1. Yangtze River Shipping Development Research Center, Wuhan 430014, China
2. SAIC-GM Co., Ltd. Wuhan Branch, Wuhan 430200, China
| Abstract: | The Yangtze River is the largest inland river in the world in terms of freight volume, Developing and applying new materials in the Yangtze River shipping is an important way and method to promote the high-quality development and green low-carbon transformation of the Yangtze River shipping. With the improvement of the control of volatile organic compounds in China, water-based anticorrosive coatings have been widely used in various industries in recent years due to its low toxicity, low flammability and low VOC content. As an important basic material for green development, graphene has many excellent properties, and a number of studies have shown that the addition of graphene to water-based anti-corrosion coatings in a certain way can improve the anti-corrosion performance of the coating. The water-based graphene heavy anti-corrosion coating produced by A company was tested as a new green coating on the buoys of the main line of the Yangtze River. Through testing and analysis in the early stage, the indicators of the coating met the relevant national standards and industry standards. After an 8-month water test, the coating performed well in appearance, color and biological adhesion resistance. Based on this analysis, the feasibility of its extensive application in wharf engineering, channel regulation engineering, ship construction and other Yangtze River shipping facilities and equipment anticorrosion is analyzed. |
| Keywords: | Water-based Graphene; Heavy Anticorrosive Paint; Buoys; Yangtze River |
| DOI: | 10.57237/j.mater.2024.03.002 |
| [1] | 孟巧玲等. 环保型水性涂料研究进展及发展趋势 [J]. 中国胶粘剂, 2019, 28(01): 55-60. |
| [2] | Carter W P L. Development of ozone reactivity scales for volatile organic compounds [J]. Journal of the Air and Waste Management Association. 1994(44): 881-899. |
| [3] | 曲颖. 国内外重防腐涂料现状及发展方向 [J]. 化学工业, 2013, 31(08): 25-34. |
| [4] | Melchers E R. Microbiological and abiotic processes in modelling longer-term marine corrosion of steel [J]. Bioelectrochemistry, 2014, 9789-96. |
| [5] | Yang J W, Neoh K, Kang E, et al. Polymer brush coatings for combating marine biofouling [J]. Progress in Polymer Science, 2014, 39(5): 1017-1042. |
| [6] | 徐国强. 二十年来我国船舶漆的演变 [J]. 涂料工业, 2002, (05): 32-35. |
| [7] | 王镇, 肖丽俊, 干勇. 新材料引领支撑绿色低碳经济发展 [J]. 材料导报, 2024, 38(03): 101-107. |
| [8] | 刘国杰. 石墨烯研究进展及在水性涂料中应用简况 [J]. 中国涂料, 2015, 30(04): 22-28. |
| [9] | 蔡文曦, 盛鑫鑫, 张心亚, 等. 石墨烯在功能涂料中的应用概述 [J]. 涂料工业, 2014, 44(10): 74-79. |
| [10] | 李洪飞, 王华进, 扈中武, 等. 氧化石墨烯在膨胀型水性防火涂料中阻燃和抑烟作用研究 [J]. 涂料工业, 2015, 45(01): 1-8. |
| [11] | 吴祥水, 汤雯婷, 徐象繁. 二维材料热传导研究进展 [J]. 物理学报, 2020, 69(19): 37-69. |
| [12] | 王军, 姜天明. 石墨烯防腐涂料的特点及在海洋防腐领域的应用前景 [J]. 现代涂料与涂装, 2019, 22(04): 17-20. |
| [13] | 张松. 石墨烯/水性环氧富锌涂料的制备及性能研究 [D]. 哈尔滨工业大学, 2017. |
| [14] | 陈志宇, 郭小平, 水晓雪等. 苛刻海洋大气腐蚀环境下石墨烯改性重防腐涂料在输电铁塔表面的服役性能评价 [J].中国表面工程, 2022, 35(02): 24-34. |
| [15] | 王清海, 王秀娟, 方健君. 石墨烯在环氧富锌底漆中的应用 [J]. 涂料工业, 2016, 46(12): 42-47. |
| [16] | 顾林, 丁纪恒, 余海斌. 石墨烯用于金属腐蚀防护的研究[J]. 化学进展, 2016, 28(05): 737-743. |
| [17] | 张力, 吴俊涛, 江雷. 石墨烯及其聚合物纳米复合材料 [J].化学进展, 2014, 26(04): 560-571. |
| [18] | 江莞, 范宇驰, 刘霞, 等. 机械剥离法制备石墨烯及其在石墨烯/陶瓷复合材料制备中的应用 [J]. 中国材料进展, 2011, 30(01): 12-20. |
| [19] | 任文才, 高力波, 马来鹏, 等. 石墨烯的化学气相沉积法制备 [J]. 新型炭材料, 2011, 26(01): 71-80. |
| [20] | 杨永岗, 陈成猛, 温月芳, 等. 氧化石墨烯及其与聚合物的复合 [J]. 新型炭材料, 2008, (03): 193-200. |
| [21] | 赵冬梅, 李振伟, 刘领弟, 等. 石墨烯/碳纳米管复合材料的制备及应用进展 [J]. 化学学报, 2014, 72(02): 185-200. |
| [22] | 于小雯, 石高全. 石墨烯/高分子复合薄膜的制备及应用 [J]. 高分子学报, 2014, (07): 885-895. |
| [23] | 杨文彬, 张丽, 刘菁伟, 等. 石墨烯复合材料的制备及应用研究进展 [J]. 材料工程, 2015, 43(03): 91-97. |
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