they tend to be effective only over narrow frequency ranges. To investigate the damping effect of perforated liners on plane acoustic waves and to increase their effective frequency range, experiments and numerical simulations are carried out An acoustically driven pipe system containing a lined section was designed and experimentally tested. The length of the pipe system, along with the bias flow rate, could be varied. The experimental results showed that the liner damping depended on both the pipe length and the bias flow rate, in agreement with predictions from the numerical model presented by (Eldredge, J. D., and Dowling, A. P., "The Absorption of Axial Acoustic Waves by a Perforated Liner with Bias Flow," Journal of Fluid Mechanics, Vol. 485, No., 2003, pp. 307-335.). To maintain the acoustic damping of the liner hi the presence of large frequency changes (corresponding to instability frequency changes in a combustor), real-tune tuning of perforated liners was experimentally investigated. Both a pipe length parameter and the bias flow rate were sequentially tuned using a multiple-parameter tuning scheme. The scheme required two algorithms to be developed: one for characterizing the liner's acoustic damping in real time and another for sequentially determining the two optimum actuation signals for the damper tuning. The former involved developing a real-time version of the two-microphone technique for resolving the two plane acoustic wave strengths, which is widely applicable. On implementing these algorithms in the pipe system, optimal damping of the liner was achieved and maintained over a broad frequency range.
机译:为了抑制燃烧不稳定性,可以沿着燃烧室的边界壁安装穿孔衬管,以提供隔音效果。这些衬管通常会受到低马赫数的偏流(通过穿孔的冷却流)的影响,它们倾向于仅在狭窄的频率范围内有效。为了研究多孔衬里对平面声波的阻尼作用并增加其有效频率范围,进行了实验和数值模拟。设计了包含衬砌截面的声驱动管道系统,并进行了实验测试。管道系统的长度以及偏流率可以改变。实验结果表明,衬管阻尼取决于管道长度和偏流率,这与(Eldredge,JD和Dowling,AP)提出的数值模型的预测结果一致:“穿孔对轴向声波的吸收带有偏流的衬里”,《流体力学杂志》,第485卷,第2003年,第307-335页。)为了在存在较大的频率变化(对应于燃烧室中的不稳定性频率变化)的情况下保持衬管的声学阻尼,已对穿孔衬管的实际调谐进行了实验研究。使用多参数调整方案依次调整了管道长度参数和偏流率。该方案需要开发两种算法:一种用于实时表征衬管的声阻尼,另一种用于依次确定用于阻尼器调谐的两个最佳激励信号。前者涉及开发用于解决两个平面声波强度的两麦克风技术的实时版本,这是广泛适用的。通过在管道系统中实施这些算法,可以实现衬管的最佳阻尼并在很宽的频率范围内保持。

著录项

  • 来源
    《AIAA Journal》 |2011年第4期|p.725-734|共10页
  • 作者单位

    University of Cambridge, Cambridge, England CB2 1PZ, United Kingdom;

    Imperial College London, London, England SW7 2AZ, United Kingdom;

    University of Cambridge, Cambridge, England CB2 IPZ, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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