CFD predictions of Swirl burner aerodynamics with variable outlet configurations

Q2 Social Sciences
H. Baej, A. Medina, N. Syred, R. Marsh, P. Bowen
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引用次数: 1

Abstract

Swirl stabilised combustion is one of the most widely used techniques for flame stabilisation in gas turbine combustors. Lean premixed combustion systems allow the reduction of NOx coupled with fair flame stability. The swirl mechanism produces an aerodynamic region known as central recirculation zone (CRZ) providing a low velocity region where the flame speed matches the flow velocity, thus anchoring the flame whilst serving to recycle heat and active chemical species to the root of the former. Another beneficial feature of the CRZ is the enhancement of the mixing in and around this region. However, the mixing and stabilisation processes inside of this zone have shown to be extremely complex. The level of swirl, burner outlet configuration and combustor expansion are very important variables that define the features of the CRZ. Therefore, in this paper swirling flame dynamics are investigated using computational fluid dynamics (CFD) with commercial software (ANSYS). A new generic swirl burner operated under lean-premixed conditions was modelled. A variety of nozzles were analysed using several gaseous blends at a constant power output. The investigation was based on recognising the size and strength of the central recirculation zones. The dimensions and turbulence of the Central Recirculation Zone were measured and correlated to previous experiments. The results show how the strength and size of the recirculation zone are highly influenced by the blend and infer that it is governed by both the shear layer surrounding the Central Recirculation Zones (CRZ) and the gas composition.
不同出口结构下旋流燃烧器空气动力学的CFD预测
旋流稳定燃烧是燃气轮机燃烧室中应用最广泛的火焰稳定技术之一。精益预混燃烧系统允许减少氮氧化物加上公平的火焰稳定性。涡流机制产生了一个被称为中央再循环区(CRZ)的空气动力学区域,提供了一个低速区域,其中火焰速度与流速相匹配,从而锚定火焰,同时用于将热量和活性化学物质循环到前者的根部。CRZ的另一个有益特征是增强了该区域内部和周围的混合。然而,这个区域内的混合和稳定过程是极其复杂的。旋流水平、燃烧器出口结构和燃烧室膨胀是决定CRZ特性的重要变量。因此,本文采用计算流体力学(CFD)和ANSYS软件对旋转火焰动力学进行了研究。对一种新型的通用涡流燃烧器进行了贫预混工况的建模。使用几种气体混合物在恒定功率输出下对各种喷嘴进行了分析。调查是基于对中央再循环区的大小和强度的认识。测量了中央再循环区的尺寸和湍流度,并与以往的实验进行了对比。结果表明,再循环区的强度和大小受共混物的影响很大,并推断其受中央再循环区的剪切层和气体成分的共同控制。
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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来源期刊
International Journal of Energy Technology and Policy
International Journal of Energy Technology and Policy Social Sciences-Geography, Planning and Development
CiteScore
1.50
自引率
0.00%
发文量
16
期刊介绍: The IJETP is a vehicle to provide a refereed and authoritative source of information in the field of energy technology and policy.
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