Abstract
The present paper aims to investigate the process parameters and damping behaviour of the acrylonitrile butadiene styrene (ABS) cantilever beam manufactured using material extrusion (MEX). The research outcome could guide the manufacture of MEX structures to suit specific operating scenarios such as energy absorption and artificially controlled vibration responses. Our research used an experimental approach to examine the interdependencies between process parameters (nozzle size, infill density and pattern) and the damping behaviour (first-order modal damping ratio and loss factor). The impact test was carried out to obtain the damping ratio from the accelerometer. A dynamic mechanical analysis was performed for the loss factor measurement. The paper used statistical analysis to reveal significant dependencies between the process parameters and the damping behaviour. The regression models were also utilised to evaluate the mentioned statistical findings. The multiple third-order polynomials were developed to represent the relation between process parameters and modal damping ratio using stiffness as the mediation variable. The obtained results showed that the infill density affected the damping behaviour significantly. Higher infill density yielded a lower damping ratio. Nozzle size also showed a notable effect on damping. A high damping ratio was observed at a significantly low value of nozzle size. The results were confirmed using the theoretical analysis based on the underlying causes due to porosity in the MEX structure.
Subject
Polymers and Plastics,General Chemistry
Reference52 articles.
1. 3D printing in aerospace and its long-term sustainability;Joshi;Virtual Phys. Prototyp.,2015
2. The role of 3D printing in medical applications: A state of the art;Aimar;J. Healthc. Eng.,2019
3. Emerging applications of 3D printing in biomanufacturing;Gao;Trends Biotechnol.,2021
4. (2021). Additive manufacturing ISO/ASTM 52900:2021 (En), Additive Manufacturing—General Principles—Fundamentals and Vocabulary (Standard No. ISO/TC 261).
5. Fatigue behaviour of FDM-3D printed polymers, polymeric composites and architected cellular materials;Shanmugam;Int. J. Fatigue,2021
Cited by
13 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