Experimental Investigation of Effect of L-Profile Hybrid Aluminium/GFRP to the Axial and Lateral Characteristic

Author:

Nugraha Ariyana Dwiputra1,Alandro Daffa2,Kusumawanto Arif3ORCID,Junianto Endro4,Perwara Budi4,Kumar Vishnu Vijay256ORCID,Santos Gil Nonato C.7,Sentanuhady Jayan2ORCID,Norcahyo Rachmadi2,Muflikhun Muhammad Akhsin2ORCID

Affiliation:

1. PLN Research Institute, Jl. Duren Tiga Raya No.102, RT.8/RW.1, Duren Tiga, Kec. Pancoran, Kota Jakarta Selatan, Daerah Khusus Ibukota Jakarta 12760, Indonesia

2. Mechanical and Industrial Engineering Department, Gadjah Mada University, Jalan Grafika No. 2, Yogyakarta 55281, Indonesia

3. Department of Architecture and Planning, Gadjah Mada University, Jalan Grafika No. 2, Yogyakarta 55281, Indonesia

4. Research Center for Electrical Power and Mechatronics—National Research and Innovation Agency (BRIN), Jl. Sangkuriang, Dago, Kecamatan Coblong, Kota Bandung, Jawa Barat 40135, Indonesia

5. College of Design and Engineering, National University of Singapore, 9 Engineering Drive 1, #07-26 EA, Singapore 117575, Singapore

6. Department of Ocean Engineering, Indian Institute of Technology Madras, Chennai 600036, India

7. Physics Department, De La Salle University, 2401 Taft Ave, Malate, Manila 1004, Philippines

Abstract

The current study investigates the effect of a hybrid L-profile aluminium/glass-fiber-reinforced polymer stacking sequence under axial and lateral compression loads. Four stacking sequences are studied: aluminium (A)—glass-fiber (GF)—AGF, GFA, GFAGF, and AGFA. In the axial compression test, the aluminium/GFRP hybrid tends to crush in a more progressive and stable failure than the net aluminium and net GFRP specimens, with a relatively more stable load-carrying capacity throughout the experimental tests. The AGF stacking sequence was second, with an energy absorption of 145.31 kJ, following AGFA at 157.19 kJ. The load-carrying capacity of AGFA was the highest, with an average peak crushing force of 24.59 kN. The second-highest peak crushing force, 14.94 kN, was achieved by GFAGF. The highest amount of energy absorption, 157.19 J, was achieved by the AGFA specimen. The lateral compression test showed a significant increase in load-carrying and energy absorption capacity in the aluminium/GFRP hybrid specimens compared to the net GFRP specimens. AGF had the highest energy absorption with 10.41 J, followed by AGFA with 9.49 J. AGF also had the highest peak crushing force with 2.98 kN, followed by AGFA with 2.16 kN. The most crashworthy stacking sequence among the four variations tested in this experimental research was the AGF stacking sequence because of its great load-carrying capacity, energy absorption, and specific energy absorption in axial and lateral loading. The study provides greater insight into the failure of hybrid composite laminates under lateral and axial compression.

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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