Steel and Composite Structures
Volume 49, Number 4, 2023, pages 393-405
DOI: 10.12989/scs.2023.49.4.393
Parametric study of the energy absorption capacity of 3D-printed continuous glass fiber reinforced polymer cruciform honeycomb structure
Hussain Gharehbaghi and Amin Farrokhabadi
Abstract
In this paper, the energy absorption capability of a novel cruciform composite lattice structure was evaluated
through the simulation of compression tests. For this purpose, several test samples of Polylactic acid cellular reinforced with
continuous glass fibers were prepared for compression testing using the additive manufacturing method of material extrusion.
Using a conventional path design for material extrusion, multiple debonding is probable to be occurred at the joint regions of
adjacent cells. Therefore, an innovative printing path design was proposed for the cruciform lattice structure. Afterwards, quasistatic compression tests were performed to evaluate the energy absorption behaviour of this structure. A finite element model
based on local material property degradation was then developed to verify the experimental test and extend the virtual test
method. Accordingly, different combinations of unit cell' dimensions using the design of the experiment were numerically
proposed to obtain the optimal configuration in terms of the total absorbed energy. Having brilliant energy absorption properties,
the studied cruciform lattice with its optimized unit cell dimensions can be used as an energy absorber in crashworthiness
applications. Finally, a cellular structure will be suitable with optimal behavior in crush load efficiency and high energy
absorption.
Key Words
additive manufacturing; cruciform lattice; energy absorption; FEM
Address
Hussain Gharehbaghi and Amin Farrokhabadi:Department of Mechanical Engineering, Tarbiat Modares University, Tehran, Iran