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    燃气燃烧热声不稳定研究进展

    Research progress on thermoacoustic instability in gas combustion

    • 摘要:
      热声不稳定性是由燃烧系统中热释放率脉动与声学振荡相互耦合引发的一种自激振荡现象,广泛存在于燃气轮机、航空发动机、工业燃烧器及燃气热水器等能源动力装置中。在低碳能源转型背景下,天然气消费量快速增长,氮氧化物排放标准日益严格,燃烧系统常在偏离化学当量比的贫燃、预混等低排放工况下运行,导致热声不稳定现象频发,表现为剧烈的压力振荡、火焰脉动与噪声增强,严重影响设备运行安全与使用寿命。该综述系统梳理了燃气燃烧热声不稳定性的振荡机理、诱发因素、非线性动力学行为、研究现状与控制策略等方面的研究进展。首先,从经典瑞利准则出发,阐述了热声耦合的能量正反馈机制,并分类讨论了亥姆霍兹型、纵向模态、周向模态及本征热声模态等典型振荡类型的特征与成因。针对非线性行为,进一步分析了极限环振荡、拍振现象及间歇性振荡等动态行为的物理机制,并介绍了基于火焰传递函数和火焰描述函数的建模方法及其在非线性振荡预测中的应用。系统归纳了当前燃气热声不稳定领域的试验诊断技术(如高频压力测量、粒子图像测速
      、平面激光诱导荧光、化学发光成像等)、数值模拟方法(包括大涡模拟、低阶网络模型、亥姆霍兹求解器等)以及主动与被动控制策略(如声学阻尼器、燃料调制、等离子体激励等)的研究进展。最后,对当前研究中的挑战与未来发展方向进行了展望,指出需在低碳燃料燃烧机理、多尺度智能建模、高精度试验诊断及智能控制等方面进一步突破,以推动低排放、高稳定性燃烧系统的设计与优化。

       

      Abstract: Thermoacoustic instability is a self-excited oscillatory phenomenon triggered by the mutual coupling between heat release rate fluctuations and acoustic oscillations in combustion systems. It is widely observed in energy and power equipment including gas turbines, aeroengines, industrial burners, and gas water heaters. Against the backdrop of low-carbon energy transition, the rapid growth in natural gas consumption and increasingly stringent nitrogen oxide emission standards have led combustion systems to frequently operate under low-emission conditions, for instance lean combustion and premixed modes, deviating from the stoichiometric ratio. This has resulted in frequent occurrences of thermoacoustic instability, manifesting as intense pressure oscillations, flame fluctuations, and increased noise, which severely compromise operational safety and equipment lifespan. This review systematically outlines recent research progress in oscillation mechanisms, triggering factors, nonlinear dynamic behaviors, current research status, and control strategies related to thermoacoustic instability in gas combustion. Starting from the classical Rayleigh criterion, the energy-positive-feedback mechanism of thermoacoustic coupling is explained. Typical oscillation types, among them Helmholtz-type, longitudinal modes, circumferential modes, and intrinsic thermoacoustic modes, are categorized and discussed in terms of their characteristics and causes. Regarding nonlinear behaviors, the physical mechanisms underlying dynamic phenomena like limit cycle oscillations, beating oscillations, and intermittent oscillations are further analyzed. Modeling approaches based on flame transfer functions and flame describing functions, together with their applications in predicting nonlinear oscillations, are also introduced. The review systematically summarizes current experimental diagnostic techniques in the field of gas thermoacoustic instability, encompassing high-frequency pressure measurements, particle image velocimetry, planer laser induced fluorescence, and chemiluminescence imaging, as well as numerical simulation methods including large eddy simulation, low-order network models, and Helmholtz solvers. Active and passive control strategies, for example acoustic dampers, fuel modulation, and plasma actuators, are also covered. Finally, challenges in current research and future development directions are discussed. It is emphasized that further breakthroughs are needed in areas such as combustion mechanisms of low-carbon fuels, multi-scale intelligent modeling, high-precision experimental diagnostics, and intelligent control to advance the design and optimization of low-emission, high-stability combustion systems.

       

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