湍流氨和混合氨火焰的火焰稳定和污染物排放:近期实验和数值研究进展综述

Mahmoud M.A. Ahmed , Leilei Xu , Xue-Song Bai , Zubayr O. Hassan , Marwan Abdullah , Jaeheon Sim , Emre Cenker , W.L. Roberts , A.M. Elbaz
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引用次数: 0

摘要

与传统的碳氢化合物燃料相比,氨作为一种燃料面临着巨大的挑战,包括点火能量高、反应活性低、火焰传播速度慢以及氮氧化物排放量高,这些都阻碍了氨作为可再生燃料的使用。将氨与天然气等化石燃料混合可提高其燃烧反应性,并有助于减少二氧化碳排放。然而,关于氨及其与碳氢化合物混合的复杂动力学,仍有许多问题需要了解。诸如反应动力学机制、点火特性、火焰传播行为以及在各种条件下控制燃烧性能的方法等关键领域都需要进一步阐明。本文回顾了近期在实验和数值模拟方面取得的进展,这些进展旨在开发稳定、低排放的燃氨发电燃烧器。本文分析了最近的燃烧器和火焰配置,包括非漩涡喷射燃烧器、单级漩涡燃烧器、双级燃烧器和新开发的双漩涡燃烧器,以了解它们在燃烧氨和氨混合物时的火焰稳定性和污染物排放潜力。氨及其混合物的化学动力学模型在了解燃烧行为和污染物排放(尤其是氮氧化物)方面起着至关重要的作用。然而,在准确预测氮氧化物排放方面存在挑战,不同模型之间存在显著差异。使用详细和骨架机制、直接数值模拟和大涡流模拟进行高保真数值模拟,有助于发现影响燃烧和污染物排放的关键运行条件,如燃烧器压力、空气稀释、壁面冷却、燃料/空气混合和燃料混合。尽管如此,化学动力学模型的准确性及其与湍流模拟的整合仍是氨燃烧数值模拟的关键限制因素。
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Flame stabilization and pollutant emissions of turbulent ammonia and blended ammonia flames: A review of the recent experimental and numerical advances

Compared to traditional hydrocarbon fuels, ammonia presents significant challenges as a fuel, including high ignition energy, low reactivity, slow flame propagation, and high NOx emissions, which hinder its use as a renewable fuel. Blending ammonia with fossil fuels like natural gas improves its combustion reactivity and helps mitigate CO2 emissions. However, there is still much to understand about the complex dynamics of ammonia and its blends with hydrocarbons. Key areas such as reaction kinetics mechanisms, ignition properties, flame propagation behaviors, and methods for controlling combustion performance under various conditions require further elucidation. This paper reviews recent advancements in experiments and numerical simulations aimed at developing stable, and low-emission combustors for ammonia-fired power generation. Recent burner and flame configurations, including non-swirling jets, single-stage swirl burners, two-stage burners, and newly developed double-swirl burners are analyzed for their flame stability and pollutant emission potential when firing ammonia and ammonia blends. Chemical kinetic modeling of ammonia and its blends plays a crucial role in understanding combustion behavior and pollutant emissions, particularly for NOx. However, there are challenges in predicting NOx emissions accurately, with significant disparities among different models. High-fidelity numerical simulations using detailed and skeletal mechanisms, direct numerical simulation, and large eddy simulation, have helped uncover crucial operational conditions affecting combustion and pollutant emissions, such as combustor pressure, air dilution, wall cooling, fuel/air mixing, and fuel blending. Nonetheless, the accuracy of chemical kinetic models and their integration into turbulent flow simulations remain critical limitations for numerical simulations of ammonia combustion.

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