Simplification OCS equipment is a OCS equipment system with Chinese independent intellectual property rights. In recent years, more and more railroad projects have adopted this equipment system, which marks a big step forward in the process of China's OCS autonomy. However, its anti-corrosion process is not perfect, the current anti-corrosion measures are passivation, anodic oxidation and micro-arc oxidation three means, the anti-corrosion program is not mature. China's vast territory, the natural environment varies greatly from place to place, at the same time on the market a wide variety of anti-corrosion process, different projects, different locations using the anti-corrosion program is not uniform. This has a direct impact on both the manufacturing cost and the later maintenance cost. In this paper, through the service performance of existing parts, anti-corrosion measures to study the different forms of anti-corrosion process for the test, and ultimately achieve the purpose of unifying the anti-corrosion program of the Simplification OCS equipment. Propose anti-corrosion measures applicable to OCS equipment in different environments. Extend the service life of the equipment, improve the reliability of the contact network equipment and reduce the operation and maintenance cost while considering the economy. Realize the complementary improvement of Simplification OCS equipment technology system.
Published in | American Journal of Traffic and Transportation Engineering (Volume 8, Issue 6) |
DOI | 10.11648/j.ajtte.20230806.14 |
Page(s) | 154-157 |
Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
Copyright |
Copyright © The Author(s), 2023. Published by Science Publishing Group |
Simplification OCS, Corrosion, Operation and Maintenance, Service Life, Reliability
[1] | Richard B M, Graham K R, Hike R W. Anti-spin/anti-drift module for railway car door [J]. 2003. |
[2] | Wang, Cheng Cheng, Y. Z. Ye, and T. C. Liu. "Study of the Additional Anti-Corrosion Measures of Bridge Pier Caps Concrete in Beijing-Shanghai High Speed Railway." Advanced Materials Research 831 (2013): 380-386. |
[3] | Hong W T, Clifton G, Nelson J D. Railway accident causation analysis: Current approaches, challenges and potential solutions [J]. Accident Analysis and Prevention, 2023. |
[4] | Lee, Sang Hyun, et al. "Anti-Corrosion Performance of Zn-Al Thermal Metal Spraying Method Using Steel Structures." Key Engineering Materials 348-349(2007): 453-456. |
[5] | Min-Feng, L. I., and J. Zhi-Hua. "ANTI-CORROSION DESIGN OF STEEL STRUCTURES." Corrosion & Protection 25.3 (2005): 209-227. |
[6] | Dingemans, Theo, et al. "ANTI-CORROSION SYSTEM FOR STEEL." (2013). |
[7] | Kotel'Nikov, A V, and A. V. Naumov. "NEW ANTI-CORROSION TECHNIQUES." Avtomatika Telemekhanika I Svyaz (1979). |
[8] | None. "Studies on the Atmospheric Corrosion of Metals and Anti-Corrosive Coatings in Japan." Corrosion Engineering 22.3 (1973): 106-113. |
[9] | Yong, Zhang, and L. U. Bing-Heng. "Technological study on upper-pressure infiltration foundry of porous Co-Cr-Mo alloy." Ordnance Material Science and Engineering (2005). TrcfA, Atb B. Dynamic analysis of failure paths of truss structures: Benchmark examples including material degradation [J]. Mechanical Systems and Signal Processing, 158. |
[10] | Da-Wei, Song, S. U. Zhen-Xin, and C. Hong-Yuan. "Co-cementation Technology of Electromagnetic Heating Multielement Alloy." Total Corrosion Control (2011). |
[11] | Zhongli, Kang. "Popularization and Application of Cold Galvanizing Anticorrosion Technology for Corrugated Assembled Steel Silo Inner Wall." Modern Food (2019). |
[12] | Guoxin, L. I., S. Xia, and Y. Peng. "Anti-Corrosion Performance of Four Hot dip galvanizing bolts." International Conference on Advanced Design and Manufacturing Engineering 2013. |
[13] | Bagnulo, and L. H. "Cold laminar galvanizing: a new anti-corrosion concept." (1984). |
[14] | Bai, Allen, and Z. J. Chen. "Effect of electrolyte additives on anti-corrosion ability of micro-arc oxide coatings formed on magnesium alloy AZ91D." Surface & Coatings Technology 203.14 (2009): 1956-1963. |
[15] | Liu, Peng, et al. "Improved anticorrosion of magnesium alloy via layer-by-layer self-assembly technique combined with micro-arc oxidation." Materials Letters 75. none (2012): 118-121. |
[16] | Lou, Baiyang, T. Yixiang, and L. I. Xiao. "The Research on Anticorrosion and Abrasion Behavior in Corrosive Medium of Micro-Arc Oxidation Film on Magnesium Alloy." Key Engineering Materials (2011). |
APA Style
