Nanotitanium Oxide Particles and Jute-Hemp Fiber Hybrid Composites: Evaluate the Mechanical, Water Absorptions, and Morphological Behaviors

Author:

Mahesha C. R.1,Suprabha R.1,Harne Mahesh S.2,Galme Sachin G.3,Thorat Sandeep G.4,Nagabhooshanam N.5,Seikh A. H.6,Siddique M. H.7,Markos Mebratu8ORCID

Affiliation:

1. Department of Industrial Engineering & Management, Dr. Ambedkar Institute of Technology, Bangalore, Karnataka 560056, India

2. Department of Mechanical Engineering, Amrutvahini College of Engineering, Sangamner, Maharashtra 422608, India

3. Department of Mechanical Engineering, