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Experimental Methodology to Assess Atomic Recombination on High-Temperature Materials

机译:评估高温材料上原子重组的实验方法

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摘要

An experimental methodology to quantify atomic recombination on high-temperature materials exposed to homonuclear diatomic gases is proposed. Candidate materials are tested in a plasma wind tunnel driven by an inductive plasma generator, providing highly dissociated flows. The reconstruction of the flowfield around the tested specimens is accomplished by adequate characterization of the free flow during experiments and supported by a Navier-Stokes solver for nonequilibrium flows developed at the Institute of Space Systems. Recombination coefficients are obtained from an iterative approach in which the numerically reconstructed boundary layer and the respective simulated heat flux balance the experimental measurements. This work focuses not only on the procedure of extracting catalytic properties of high-temperature materials but it also emphasizes the influence of atomic flux on recombination coefficients. From the investigation under constant wall temperature and variations of the impinging atomic flux, the dependency of the recombination coefficient on the latter could be extracted. Moreover, it can be observed that Langmuir-Hinshelwood mechanisms are dominant as compared with Eley-Rideal mechanisms. One of the outlooks of this work is the possibility of fitting complex catalytic models such as finite-rate models as soon as variations of both surface temperature and atomic flux are considered.
机译:提出了一种实验方法来量化暴露于同核双原子气体的高温材料上的原子重组。候选材料在由感应等离子发生器驱动的等离子风洞中进行测试,以提供高度分离的流动。通过在实验过程中对自由流进行适当的表征,并在空间系统研究所开发的用于非平衡流的Navier-Stokes求解器的支持下,可以对测试样品周围的流场进行重建。重组系数是通过迭代方法获得的,在该方法中,数值重建的边界层和各个模拟的热通量平衡了实验测量值。这项工作不仅着重于提取高温材料的催化性能的程序,而且还着重强调了原子通量对复合系数的影响。从在恒定壁温和撞击原子通量变化的情况下进行的研究中,可以提取复合系数对后者的依赖性。此外,可以观察到,与Eley-Rideal机制相比,Langmuir-Hinshelwood机制占主导。这项工作的前景之一是,一旦考虑到表面温度和原子通量的变化,就可以拟合复杂的催化模型,例如有限速率模型。

著录项

  • 来源
    《Journal of Thermophysics and Heat Transfer》 |2018年第2期|353-368|共16页
  • 作者单位

    Univ Stuttgart, Plasma Wind Tunnels & Elect Prop Grp, Inst Space Syst, Pfaffenwaldring 29, D-70569 Stuttgart, Germany;

    Univ Stuttgart, Plasma Wind Tunnels & Elect Prop, Inst Space Syst, Pfaffenwaldring 29, D-70569 Stuttgart, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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