Optimization of FDM Printing Process Parameters on Surface Finish, Thickness, and Outer Dimension with ABS Polymer Specimens Using Taguchi Orthogonal Array and Genetic Algorithms

Author:

Chohan Jasgurpreet Singh1ORCID,Kumar Raman1ORCID,Yadav Aniket1,Chauhan Piyush1,Singh Sandeep2ORCID,Sharma Shubham13ORCID,Li Changhe4,Dwivedi Shashi Prakash5,Rajkumar S.6ORCID

Affiliation:

1. Department of Mechanical Engineering, Chandigarh University, Mohali 140413, India

2. Department of Civil Engineering, Chandigarh University, Mohali 140413, India

3. Deptt. of Mechanical Engg., IK Gujral Punjab Technical University, Main Campus, Kapurthala 144603, India

4. School of Mechanical and Automotive Engineering, Qingdao University of Technology, Qingdao, 266520, China

5. G.L. Bajaj Institute of Technology & Management, Greater Noida, Gautam Buddha Nagar, UP 201310, India

6. Department of Mechanical Engineering, Faculty of Manufacturing, Institute of Technology, Hawassa University, Awasa, Ethiopia

Abstract

Fused deposition modelling (FDM) is a technique of additive manufacturing used to fabricate a 3D (three-dimensional) model with layer-by-layer deposition of required materials with less material wastage. FDM is used to make any objects with a meager cost, but also there are some negative points related to less strength, less accuracy, and less surface finish. In this study, acrylonitrile butadiene styrene (ABS) is printed using an FDM printer to investigate the effects of various changing parameters like nozzle temperature (°C), infill pattern, and printing speed (mm/s) on surface roughness and thickness measurement. Experiments are designed using the Taguchi L9 orthogonal array method and ANOVA method. For obtaining an increase in surface roughness, the most influencing factor is printing speed with 83.41% contribution, and the effect of nozzle temperature is 9.04%. Lesser printing speed enhances the surface finish and, in the case of thickness and outer dimension of all the printed samples, results are almost constant. Regression analysis is performed to formulate the single-objective equations, and a genetic algorithm (GA) is applied to optimize the values of process parameters.

Publisher

Hindawi Limited

Subject

General Engineering,General Mathematics

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