Shaopeng, L., Guoliang, W., Changhong, H. (2023). Research on Anti-Corrosion Solutions for Simplification OCS Components. American Journal of Traffic and Transportation Engineering, 8(6), 154-157. https://doi.org/10.11648/j.ajtte.20230806.14
ACS Style
Shaopeng, L.; Guoliang, W.; Changhong, H. Research on Anti-Corrosion Solutions for Simplification OCS Components. Am. J. Traffic Transp. Eng. 2023, 8(6), 154-157. doi: 10.11648/j.ajtte.20230806.14
AMA Style
Shaopeng L, Guoliang W, Changhong H. Research on Anti-Corrosion Solutions for Simplification OCS Components. Am J Traffic Transp Eng. 2023;8(6):154-157. doi: 10.11648/j.ajtte.20230806.14
@article{10.11648/j.ajtte.20230806.14, author = {Li Shaopeng and Wang Guoliang and He Changhong}, title = {Research on Anti-Corrosion Solutions for Simplification OCS Components}, journal = {American Journal of Traffic and Transportation Engineering}, volume = {8}, number = {6}, pages = {154-157}, doi = {10.11648/j.ajtte.20230806.14}, url = {https://doi.org/10.11648/j.ajtte.20230806.14}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajtte.20230806.14}, abstract = {Simplification OCS equipment is a OCS equipment system with Chinese independent intellectual property rights. In recent years, more and more railroad projects have adopted this equipment system, which marks a big step forward in the process of China's OCS autonomy. However, its anti-corrosion process is not perfect, the current anti-corrosion measures are passivation, anodic oxidation and micro-arc oxidation three means, the anti-corrosion program is not mature. China's vast territory, the natural environment varies greatly from place to place, at the same time on the market a wide variety of anti-corrosion process, different projects, different locations using the anti-corrosion program is not uniform. This has a direct impact on both the manufacturing cost and the later maintenance cost. In this paper, through the service performance of existing parts, anti-corrosion measures to study the different forms of anti-corrosion process for the test, and ultimately achieve the purpose of unifying the anti-corrosion program of the Simplification OCS equipment. Propose anti-corrosion measures applicable to OCS equipment in different environments. Extend the service life of the equipment, improve the reliability of the contact network equipment and reduce the operation and maintenance cost while considering the economy. Realize the complementary improvement of Simplification OCS equipment technology system. }, year = {2023} }
TY - JOUR T1 - Research on Anti-Corrosion Solutions for Simplification OCS Components AU - Li Shaopeng AU - Wang Guoliang AU - He Changhong Y1 - 2023/11/24 PY - 2023 N1 - https://doi.org/10.11648/j.ajtte.20230806.14 DO - 10.11648/j.ajtte.20230806.14 T2 - American Journal of Traffic and Transportation Engineering JF - American Journal of Traffic and Transportation Engineering JO - American Journal of Traffic and Transportation Engineering SP - 154 EP - 157 PB - Science Publishing Group SN - 2578-8604 UR - https://doi.org/10.11648/j.ajtte.20230806.14 AB - Simplification OCS equipment is a OCS equipment system with Chinese independent intellectual property rights. In recent years, more and more railroad projects have adopted this equipment system, which marks a big step forward in the process of China's OCS autonomy. However, its anti-corrosion process is not perfect, the current anti-corrosion measures are passivation, anodic oxidation and micro-arc oxidation three means, the anti-corrosion program is not mature. China's vast territory, the natural environment varies greatly from place to place, at the same time on the market a wide variety of anti-corrosion process, different projects, different locations using the anti-corrosion program is not uniform. This has a direct impact on both the manufacturing cost and the later maintenance cost. In this paper, through the service performance of existing parts, anti-corrosion measures to study the different forms of anti-corrosion process for the test, and ultimately achieve the purpose of unifying the anti-corrosion program of the Simplification OCS equipment. Propose anti-corrosion measures applicable to OCS equipment in different environments. Extend the service life of the equipment, improve the reliability of the contact network equipment and reduce the operation and maintenance cost while considering the economy. Realize the complementary improvement of Simplification OCS equipment technology system. VL - 8 IS - 6 ER -