首页> 外文期刊>Tribology International >Full factorial investigation on the erosion-corrosion resistance of UNS S31603
【24h】

Full factorial investigation on the erosion-corrosion resistance of UNS S31603

机译:关于UNS S31603耐腐蚀性能的全因研究

获取原文
获取原文并翻译 | 示例
           

摘要

The interactions that occur when erosion and corrosion act simultaneously are extremely complex and are often difficult to interpret. These interactions generate either a synergistic or antagonistic material loss effect for a particular material in a certain environment. The level of interaction between impact energy, number of impacts, fluid temperature, material properties, fluid flow and electrochemical properties severely complicates the analysis of erosion-corrosion wear rates. This paper investigates the interaction between the main parameters influencing erosion-corrosion. A combination of statistical analysis and interaction contour plots has been employed to obtain in-depth understanding of the variables influencing erosion-corrosion, namely particle velocity, sand size, sand concentration and fluid temperature. An empirical equation has been derived from test results to describe the relationship between the test parameters. Analysis of the residuals versus predicted erosion-corrosion shows a normalized distribution and thereby confirms the suitability of this model. Velocity was found to have the strongest influence on erosion-corrosion rate followed by sand concentration, temperature and finally sand size, which had the least significant effect. SEM surface features show that the increase in sand concentration causes the surface to be covered with a higher number of impact craters and lips indicating a linear relationship between the two. The SEM micrographs also show that the increase in sand size produces deeper craters and more prominent lips compared to fine sized particles where the particles tend to graze the surface without sufficient kinetic energy to plastically deform the material surface.
机译:当侵蚀和腐蚀同时发生时发生的相互作用非常复杂,并且通常难以解释。这些相互作用在特定环境中对特定材料产生协同或拮抗的材料损失效应。冲击能,冲击次数,流体温度,材料特性,流体流动和电化学特性之间的相互作用程度严重加剧了腐蚀磨损率的分析。本文研究了影响腐蚀腐蚀的主要参数之间的相互作用。统计分析和交互作用等高线图的结合已被用于深入了解影响侵蚀腐蚀的变量,即颗粒速度,沙粒大小,沙粒浓度和流体温度。从测试结果中得出了一个经验公式来描述测试参数之间的关系。残差与预测的腐蚀腐蚀之间的关系分析显示出归一化的分布,从而证实了该模型的适用性。发现速度对侵蚀腐蚀速率的影响最大,其次是沙浓度,温度和沙的大小,而影响最小。 SEM表面特征表明,沙子浓度的增加导致表面覆盖有更多数量的撞击坑和边缘,表明二者之间呈线性关系。扫描电镜显微照片还显示,与细颗粒相比,沙粒尺寸的增加会产生更深的凹坑和更突出的唇缘,在细颗粒中,颗粒趋向于掠食表面而没有足够的动能使材料表面塑性变形。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号