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Synergism in erosion-corrosion caused by interaction of electrochemical and mechanical factors.

机译:电化学和机械因素相互作用导致的腐蚀-腐蚀协同作用。

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摘要

A serious synergistic effect arises from the coexistence of two basic material loss processes during erosion-corrosion, electrochemical dissolution due to corrosion and mechanical degradation due to erosion. This synergy contributes strongly to the total material loss. Consequently, it is critical to understand the interaction mechanisms between erosion and corrosion so as to develop means to address the loss of material. This thesis describes both the influence of erosion on corrosion and the influence of corrosion on erosion that contribute to the synergy between erosion and corrosion of carbon steel A1045.; The dependence of erosion-enhanced corrosion on the corrosion system was studied using both a non-passive and a passive corrosion system. In the non-passive system, erosion showed no significant acceleration effect on corrosion when corrosion was controlled by active dissolution. In the passive corrosion system, erosion caused an increase in the corrosion rate through impairment of the passive film. The effects of erosion were characterized using the parameters for an equivalent electrical circuit. The parameters for the passive film growth kinetics, including the diffusivities and densities of defects within the passive film, were determined using Mott-Schottky analysis. These parameters were correlated with the resistance of electrode to erosion-enhanced corrosion. In addition, electrochemical tests revealed that erosion promoted initiation of pitting corrosion by breaking down the passive film, but impeded propagation of metastable pits by impairing the occluded environment for pitting corrosion development.; A chemo-mechanical effect was employed to understand the influence of corrosion on erosion. The surface hardness of the electrode decreased when an anodic current was impressed, which led to a higher erosion rate. Nanoindentation tests confirmed that hardness was reduced, and demonstrated that the degradation in mechanical properties declined with increasing depth from surface. The chemo-mechanical effect was manifested as a linear relationship between the rate of corrosion-enhanced erosion and the logarithm of anodic current density.; Under high flow rate conditions in corrosive solution free of particles, the mass loss rates obtained from traditional weight loss measurements were found higher than those calculated using Faraday's law. Analysis of the data showed that the additional material loss arose from corrosion-induced erosion.
机译:在腐蚀-腐蚀,腐蚀引起的电化学溶解和腐蚀引起的机械降解这两种基本材料损失过程的并存中,会产生严重的协同效应。这种协同作用对总的材料损失有很大的贡献。因此,至关重要的是要了解腐蚀与腐蚀之间的相互作用机制,以便开发出解决材料损失的方法。本文既描述了腐蚀对腐蚀的影响,又描述了腐蚀对腐蚀的影响,它们有助于碳钢A1045的腐蚀与腐蚀之间的协同作用。使用非被动和被动腐蚀系统研究了腐蚀增强腐蚀对腐蚀系统的依赖性。在非被动系统中,当通过主动溶解控制腐蚀时,腐蚀对腐蚀没有明显的促进作用。在被动腐蚀系统中,腐蚀通过破坏钝化膜而导致腐蚀速率增加。使用等效电路的参数来表征腐蚀的影响。使用Mott-Schottky分析确定用于钝化膜生长动力学的参数,包括钝化膜内缺陷的扩散率和密度。这些参数与电极对增强腐蚀的抗性相关。另外,电化学测试表明,腐蚀通过破坏钝化膜而促进了点蚀的产生,但通过削弱点蚀腐蚀的封闭环境,阻止了亚稳点的传播。采用化学机械作用来了解腐蚀对侵蚀的影响。当施加阳极电流时,电极的表面硬度降低,这导致较高的腐蚀速率。纳米压痕测试证实硬度降低,并证明机械性能的降低随从表面的深度增加而降低。化学机械作用表现为腐蚀增强腐蚀速率与阳极电流密度的对数之间的线性关系。在没有颗粒的腐蚀性溶液中的高流速条件下,发现传统重量损失测量获得的质量损失率高于使用法拉第定律计算得出的质量损失率。数据分析表明,额外的材料损失是由腐蚀引起的腐蚀引起的。

著录项

  • 作者

    Guo, Haixia.;

  • 作者单位

    University of Alberta (Canada).;

  • 授予单位 University of Alberta (Canada).;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 252 p.
  • 总页数 252
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化工过程(物理过程及物理化学过程);
  • 关键词

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