Optimization of wire spark erosion machining of Grade 9 titanium alloy (Grade 9) using a hybrid learning algorithm

Author:

Natarajan Manikandan1,Pasupuleti Thejasree1,Giri Jayant2ORCID,Al-Lohedan Hamad A.3ORCID,Katta Lakshmi Narasimhamu1ORCID,Mohammad Faruq3,Sunheriya Neeraj2ORCID,Chadge Rajkumar2,Mahatme Chetan2ORCID,Giri Pallavi4,Mallik Saurav5,Sathish T.6ORCID

Affiliation:

1. Department of Mechanical Engineering, School of Engineering, Mohan Babu University 1 , Tirupati 517102, Andhra Pradesh, India

2. Department of Mechanical Engineering, Yeshwantrao Chavan College of Engineering 2 , Nagpur 441110, India

3. Department of Chemistry, College of Science, King Saud University 3 , Riyadh 11451, Saudi Arabia

4. Department of Civil Engineering, Laxminarayan Intitute of Technology 4 , Nagpur 440010, India

5. Department of Environmental Health, Harvard T. H. Chan School of Public Health 5 , Boston, Massachusetts, USA

6. Department of Mechanical Engineering, Saveetha School of Engineering, SIMATS 6 , Chennai, 602105, Tamil Nadu, India

Abstract

Manufacturing has grown challenging because of the increased usage of harder materials, such as titanium alloys, in many industries, such as aerospace, automobiles, and marine. Conventional material removal procedures are not suitable for these tough materials due to their increased hardness and slow machinability. Wire Electrical discharge machining (WEDM) is a modern approach for material removal, particularly for harder materials, such as titanium alloys, nickel alloys, hard particle reinforced metal matrix composites, etc. The research design was performed by deeming the independent factors, such as duration of pulse and applied current. The removal rate of material, surface roughness of the machined region, dimensional deviation, and tolerance errors in form/orientation are considered performance metrics. Taguchi’s approach was engaged to assess the process variables, and the importance of the process factors was established using analysis of variance approach. The purpose of this research is to create an AI based decision making tool, which can be utilized to anticipate the various parameters that impact the WEDM material removal process. The discoveries of the present exploration allowing the manufacturers to make better-informed decisions with a developed model’s capability by demonstrating that the model’s predicted values were in close confirmation to the actual values.

Funder

King Saud University

Publisher

AIP Publishing

Subject

General Physics and Astronomy

Reference39 articles.

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