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颜料含量负载抑制剂对富锌无机涂层性能的影响。

Impact of inhibitor loaded with pigments content on properties of inorganic zinc rich coatings.

作者信息

Zhou Shuangxi, Li Weijie, Li Jianxin, Li Ruguang

机构信息

Guangzhou Maritime University, China.

East China Jiaotong University, China.

出版信息

Heliyon. 2024 Jan 16;10(2):e24739. doi: 10.1016/j.heliyon.2024.e24739. eCollection 2024 Jan 30.

Abstract

In order to overcome the poor dispersion of traditional inorganic zinc-rich coating, addressing the sedimentation and the agglomeration caused by high zinc powder content and improve the anti-corrosion performance of coatings. In this paper, the molybdate intercalated hydrotalcite flake zinc layer double hydroxide (ZnAl-NO3/LDH) was synthesized by hydrothermal synthesis method at first, and the KH560 modified the Mo/LDH flake zinc powder was further obtained by ion exchange method. The results show that the samples have a layered structure of hydrotalcite with good crystal structure through X-ray diffraction (XRD) and Fourier transform infrared (FT-IR), and the molybdate corrosion inhibiting ions inserted successfully into the interlayer structure of hydrotalcite. Meanwhile, different contents of pigments and fillers were added into the inorganic zinc-rich coatings. It was found that the Nyquist radius of curvature and modulus value of the coating were the largest with a pigment and filler content of 40 %, the maximum corrosion potential was -0.017V, and the minimum corrosion current density was 3.377 × 10 A-cm. The result indicates that the coating has the best corrosion resistance with 40 % pigment content, which has good application prospects in the fields of cross-sea bridges, natural gas and oil pipelines et al.

摘要

为了克服传统富锌无机涂料分散性差的问题,解决高锌粉含量导致的沉降和团聚现象,并提高涂料的防腐性能。本文首先采用水热合成法合成了钼酸根插层水滑石片状锌层双氢氧化物(ZnAl-NO3/LDH),并通过离子交换法进一步制备了KH560改性的Mo/LDH片状锌粉。结果表明,通过X射线衍射(XRD)和傅里叶变换红外光谱(FT-IR)可知,样品具有水滑石层状结构,晶体结构良好,钼酸根缓蚀离子成功插入水滑石层间结构。同时,在无机富锌涂料中添加不同含量的颜填料。发现当颜填料含量为40%时,涂层的奈奎斯特曲线半径和模量值最大,最大腐蚀电位为-0.017V,最小腐蚀电流密度为3.377×10 A-cm。结果表明,颜填料含量为40%时涂层具有最佳的耐腐蚀性能,在跨海大桥、天然气和石油管道等领域具有良好的应用前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa9a/10830574/3f5f775596a9/gr1.jpg

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