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Part-II: Optimum designing of cathodic protection systems of marine platforms

机译:第二部分:海上平台阴极保护系统的优化设计

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Marine platforms require appropriate protections against corrosion attack for defining their useful life. In part I of this study, rule based analyses were carried out for designing cathodic protection system of a ship. Two reputable rules DNV-RP-B401 and Defstan (NES 704) standards were used for the purpose. Study revealed that rule based analyses do not properly guide on the distribution of anodes over the surface to be protected. Additionally, effects of factors such as quality of harbour water, appropriate application of surface preparation & paint scheme and effectiveness of cathodic protection system are not taken into account. In recent years, numerous software are developed and used for studying corrosion effect and designing cathodic protection for marine going vessels. In this paper (Part II), computational simulation techniques based on boundary element method (BEM) are applied in the studies to evaluate the effect of poor harbour water and material composition changes on the vessel for which; rule based cathodic protection design was performed in part I of the studies. Design optimisation was performed in the commercially available software; BEASY Corrosion and CP. It is concluded that simulation tools that can include factors such as type of material used, quality of harbour water and sacrificial anodes composition in studies can facilitate proficiently in designing optimised cathodic protection system for the design life of any marine vessel vis-à-vis area of operation. In the future work, calculation of number of anodes and their distribution for a ship hull would be calculated by BEM method and design optimization under different environments would be simulated.
机译:海上平台需要适当的防腐蚀保护措施,以定义其使用寿命。在本研究的第一部分中,对基于规则的分析进行了设计,以设计船舶的阴极保护系统。为此,使用了两个著名的规则DNV-RP-B401和Defstan(NES 704)标准。研究表明,基于规则的分析不能正确指导阳极在待保护表面上的分布。另外,没有考虑诸如港口水的质量,表面处理和油漆方案的适当应用以及阴极保护系统的有效性等因素的影响。近年来,开发了许多软件并用于研究腐蚀效应和设计用于海上航行船舶的阴极保护。在本文中(第二部分),基于边界元法(BEM)的计算仿真技术被应用于研究中,以评估不良港口水和材料成分变化对船舶的影响;在研究的第一部分中进行了基于规则的阴极保护设计。设计优化是在市售软件中进行的; BEASY腐蚀和CP。结论是,可以包括诸如所用材料的类型,港口水的质量和牺牲阳极组成等因素在内的仿真工具可以有效地帮助设计优化的阴极保护系统,以确保任何船舶相对于该区域的设计寿命操作。在未来的工作中,将通过BEM方法计算船体的阳极数量及其分布,并模拟不同环境下的设计优化。

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