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Thermal convection in electrochemical cells. Boundaries with heterogeneous thermal conductivity and implications for scanning electrochemical microscopy

机译:电化学电池中的热对流。具有不均匀导热性的边界和扫描电化学显微镜的含义

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摘要

We investigate the heat transfer in a cylinder-shaped electrochemical cell with solid, thermally insulating walls. The cell is filled with a liquid and a solid substrate that is thermostated from below is situated at its base. The initial temperature of the liquid is different from that of the substrate so as to mimic imperfect thermostating in an electrochemical experiment; as heat transfer acts to diminish the temperature difference between the two, natural convection ensues. The influence of inhomogeneities in the thermal conductivity of the solid is studied – numerical simulations of the heat transfer in the system are conducted for substrates that are comprised of a thermally conductive material, an insulating one or a combination thereof. It is shown that the substrate structure strongly influences the structure and intensity of the natural convective flows emerging in the system. The present work demonstrates that under the idealized conditions under consideration, depending on the substrate structure, natural convection due to imperfect solution thermostating may give rise to flows whose local velocity can reach values as high as 10-3 m∙s-1. Moreover, as comparison between cells of two different radii shows, both the intensity and the temporal evolution of the flows arising in this system are highly sensitive to the precise geometry of the experimental cell. These results can have far-reaching consequences for the interpretation of results from experimental techniques such as scanning electrochemical microscopy.
机译:我们研究了具有固体,绝热壁的圆柱形电化学电池中的传热。将电池填充有液体和从下面恒温的固体基质位于其基部。液体的初始温度与基材的初始温度不同,以便在电化学实验中模仿恒温静止;随着传热的作用,可以减少两者之间的温度差异,因此随后是自然对流的。研究了不均匀性在固体的导热率中的影响 - 对于由导热材料,绝缘的衬底,绝缘体或其组合构成的基板进行数值模拟。结果表明,基板结构强烈影响系统中出现的自然对流流的结构和强度。本工作表明,根据所考虑的理想条件,根据基板结构,由于溶液恒温引起的自然对流可能导致流动的流动,其局部速度可以达到高达10-3M≠S-1的值。此外,随着两个不同的半径的细胞之间的比较,该系统中产生的流动的强度和时间演化都对实验细胞的精确几何体具有高敏感。这些结果可以对诸如扫描电化学显微镜等实验技术的结果的解释产生深远的影响。

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