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RECURSIVE SEQUENTIAL COMBUSTION: A CONCEPT STUDY ABOUT A MOMENTUM-ENHANCED BLEND OF THE REACTANTS WITH RECIRCULATED BURNT GASES

机译:递归序贯燃烧:关于电抗体燃烧气体的势态增强的概念研究

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Over the last decade, new concepts have evolved to promote a significant azimuthal flow in annular combustors of gas turbines. The benefits are better flame propagation at ignition, positive flame-flame interaction, and better interaction with the burnt gases. Other advantages in terms of size, congestion and conditioning of the turbine inlet flow are also significant. The technical challenges reported by the literature are often related to the higher thermal stress of the flames on the walls compared to a conventional frame. Other sources of inspiration for this work are the principles of burnt gas recirculation, sequential combustion and flameless combustion. This contribution focuses on a novel tangential burner arrangement inspired by the previous references. It offers a synthesis of key features and properties of the latter and goes even further. Here, a significant part of the burnt gases produced by-one burner intentionally enters the inlet of the next burner, and so on along the azimuthal direction. This takes advantage of the closed loop aspect of an annular combustor when considering the toroidal direction. It also proposes a solution to the thermal load problem. We named this principle Recursive Sequential Combustion (RSC). While the flame alignment is organised along the generatrix of the combustor's annulus, one difficulty lies in the design of the lateral feeds of reactants and the lateral exit of the exhaust gases. A double-spiral combustor design is proposed, which has similarities with the Swiss Roll Combustor concept. It directs the flow in the toroidal direction, as well as it creates the favourable conditions for a dynamically stabilised premixed flame centred along the torus' generatrix at some distance from the walls. This design maximises the interaction between the fresh reactants and the burnt gases. The technical challenge is to find the right balance in terms of momentum flux of the incoming and outgoing flows to keep the flame in the middle of the torus. If this concept is successful, a lean flame could be operated with an unmatched trade-off between stability, flexibility and low-emissions (including soot). The paper reports about the RSC concept, the design, and the early results.
机译:在过去十年中,新概念已经发展,以促进燃气轮机环形燃烧器中的显着方位角流动。在点火时,益处是更好的火焰传播,正火焰 - 火焰相互作用和与燃烧气体的更好的相互作用。涡轮机入口流量的尺寸,拥塞和调节方面的其他优点也是显着的。与传统框架相比,文献报告的技术挑战通常与墙壁上的火焰的较高热应力相关。这项工作的其他灵感来源是烧伤气体再循环,连续燃烧和无焰燃烧的原则。这一贡献侧重于由先前参考引发的新型切向燃烧器安排。它提供了后者的关键特征和属性的合成,甚至进一步。这里,一台燃烧器产生的燃烧气体的重要部分故意进入下一个燃烧器的入口,沿方位角等方向进入。当考虑环形方向时,这利用了环形燃烧器的闭环方面。它还提出了热负荷问题的解决方案。我们将此原则命名为递归序列燃烧(RSC)。虽然沿着燃烧器的环的恒定组织了火焰对准,但是一个难度在于反应物的横向进料和废气的横向出口的设计。提出了一种双螺旋燃烧器设计,其具有与瑞士卷燃烧器概念相似。它引导环形方向上的流动,以及它在距离墙壁的一段距离处为沿着圆环的恒定的动态稳定的预混火焰产生有利的条件。这种设计最大化了新鲜反应物和燃烧气体之间的相互作用。技术挑战是在进出流动的动量通量方面找到合适的平衡,以保持圆环中间的火焰。如果这个概念成功,可以在稳定性,灵活性和低排放(包括烟灰)之间的无与伦比的权衡下运行瘦火焰。论文报告了RSC概念,设计和早期结果。

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