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利用响应面法优化粘结强度和微观结构性能以增强稻壳灰基地质聚合物复合涂层

Optimization of Adhesion Strength and Microstructure Properties by Using Response Surface Methodology in Enhancing the Rice Husk Ash-Based Geopolymer Composite Coating.

作者信息

Mohd Basri Mohd Salahuddin, Mustapha Faizal, Mazlan Norkhairunnisa, Ishak Mohd Ridzwan

机构信息

Department of Process and Food Engineering, Faculty of Engineering, Universiti Putra Malaysia, UPM Serdang 43400, Selangor, Malaysia.

Laboratory of Halal Science Research, Halal Products Research Institute, Universiti Putra Malaysia, UPM Serdang 43400, Selangor, Malaysia.

出版信息

Polymers (Basel). 2020 Nov 16;12(11):2709. doi: 10.3390/polym12112709.

Abstract

As a result of their significant importance and applications in vast areas, including oil and gas, building construction, offshore structures, ships, and bridges, coating materials are regularly exposed to harsh environments which leads to coating delamination. Therefore, optimum interfacial bonding between coating and substrate, and the reason behind excellent adhesion strength is of utmost importance. However, the majority of studies on polymer coatings have used a one-factor-at-a-time (OFAT) approach. The main objective of this study was to implement statistical analysis in optimizing the factors to provide the optimum adhesion strength and to study the microstructure of a rice husk ash (RHA)-based geopolymer composite coating (GCC). Response surface methodology was used to design experiments and perform analyses. RHA/alkali activated (AA) ratio and curing temperature were chosen as factors. Adhesion tests were carried out using an Elcometer and a scanning electron microscope was used to observe the microstructure. Results showed that an optimum adhesion strength of 4.7 MPa could be achieved with the combination of RHA/AA ratio of 0.25 and curing temperature at 75 °C. The microstructure analysis revealed that coating with high adhesion strength had good interfacial bonding with the substrate. This coating had good wetting ability in which the coating penetrated the valleys of the profiles, thus wetting the entire substrate surface. A large portion of dense gel matrix also contributed to the high adhesion strength. Conversely, a large quantity of unreacted or partially reacted particles may result in low adhesion strength.

摘要

由于涂层材料在包括石油和天然气、建筑施工、海上结构、船舶和桥梁等广泛领域具有重要意义和应用,它们经常暴露在恶劣环境中,这会导致涂层分层。因此,涂层与基材之间的最佳界面结合以及优异附着力强度背后的原因至关重要。然而,大多数关于聚合物涂层的研究都采用了一次只改变一个因素(OFAT)的方法。本研究的主要目的是通过统计分析来优化因素,以提供最佳附着力强度,并研究稻壳灰(RHA)基地质聚合物复合涂层(GCC)的微观结构。采用响应面方法设计实验并进行分析。选择RHA/碱活化(AA)比和固化温度作为因素。使用Elcometer进行附着力测试,并使用扫描电子显微镜观察微观结构。结果表明,当RHA/AA比为0.25且固化温度为75°C时,可实现4.7 MPa的最佳附着力强度。微观结构分析表明,具有高附着力强度的涂层与基材具有良好的界面结合。该涂层具有良好的润湿性,涂层能够渗透到型材的凹槽中,从而润湿整个基材表面。大量致密的凝胶基质也有助于提高附着力强度。相反,大量未反应或部分反应的颗粒可能导致低附着力强度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/930a/7697585/84c6a4e6cd0b/polymers-12-02709-g001.jpg

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