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| Application of Scanning Vibration Electrode Technology (SVET) in Research of Corrosion Inhibitors |
LI Min, WEI Gaofei, DENG Shuduan, LI Xianghong( ) |
| Key Laboratory of State Forestry and Grassland Administration on Highly-Efficient Utilization of Forestry Biomass Resources in Southwest China, College of Materials and Chemical Engineering, Southwest Forestry University, Kunming 650224, China |
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Cite this article:
LI Min, WEI Gaofei, DENG Shuduan, LI Xianghong. Application of Scanning Vibration Electrode Technology (SVET) in Research of Corrosion Inhibitors. Journal of Chinese Society for Corrosion and protection, 2026, 46(4): 989-1000.
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Abstract This paper focuses on the application of scanning vibration electrode technology (SVET) in the field of corrosion inhibitor research. The basic principle of SVET was expounded, and the progress of SVET application was summarized in aspects such as revealing the mechanism related with the action of corrosion inhibitors, assessing their performance and the developing of new corrosion inhibitors etc. In terms of exploring the mechanism of action, SVET can monitor in real time the ion current distribution and changes on the metal surface under the action of corrosion inhibitors, intuitively demonstrating the inhibition process of corrosion inhibitors on the electrochemical reaction of corrosion. Therefore, it can provide key data support for a deeper understanding of the corrosion inhibition mechanism. In terms of performance evaluation, SVET can quantify corrosion inhibition efficiency and precisely compare the effect of different corrosion inhibitors. In the research and development of new corrosion inhibitors, SVET testing is helpful for screening the effective components of corrosion inhibitors and optimizing their formula. In addition, this paper looks forward to the future development direction and application prospects of SVET, aiming to promote SVET to play a greater role in the research of corrosion inhibitors and further facilitate the innovative development of corrosion protection technologies.
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Received: 06 September 2025
32134.14.1005.4537.2025.277
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| Fund: National Natural Science Foundation of China(52161016);Research Project for Distinguished Young Scholars in Yunnan Province(202001AV070008);Special Project of "Top Young Talents" of Yunnan Ten Thousand Talents Plan(51900109) |
Corresponding Authors:
LI Xianghong, E-mail: xianghong-li@163.com
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