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Experimental and numerical investigation of combustion characteristics on GO2/GH2 shear coaxial injector

机译:GO2 / GH2剪切同轴喷油器燃烧特性的实验和数值研究

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This study presents the results of a visualization investigation of the gas-gas injection combustion characteristics using a shear coaxial injector of non-premixed gaseous oxygen and gaseous hydrogen (GO2/GH2) under elevated ambient pressures. Advanced optical diagnostic approaches, including hydroxyl (OH) planar laser-induced fluorescence (PLIF) and high-speed imaging, are employed to capture the spatial distribution of the OH radical and the instantaneous flame dynamics near the faceplate. Experimental results indicate that an instantaneous reaction zone represents an apparent local extinction and re-ignition phenomenon, but does not affect the overall time-averaged reaction distribution. In addition, this study adopts the same ignition device and sequence used in a previous study; however, a different ignition process occurs. The reasons for this difference may be attributed to the fact that the exorbitant pressure peak disturbs the originally stable, downstream, cold-flow fields near the axis, which radically change the initial ignition and flame propagation processes. In order to demonstrate the feasibility and effectiveness of the applicability of computational fluid dynamics (CFD), several different associations of Reynolds averaged Navier-Stokes (RANS) approaches are compared with each other and with the experimental results. This proves that the turbulent model plays a dominant role in affecting the flow field structure. Based on the comparison with optical diagnostic results, a numerically-aided approach using RANS simulation is proposed to quantify the experimental results. This study is a first attempt to establish a standard corresponding relation between the simulation results and the optical diagnosis results. (C) 2018 Elsevier Masson SAS. All rights reserved.
机译:这项研究提出了使用非同轴混合气态氧气和气态氢气(GO2 / GH2)的剪切同轴喷射器在升高的环境压力下对气-气喷射燃烧特性进行可视化研究的结果。先进的光学诊断方法,包括羟基(OH)平面激光诱导的荧光(PLIF)和高速成像,可用于捕获OH自由基的空间分布和面板附近的瞬时火焰动力学。实验结果表明,瞬时反应区代表着明显的局部熄灭和重燃现象,但不影响整个时间平均反应的分布。此外,本研究采用与先前研究相同的点火装置和点火顺序。但是,发生了不同的点火过程。造成这种差异的原因可能是由于过高的压力峰值干扰了轴附近最初稳定的下游冷流场,从根本上改变了初始点火和火焰传播过程。为了证明适用于计算流体力学(CFD)的可行性和有效性,将雷诺平均Navier-Stokes(RANS)方法的几种不同关联相互比较并与实验结果进行了比较。这证明了湍流模型在影响流场结构中起着主导作用。在与光学诊断结果进行比较的基础上,提出了一种使用RANS仿真的数值辅助方法来量化实验结果。这项研究是在模拟结果和光学诊断结果之间建立标准对应关系的首次尝试。 (C)2018 Elsevier Masson SAS。版权所有。

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