Intelligent modeling and optimization of titanium surface etching for dental implant application

Author:

Sadati Tilebon Seyyed Mohamad,Emamian Seyed Amirhossein,Ramezanpour Hosseinali,Yousefi Hashem,Özcan Mutlu,Naghib Seyed Morteza,Zare Yasser,Rhee Kyong Yop

Abstract

AbstractAcid-etching is one of the most popular processes for the surface treatment of dental implants. In this paper, acid-etching of commercially pure titanium (cpTi) in a 48% H2SO4 solution is investigated. The etching process time (0–8 h) and solution temperature (25–90 °C) are assumed to be the most effective operational conditions to affect the surface roughness parameters such as arithmetical mean deviation of the assessed profile on the surface (Ra) and average of maximum peak to valley height of the surface over considered length profile (Rz), as well as weight loss (WL) of the dental implants in etching process. For the first time, three multilayer perceptron artificial neural network (MLP-ANN) with two hidden layers was optimized to predict Ra, Rz, and WL. MLP is a feedforward class of ANN and ANN model that involves computations and mathematics which simulate the human–brain processes. The ANN models can properly predict Ra, Rz, and WL variations during etching as a function of process temperature and time. Moreover, WL can be increased to achieve a high Ra. At WL = 0, Ra of 0.5 μm is obtained, whereas Ra increases to 2 μm at WL = 0.78 μg/cm2. Also, ANN model was fed into a nonlinear sorting genetic algorithm (NSGA-II) to establish the optimization process and the ability of this method has been proven to predict the optimized etching conditions.

Publisher

Springer Science and Business Media LLC

Subject

Multidisciplinary

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Influence of Chemical Milling on the Mechanical and Microstructural Properties of α Cased β-Titanium Alloy;Journal of Materials Engineering and Performance;2023-10-03

2. An overview of surface modification, A way toward fabrication of nascent biomedical Ti–6Al–4V alloys;Journal of Materials Research and Technology;2023-05

3. Statistical characterization of deformation-induced surface roughness in commercially pure titanium;PHYSICAL MESOMECHANICS OF CONDENSED MATTER: Physical Principles of Multiscale Structure Formation and the Mechanisms of Nonlinear Behavior: MESO2022;2023

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