马付良,李金龙,曾志翔,高义民.外加电位对Monel400合金海水环境腐蚀磨损性能的影响[J].表面技术,2017,46(11):158-164.
MA Fu-liang,LI Jin-long,ZENG Zhi-xiang,GAO Yi-min.Effect of Applied Potential on the Tribocorrosion Behaviors of Monel 400 Alloy in Seawater[J].Surface Technology,2017,46(11):158-164
外加电位对Monel400合金海水环境腐蚀磨损性能的影响
Effect of Applied Potential on the Tribocorrosion Behaviors of Monel 400 Alloy in Seawater
投稿时间:2017-06-02  修订日期:2017-11-20
DOI:10.16490/j.cnki.issn.1001-3660.2017.11.022
中文关键词:  Monel 400合金  腐蚀磨损  摩擦系数  外加电位  电化学  交互作用
英文关键词:Monel 400 alloy  tribocorrosion  friction coefficient  applied potential  electrochemical  interaction
基金项目:国家重点研发项目(2016YFB0300604);国家973计划项目(2014CB643302)
作者单位
马付良 1.中国科学院宁波材料技术与工程研究所 中国科学院海洋新材料与应用技术重点实验室 浙江省海洋材料与防护技术重点实验室,浙江 宁波 315201;2.西安交通大学 金属材料强度国家重点实验室,西安 710049 
李金龙 中国科学院宁波材料技术与工程研究所 中国科学院海洋新材料与应用技术重点实验室 浙江省海洋材料与防护技术重点实验室,浙江 宁波 315201 
曾志翔 中国科学院宁波材料技术与工程研究所 中国科学院海洋新材料与应用技术重点实验室 浙江省海洋材料与防护技术重点实验室,浙江 宁波 315201 
高义民 西安交通大学 金属材料强度国家重点实验室,西安 710049 
AuthorInstitution
MA Fu-liang 1.Key Laboratory of New Marine Materials and Applied Technologies, Chinese Academy of Sciences, Zhejiang Key Laboratory of Marine Materials and Protective Technologies, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, China; 2.National Key Laboratory of Metallic Material Strength, Xi'an Jiaotong University, Xi'an 710049, China 
LI Jin-long Key Laboratory of New Marine Materials and Applied Technologies, Chinese Academy of Sciences, Zhejiang Key Laboratory of Marine Materials and Protective Technologies, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, China 
ZENG Zhi-xiang Key Laboratory of New Marine Materials and Applied Technologies, Chinese Academy of Sciences, Zhejiang Key Laboratory of Marine Materials and Protective Technologies, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, China 
GAO Yi-min National Key Laboratory of Metallic Material Strength, Xi'an Jiaotong University, Xi'an 710049, China 
摘要点击次数:
全文下载次数:
中文摘要:
      目的 研究不同恒电位对Monel400合金海水环境腐蚀磨损性能的影响。方法 将试样加工成圆柱试样,通过设计的特殊夹具夹紧试样,利用摩擦试验机和电化学工作站做不同恒电位下的磨蚀实验,通过开路电位极化曲线的变化评价合金的电化学性能,通过磨损量的变化评价合金的摩擦性能。通过扫描电镜揭示磨损机理,探讨交互作用机制。结果 摩擦过程中的开路电位比静态腐蚀时的低。随着外加电位的增加,腐蚀电流密度增加,摩擦系数降低,总的体积损失量增加。腐蚀磨损存在明显的交互作用。结论 摩擦能够破坏合金表面的钝化膜,导致具有更高电化学活性的新表面暴露于溶液中,因此促进了表面腐蚀。而腐蚀产生的腐蚀产物层比较粗糙和疏松,其剪切强度比基底合金低得多,因此当氧化铝块摩擦过合金表面时,很容易去除腐蚀产物层,进而促进了材料损失。腐蚀磨损条件下材料的损失量明显比纯磨损条件下的高。
英文摘要:
      The work aims to research the effects of different constant potentials on the tribocorrosion behaviors of Monel400 alloy in seawater. The samples were processed into cylindrical samples and clamped by the special fixtures designed. The abrasion experiment under various constant potentials was carried out by friction testing machine and electrochemical workstation. The electrochemical performance of the alloy was evaluated based on the change in the open-circuit potential polarization curve. The friction property of the alloy was evaluated based on the change in the abrasion loss. The wear mechanism was revealed by scanning electron microscope and the interaction mechanism was discussed. The open-circuit potential in the friction process was lower than that in the static corrosion. As the applied potential increased, the corrosion current density increased, the friction coefficient decreased and the total volume loss increased. The corrosion and wear had obvious interaction. The friction can damage the passive film of the alloy surface, causing the new surface with higher electrochemical activity to be exposed to the solution; therefore, the surface corrosion is accelerated. The corrosive product layer generated by the corrosion is quite coarse and loose. Its shear strength is much lower than that of the base metal alloy. Therefore, when alumina block slides across the alloy surface, such layer is easily peeled off, finally resulting in the acceleration of material loss. The loss amount of materials under corrosion and wear is apparently higher than that under the pure wear.
查看全文  查看/发表评论  下载PDF阅读器
关闭

关于我们 | 联系我们 | 投诉建议 | 隐私保护 | 用户协议

您是第19963586位访问者    渝ICP备15012534号-3

版权所有:《表面技术》编辑部 2014 surface-techj.com, All Rights Reserved

邮编:400039 电话:023-68792193传真:023-68792396 Email: bmjs@surface-techj.com

渝公网安备 50010702501715号