A chemomechanical coupling model for diffusion and stress analysis in polymer-based anti-corrosion coatings

IF 4.2 2区 工程技术 Q1 MECHANICS European Journal of Mechanics A-Solids Pub Date : 2025-05-01 Epub Date: 2025-02-05 DOI:10.1016/j.euromechsol.2025.105603
Liangji Ma , Bo Zhang , Yin Yao , Zhilong Peng , Dawei Li , Shaohua Chen
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Abstract

The phenomenon of chemomechanical coupling significantly impacts the service performance and lifespan of organic anti-corrosion coatings. Due to differences in matrix materials, the chemomechanical coupling mechanism in organic anti-corrosion coatings is different from that in metal-based materials. How to accurately characterize the chemomechanical coupling behavior in organic anti-corrosion coatings has become an important issue. In this work, a new theoretical model of strong chemomechanical coupling is established for polymer-based anti-corrosion coatings, in which the stress-dependent chemical potential gradient is employed as the fundamental driving force for diffusion and the influence of stress on the diffusion coefficient is considered based on the concept of free volume theory. The model is further utilized to examine the distribution and evolution of the chemomechanical coupling field within a polymer-based anti-corrosion coating system under external loading. Compared with the analysis results of existing weak coupling models, it is found that strong chemomechanical coupling significantly affects the diffusion rate of substances, which in turn affects the concentration field and stress field within the coating. In addition, this model can also explain the experimental result that hydrostatic pressure diminishes the diffusion coefficient. The proposed strong coupling model should be significant in precisely analyzing the diffusion process and mechanical properties of materials or structures in chemomechanical coupling environments.
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聚合物基防腐涂层扩散与应力分析的化学-力学耦合模型
化学-力学耦合现象对有机防腐涂料的使用性能和使用寿命影响很大。由于基体材料的不同,有机防腐涂层中的化学-力学耦合机制与金属基材料中的不同。如何准确表征有机防腐涂层的化学-力学耦合行为已成为一个重要课题。本文基于自由体积理论的概念,将应力相关的化学势梯度作为扩散的基本驱动力,考虑应力对扩散系数的影响,建立了聚合物基防腐涂层强化学-力学耦合的新理论模型。利用该模型进一步研究了外载荷作用下聚合物基防腐涂层体系内化学-力学耦合场的分布和演化。与现有弱耦合模型的分析结果对比发现,强化学-力学耦合显著影响物质的扩散速率,进而影响涂层内的浓度场和应力场。此外,该模型还可以解释静水压力使扩散系数减小的实验结果。所提出的强耦合模型对于精确分析材料或结构在化学-力学耦合环境中的扩散过程和力学性能具有重要意义。
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来源期刊
CiteScore
7.00
自引率
7.30%
发文量
275
审稿时长
48 days
期刊介绍: The European Journal of Mechanics endash; A/Solids continues to publish articles in English in all areas of Solid Mechanics from the physical and mathematical basis to materials engineering, technological applications and methods of modern computational mechanics, both pure and applied research.
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