抗冲击聚脲涂层研究进展

Study Progress on Impact Resistant Polyurea Coating

  • 摘要: 随着社会对低成本、高性能材料需求的增加,抗冲击材料成为研究的重点。本文主要介绍了聚脲材料在抗冲击应用中的微观结构特征及其性能影响因素。聚脲的微观结构由硬结构域和软结构域组成,这些结构通过氢键形成交联网络,赋予其优异的物理和力学性能。在外部冲击载荷作用下,聚脲通过结晶、结构重排、应变率效应等机制吸收和耗散能量,展现出良好的抗冲击性能。此外,聚脲的粘弹性和超弹性在高应变率条件下表现出显著的耗能能力。研究表明,聚脲的抗冲击性能还受到微观结构、应变率、涂层厚度及喷涂位置的影响。本文分析了这些因素对聚脲抗冲击性能的作用机制,并探讨了聚脲在不同应用环境中的表现,尤其是在极端环境下的应用前景。通过综述聚脲在抗冲击性、耐候性、力学性能等方面的影响因素和应用,文章总结了后续研究方向。可以借助聚脲本构模型提高聚脲在特殊环境下的应用;通过模拟与实验相结合优化微相分离形态以提高力学性能;借助仿生学原理,开发智能响应、抗冲击及自修复聚脲。

     

    Abstract: With the increasing demand for low-cost, high-performance materials, impact-resistant materials have become a focal point of research. This paper primarily discusses the microstructural characteristics of polyurethane in impact-resistant applications and the factors influencing its performance. The microstructure of polyurethane consists of hard and soft domains, which form a cross-linked network through hydrogen bonding, imparting excellent physical and mechanical properties. Under external impact loads, polyurethane absorbs and dissipates energy through mechanisms such as crystallization, structural rearrangement, and strain rate effects, demonstrating good impact resistance. Additionally, the viscoelasticity and superelasticity of polyurethane exhibit significant energy-dissipating capabilities under high strain rates. Research indicates that the impact performance of polyurethane is influenced by microstructure, strain rate, coating thickness, and spraying location. This paper analyzes the mechanisms by which these factors affect the impact resistance of polyurethane and explores its performance in various application environments, particularly under extreme conditions. By reviewing the influencing factors and applications of polyurethane regarding impact resistance, weatherability, and mechanical properties, the article summarizes directions for future research. It suggests enhancing polyurethane's application in specific environments using constitutive models, optimizing microphase separation to improve mechanical properties through a combination of simulation and experimentation, and developing smart-responsive, impact-resistant, and self-repairing polyurethane based on biomimetic principles.

     

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