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通过时延自同步控制表面化学反应中的湍流

Controlling turbulence in a surface chemical reaction by time-delay autosynchronization.

作者信息

Beta C, Bertram M, Mikhailov A S, Rotermund H H, Ertl G

机构信息

Fritz-Haber-Institut der Max-Plack-Gesellschaft, Faradayweg 4-6, 14195 Berlin, Germany.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2003 Apr;67(4 Pt 2):046224. doi: 10.1103/PhysRevE.67.046224. Epub 2003 Apr 29.

Abstract

A global time-delay feedback scheme is implemented experimentally to control chemical turbulence in the catalytic CO oxidation on a Pt(110) single crystal surface. The reaction is investigated under ultrahigh vacuum conditions by means of photoemission electron microscopy. We present results showing that turbulence can be efficiently suppressed by applying time-delay autosynchronization. Hysteresis effects are found in the transition regime from turbulence to homogeneous oscillations. At optimal delay time, we find a discontinuity in the oscillation period that can be understood in terms of an analytical investigation of a phase equation with time-delay autosynchronization. The experimental results are reproduced in numerical simulations of a realistic reaction model.

摘要

通过实验实现了一种全局时滞反馈方案,以控制铂(110)单晶表面上催化一氧化碳氧化反应中的化学湍流。在超高真空条件下,借助光发射电子显微镜对该反应进行了研究。我们给出的结果表明,通过应用时滞自同步可以有效地抑制湍流。在从湍流到均匀振荡的过渡区域发现了滞后效应。在最佳延迟时间,我们发现振荡周期存在不连续性,这可以通过对具有时滞自同步的相位方程进行解析研究来理解。在一个实际反应模型的数值模拟中再现了实验结果。

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