Experimental investigation on the thermoacoustic instability of boron/ethanol nanofluid fuel spray swirling flames

IF 5 Q2 ENERGY & FUELS
Meng Wang , Zunyi Luo , Chen Fu , Kunpeng Liu , Yongjun Wang , Xiaoyang Wang , Juan Yu , Sheng Meng , Man Zhang , Yi Gao
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Abstract

Nanofluid fuel has attracted the interest of researchers for decades due to its prominent combustion and propulsive properties. However, combustion instability is inevitable in propulsive systems, and little is known about how nanofluid fuel drive or dampen thermoacoustic oscillations of the system. A confined boron/ethanol (B/EtOH) nanofluid fuel spray swirling flame stabilized by an axisymmetric bluff body has been experimentally investigated in this work. The flame response to the varying B nanoparticles (NPs) doping concentrations was recorded and compared. 2D images and critical data were acquired using a 10 kHz repetition-rate OH* and BO2* chemiluminescence (CL) system, a photomultiplier tube, and a pressure transducer. Meanwhile, several analysis methods, including flame visualization, Fourier/Hilbert transforms, spectrograms, proper orthogonal decomposition (POD), extended POD (EPOD), and Rayleigh's criterion analysis, are utilized to help us understand the underlying mechanism. From the averaged images, the high-intensity region of the BO2*-CL appears further downstream than that of OH*-CL, resulting in a broader heat-release distribution of B/EtOH nanofluid fuel spray flames than neat EtOH ones. As the B NPs doping concentration increases, the oscillation frequency of the B/EtOH spray swirling flames remains almost unchanged, but the oscillation amplitude gradually decreases. Numerous B particles and agglomerates exhibit intense combustion when the micro-explosion phenomenon occurs. Additionally, the time-resolved pressure and heat release oscillations are out of phase and are supposed to be associated with acoustic energy dissipation. The POD and EPOD analyses reveal that the primary flame oscillations are driven by the longitudinal flame-shedding motion and the entrained reaction pockets. Meanwhile, the OH* and BO2* radicals exhibit different local dynamics responses to the oscillation. Based on the Rayleigh index distribution coupling the fluctuation of pressure and heat release from EtOH and B, our study provides evidence that the combustion of B NPs downstream suppresses the thermoacoustic instability of the EtOH flames.
硼/乙醇纳米流体燃料喷雾旋转火焰热声不稳定性实验研究
纳米流体燃料由于其突出的燃烧和推进特性,几十年来一直吸引着研究人员的兴趣。然而,在推进系统中,燃烧不稳定性是不可避免的,而对于纳米流体燃料如何驱动或抑制系统的热声振荡,人们知之甚少。本文研究了一种由轴对称钝体稳定的硼/乙醇(B/EtOH)纳米流体燃料喷雾旋转火焰。记录并比较了不同B纳米粒子掺杂浓度对火焰的响应。使用重复频率为10 kHz的OH*和BO2*化学发光(CL)系统、光电倍增管和压力传感器获取2D图像和关键数据。同时,利用火焰可视化、傅里叶/希尔伯特变换、光谱图、适当正交分解(POD)、扩展正交分解(EPOD)和瑞利判据分析等分析方法来帮助我们了解其机理。从平均图像来看,BO2*-CL的高强度区域比OH*-CL的高强度区域更下游,导致B/EtOH纳米流体燃料喷雾火焰的热释放分布比纯EtOH更宽。随着B NPs掺杂浓度的增加,B/EtOH喷雾旋转火焰的振荡频率基本保持不变,但振荡幅度逐渐减小。当微爆炸现象发生时,大量的B颗粒和团聚体表现出强烈的燃烧。此外,时间分解的压力和热量释放振荡是不同步的,应该与声能耗散有关。POD和EPOD分析表明,主火焰振荡是由纵向火焰脱落运动和夹带反应袋驱动的。同时,OH*和BO2*自由基对振荡表现出不同的局部动力学响应。基于耦合EtOH和B的压力和热量释放波动的瑞利指数分布,我们的研究提供了证据,证明下游B NPs的燃烧抑制了EtOH火焰的热声不稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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