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Galvanic Corrosion Prevention of Complex Assemblies Through Modeling

机译:通过建模防止复杂组件的电偶腐蚀

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Corrosion impacts the value, safety, and readiness of many assets in almost all industries. The cost of maintaining and repairing runs into astronomical numbers. The current approach to evaluate susceptibility to galvanic corrosion is by determining the relative position of metals in the galvanic series table valid for a given environment. However the potential difference between metals provides no information on the kinetics of galvanic or bimetallic corrosion. Additionally, there is a wide range of factors which affect the corrosion severity like surface area ratio, flow rate, temperature, dry-wetting cycle, inhibiting effects, etc. Moreover, in most mechanical assemblies the overall effect of multiple material components and the complexity of the geometry make corrosion prediction difficult. In this article a unique 3D simulation technology to predict galvanic corrosion will be presented. Potential distributions and corrosion rates are calculated based on electrochemical characterization of the different materials in lab conditions. Corroded areas are visualized by the software tool and are compared with real-life observations on assemblies. The examples show cases where engineers select different material combinations of complex assemblies in a virtual environment during the design process and assess the corrosion behavior of the complete system under various environmental conditions. The technology provides quantitative information on the corrosion risk as well as the corrosion rate. Thus, ensuring target performance and safe operation.
机译:腐蚀会影响几乎所有行业中许多资产的价值,安全性和就绪性。维护和修理的成本达到了天文数字。当前评估电偶腐蚀敏感性的方法是通过确定对于给定环境有效的电偶表中金属的相对位置。但是,金属之间的电势差无法提供有关电或双金属腐蚀动力学的信息。此外,还有许多因素会影响腐蚀的严重程度,例如表面积比,流速,温度,干湿循环,抑制作用等。此外,在大多数机械装配中,多种材料成分的整体作用和复杂性几何形状的变化使腐蚀预测变得困难。在本文中,将介绍一种独特的3D模拟技术来预测电偶腐蚀。电位分布和腐蚀速率是根据实验室条件下不同材料的电化学特性计算得出的。腐蚀的区域通过软件工具可视化,并与装配体上的实际观察结果进行比较。这些示例显示了工程师在设计过程中在虚拟环境中选择复杂组件的不同材料组合并评估整个系统在各种环境条件下的腐蚀行为的情况。该技术提供了有关腐蚀风险以及腐蚀速率的定量信息。因此,确保目标性能和安全操作。

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