Towards detailed combustion characteristics and linear stability analysis of premixed ammonia‒hydrogen‒air mixtures

IF 5 Q2 ENERGY & FUELS
Jun Cheng, Bo Zhang
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Abstract

In this study, premixed ammonia‒hydrogen‒air mixtures at different pressures (50∼300 kPa), equivalence ratios (0.7∼1.5), and hydrogen concentrations (9∼50.00 %) were centrally ignited in a closed vessel, and the propagation of a spherical flame was recorded via a high-speed schlieren system. To accurately measure the laminar burning velocity, an AI model (RTMDet model) was trained on the schlieren images obtained in the experiments to mark the flame profile and calculate the flame area. The corresponding laminar combustion parameters were measured. Additionally, linear stability theory was applied to evaluate the critical conditions for the onset of flame instability. The results indicate that the hydrodynamic instability exhibits greater sensitivity to the initial pressure and equivalent ratio, whereas the molecular diffusion is remarkably sensitive to the hydrogen concentration in lean conditions. For the lean mixture, flame destabilization is enhanced by the thermal‒diffusion instability and curvature effect, whereas for the rich mixture, both the hydrodynamic instability and thermal‒diffusion instability is diminished, and flame stabilization is determined by the stretching effect. The critical Peclet number monotonically decreases as the equivalence ratio decreases and the hydrogen concentration increases. Hydrodynamic instability consistently promotes flame destabilization, whereas thermal-diffusion instability does not invariably contribute positively; for the lean mixtures, both the strain rate and curvature make the flame unstable, whereas they make the flame stable for the rich mixtures. The hydrogen concentration has a relatively limited effect on the strain rate and curvature. Additionally, the critical Karlovitz number indicates that flames in rich conditions are less susceptible to disturbances and instability. This study enhances the understanding of intrinsic instability mechanisms during flame propagation in ammonia‒hydrogen blended fuels, improves insights into their combustion characteristics, and provides a reference for optimizing combustion performance.
本研究在密闭容器中集中点燃了不同压力(50∼300 kPa)、当量比(0.7∼1.5)和氢浓度(9∼50.00 %)的预混合氨-氢-空气混合物,并通过高速裂片系统记录了球形火焰的传播过程。为了精确测量层燃速度,在实验中获得的裂片图像上训练了一个人工智能模型(RTMDet 模型),以标记火焰轮廓并计算火焰面积。测量了相应的层燃参数。此外,还应用线性稳定性理论评估了火焰不稳定性发生的临界条件。结果表明,流体动力不稳定性对初始压力和当量比更加敏感,而分子扩散对贫油条件下的氢浓度非常敏感。对于贫油混合物,热扩散不稳定性和曲率效应会增强火焰的不稳定性,而对于富油混合物,流体力学不稳定性和热扩散不稳定性都会减弱,火焰的稳定取决于拉伸效应。临界佩克莱特数随着当量比的降低和氢浓度的增加而单调降低。流体动力不稳定性始终会导致火焰不稳定,而热扩散不稳定性并不总是起积极作用;对于贫混合物,应变率和曲率都会使火焰不稳定,而对于富混合物,它们会使火焰稳定。氢浓度对应变率和曲率的影响相对有限。此外,临界卡尔洛维茨数表明,富裕条件下的火焰不易受干扰和不稳定的影响。这项研究加深了对氨氢混合燃料火焰传播过程中内在不稳定机制的理解,提高了对其燃烧特性的认识,并为优化燃烧性能提供了参考。
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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CiteScore
4.20
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