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Experimental investigation of entropy waves' evolution for understanding of indirect combustion noise in gas turbine combustors

机译:为了理解燃气轮机燃烧器间接燃烧噪声而进行的熵波演化实验研究

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Achieving clean and quiet combustion in gas turbines is essential for improving many low-carbon energy and propulsion technologies. This often requires suppression of combustion instabilities and combustion generated noise in gas turbine combustors. Entropy noise is the less explored mechanism of combustion generated sound. Central to the emission of entropic sound is the survival of entropy wave during convection by the mean flow and reaching the combustor exit nozzle. Yet, the annihilation of entropy waves in this process is still poorly understood. To address this issue, the evolution of converted entropy waves in a fully-developed, cold flow inside a circular duct is investigated experimentally. Entropy waves are produced by a well-controlled electrical heater. Fast-response, miniaturized thermocouples arranged over a moveable cross-section of the duct are employed to record the state of entropy waves at different axial locations along the duct. Hydrodynamic parameters including Reynolds number and turbulence intensity are varied to investigate their effects upon the wave decay. The results show that the decay process is strongly wavelength dependent. It is found that the wave components with wavelengths larger than the duct diameter are almost unaffected by the flow and therefore remain essentially one-dimensional. However, other spectral components of the wave are subject to varying degrees of dissipation and loss of spatial correlation. Overall, the results support the recent numerical findings about the likelihood of wave survival in adiabatic flows. They further clarify the validity range of the one-dimensional assumption commonly made in the literature.
机译:在燃气轮机中实现清洁,安静的燃烧对于改善许多低碳能源和推进技术至关重要。这通常需要抑制燃气涡轮燃烧器中的燃烧不稳定性和燃烧产生的噪声。熵噪声是燃烧产生的声音探索较少的机制。熵波发射的中心是熵流在对流过程中的平均流量,并到达燃烧器出口喷嘴。然而,在这一过程中熵波的an灭仍然知之甚少。为了解决这个问题,实验研究了转换后的熵波在圆形管道内部充分发展的冷流中的演化。良好控制的电加热器会产生熵波。布置在管道可移动横截面上的快速响应,小型热电偶用于记录沿管道不同轴向位置处的熵波状态。改变包括雷诺数和湍流强度在内的流体力学参数,以研究它们对波浪衰减的影响。结果表明,衰减过程与波长密切相关。已经发现,波长大于导管直径的波分量几乎不受流动的影响,因此基本上保持一维。但是,波的其他频谱分量会经历不同程度的耗散和空间相关性损失。总的来说,这些结果支持了有关绝热流中波生存可能性的最新数值发现。他们进一步阐明了文献中常见的一维假设的有效性范围。

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