Predictive modeling of HVOF-sprayed TiC coating: an ANN-based approach for coating properties estimation

被引:1
|
作者
Singh, Vikrant [1 ]
Bansal, Anuj [1 ]
Jindal, Marut [1 ]
Singla, Anil Kumar [1 ]
机构
[1] St Longowal Inst Engn & Technol, Sangrur 148106, Punjab, India
来源
INTERNATIONAL JOURNAL OF INTERACTIVE DESIGN AND MANUFACTURING - IJIDEM | 2025年 / 19卷 / 03期
关键词
HVOF; ANN; TiC; Model; ARTIFICIAL NEURAL-NETWORKS; OPTIMIZATION; PARAMETERS;
D O I
10.1007/s12008-024-01763-9
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This research article presents a comprehensive investigation into the High-Velocity Oxy-Fuel spraying process, focusing on the creation of coatings using SS316 as the base material and Titanium Carbide as the coating powder. The study systematically explores the influence of key process parameters, including oxygen flow rate (O), LPG flow rate (L), and air flow rate (A), on critical coating properties such as coating thickness, porosity, and slurry erosion resistance. To gain insights and predict coating properties accurately, an Artificial Neural Network (ANN)-based regression model is developed. The ANN model is meticulously optimized, with a single hidden layer containing 20 neurons identified as the most effective architecture. The model demonstrates strong performance in fitting training data and accurately predicting coating characteristics. Validation of the ANN model is conducted, revealing close agreement between model predictions and experimental observations. Scanning Electron Microscope images, porosity analysis, and mass loss measurements further corroborate the model's precision in estimating coating properties. The study underscores the utility of data-driven approaches, particularly ANN-based regression models, in materials science research, offering a systematic and reliable means of predicting coating properties without relying on complex physical models.
引用
收藏
页码:1709 / 1720
页数:12
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