Khushneet Singh, Avi Gupta, Mir Irfan Ul Haq, Sanjay Mohan, Deepak Kumar, Mohd Farooq Wani
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引用次数: 0
Abstract
Corrosion failures in steel components presents a major challenge across various industries, resulting in high maintenance costs and reduced equipment lifespan, particularly in machine parts exposed to humid and saline environments. This study focuses on the development of protective coatings using Al2O3 as the base material and La2O3 as a reinforcement, with varying weight percentages (1.2%, 1.6%, and 1.8%), applied via high velocity oxy-fuel spraying on stainless steel (SS304) substrates. The corrosion resistance of these coatings was evaluated using a potentiostat in a 3.5% NaCl solution to simulate a harsh saline environment. Electrochemical behavior was analyzed through Tafel, Bode, and Nyquist plots, while electrochemical impedance spectroscopy data were further assessed using the equivalent electrical circuit model method. The experimentation revealed that the S3 coating (98.4% Al2O3‒1.6% La2O3) exhibited the lowest corrosion rate and highest charge transfer resistance, which depicts its superior corrosion protection. Scanning electron microscopy, energy dispersive spectroscopy, and X-ray diffraction analyses confirmed the presence of α-Al2O3 in the La2O3-doped coatings, which plays a crucial role in reducing porosity and improving corrosion resistance. The results obtained in this work demonstrates that the Al2O3‒La2O3 composite coatings significantly enhances the corrosion resistance of steel.
期刊介绍:
The International Journal of Applied Ceramic Technology publishes cutting edge applied research and development work focused on commercialization of engineered ceramics, products and processes. The publication also explores the barriers to commercialization, design and testing, environmental health issues, international standardization activities, databases, and cost models. Designed to get high quality information to end-users quickly, the peer process is led by an editorial board of experts from industry, government, and universities. Each issue focuses on a high-interest, high-impact topic plus includes a range of papers detailing applications of ceramics. Papers on all aspects of applied ceramics are welcome including those in the following areas:
Nanotechnology applications;
Ceramic Armor;
Ceramic and Technology for Energy Applications (e.g., Fuel Cells, Batteries, Solar, Thermoelectric, and HT Superconductors);
Ceramic Matrix Composites;
Functional Materials;
Thermal and Environmental Barrier Coatings;
Bioceramic Applications;
Green Manufacturing;
Ceramic Processing;
Glass Technology;
Fiber optics;
Ceramics in Environmental Applications;
Ceramics in Electronic, Photonic and Magnetic Applications;