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首页> 外文期刊>Journal of Adhesion Science and Technology: The International Journal of Theoredtical and Basic Aspects of Adhesion Science and Its Applications in All Areas of Technology >Optimisation of interface roughness and coating thickness to maximise coating-substrate adhesion - a failure prediction and reliability assessment modelling
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Optimisation of interface roughness and coating thickness to maximise coating-substrate adhesion - a failure prediction and reliability assessment modelling

机译:优化界面粗糙度和涂层厚度以最大化涂层与基材的附着力-故障预测和可靠性评估模型

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摘要

A mathematical model for failure prediction and reliability assessment of coating-substrate system is developed based on a multidisciplinary approach. Two models for diffusion and bending of bi-layer cantilever beam have been designed separately based on the concepts of material science and solid mechanics respectively. Then, these two models are integrated to design an equation for debonding driving force under mesomechanics concepts. Mesomechanics seeks to apply the concepts of solid mechanics to microstructural constituent of materials such as coatings. This research takes the concepts of mesomechanics to the next level in order to predict the performance and assess the reliability of coatings based on the measure of debonding driving force. The effects of two parameters i.e. interface roughness and coating thickness on debonding driving force have been analysed using finite difference method. Critical/threshold value of debonding driving force is calculated which defines the point of failure of coating-substrate system and can be used for failure prediction and reliability assessment by defining three conditions of performance i.e. safe, critical and fail. Results reveal that debonding driving force decreases with an increase in interface roughness and coating thickness. However, this is subject to condition that the material properties of coating such as diffusivity should not increase and Young's modulus should not decrease with an increase in the interface roughness and coating thickness. The model is based on the observations recorded from experimentation. These experiments are performed to understand the behaviour of debonding driving force with the variation in interface roughness and coating thickness.
机译:基于多学科方法,建立了涂层基体系统失效预测和可靠性评估的数学模型。分别根据材料科学和固体力学的概念分别设计了两种悬臂梁的扩散和弯曲模型。然后,将这两个模型集成在一起,以设计在细观力学概念下用于分离驱动力的方程式。 Mesomechanics试图将固体力学的概念应用于材料(如涂层)的微观结构组成。这项研究将介观力学的概念提升到了一个新的水平,以便根据剥离驱动力的测量结果来预测性能并评估涂层的可靠性。使用有限差分法分析了两个参数,即界面粗糙度和涂层厚度对剥离驱动力的影响。计算脱粘驱动力的临界/阈值,该临界/阈值定义了涂层-基材系统的故障点,并且通过定义性能的三个条件即安全,临界和故障,可用于故障预测和可靠性评估。结果表明,剥离驱动力随着界面粗糙度和涂层厚度的增加而降低。然而,这受到以下条件的限制,即涂层的材料性能(例如扩散率)不应增加,并且杨氏模量不应随着界面粗糙度和涂层厚度的增加而降低。该模型基于实验记录的观察结果。进行这些实验是为了了解随着界面粗糙度和涂层厚度的变化,剥离驱动力的行为。

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