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Characterization of G02-GH2 Simulations of a Miniature Vortex Combustion Cold-Wall Chamber

机译:微型涡流燃烧冷壁室G02-GH2模拟的表征

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This study describes a numerical simulation of a miniature vortex combustion cold-wall chamber using a two-stage choked nozzle approach. Recognizing that the nozzle is choked at the throat under normal operation, the miniaturized vortex chamber is decomposed into two parts: The first segment extends from the headwall to the throat, whereas the second extends from the throat to the nozzle exit plane. In stage 1, an incompressible model is used leading up to the nozzle entrance. In stage 2, compressibility is superimposed, starting with the output from stage 1. This two-stage simulation reduces CPU time and helps to achieve convergence. Compressible simulations are then performed using a three-dimensional pressure-based, finite volume, unstructured solver. Furthermore, reaction mechanisms are simulated using a non-premixed combustion model with adiabatic probability density function lookup tables. Eight conventional chemical species are used, including O_2, H_2, H_2O, HO_2,H_2O_2,O,H, and OH. At the outset, the existence of a bidirectional motion is demonstrated and the spatial invariance of the so-called mantle interface, which separates inner and outer vortex regions, is corroborated. This work confirms the effectiveness of convective film cooling of the chamber walls as a characteristic feature of cyclonic motion involving a low-temperature oxidizer.
机译:这项研究描述了使用两级节流喷嘴方法对小型涡旋燃烧冷壁室进行的数值模拟。认识到在正常操作下喷嘴在喉部处被阻塞,小型化的涡流室被分解为两部分:第一部分从顶壁延伸到喉部,而第二部分从喉部延伸到喷嘴出口平面。在第1阶段,使用不可压缩模型直到喷嘴入口。在阶段2中,从阶段1的输出开始,开始叠加可压缩性。此两阶段仿真减少了CPU时间并有助于实现收敛。然后使用基于三维压力的有限体积非结构化求解器进行可压缩模拟。此外,使用具有绝热概率密度函数查找表的非预混燃烧模型来模拟反应机理。使用了八个常规化学物质,包括O_2,H_2,H_2O,HO_2,H_2O_2,O,H和OH。首先,证明了双向运动的存在,并且证实了分离内部和外部涡流区域的所谓地幔界面的空间不变性。这项工作证实了对室壁对流膜冷却的有效性,这是涉及低温氧化剂的气旋运动的特征。

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