首页> 外文期刊>Surface & Coatings Technology >Study on salt spray corrosion of Ni-graphite abradable coating with 80Ni20Al and 96NiCr-4Al as bonding layers
【24h】

Study on salt spray corrosion of Ni-graphite abradable coating with 80Ni20Al and 96NiCr-4Al as bonding layers

机译:以80Ni20Al和96NiCr-4Al为结合层的Ni-石墨耐磨涂层的盐雾腐蚀研究

获取原文
获取原文并翻译 | 示例
           

摘要

Two kinds of Ni-graphite abradable coating systems (coating system A with 80Ni20Al bond coating and coating system B with 96NiCr-4Al bond coating) were prepared. The top and the bond coatings were independently deposited by different techniques of flame and plasma spraying. Corrosion behavior of the coating systems was investigated via the electrochemical and salt spray corrosion tests. Open-circuit potential and polarization tests were carried out in an oxygen-saturated 5. wt.% NaCl neutral solutions at 35°C. It was found that the 80Ni20Al coating exhibited the lowest corrosion resistance. Results of the salt spray corrosion (SSC) tests support a corrosion mechanism in the Ni-graphite coating being a crevice corrosion, which leads to loose corrosion products accumulated on the surface of the coating systems. For coating system A, analysis of the corrosion damage of the bonding layer showed a prevalent localized attack on intersplat boundaries. For coating system B, the bonding layer exhibited less corrosion, but the matrix of the top coating close to the interface corroded heavily due to a galvanic coupling between these two different coating layers. Experimental results after 960. h SSC tests showed that the bonding strength decreased to 3.5. MPa and 2.6. MPa for coating systems A and B, respectively.
机译:制备了两种镍-石墨耐磨涂层系统(具有80Ni20Al粘结涂层的涂层系统A和具有96NiCr-4Al粘结涂层的涂层系统B)。通过火焰和等离子喷涂的不同技术分别独立地沉积表面涂层和粘结涂层。通过电化学和盐雾腐蚀试验研究了涂料体系的腐蚀行为。在35℃下在氧饱和的5重量%的NaCl中性溶液中进行开路电势和极化测试。发现80Ni20Al涂层表现出最低的耐腐蚀性。盐雾腐蚀(SSC)测试的结果支持了镍石墨涂层中的缝隙腐蚀,这导致了在涂层系统表面上积累的松散腐蚀产物。对于涂层系统A,对结合层的腐蚀破坏的分析表明,普遍存在对跨板边界的局部侵蚀。对于涂层体系B,粘结层表现出较少的腐蚀,但是由于这两个不同涂层之间的电流耦合,靠近界面的顶部涂层的基质严重腐蚀。 960. h SSC测试后的实验结果表明,粘结强度降至3.5。 MPa和2.6。涂层系统A和B的MPa。

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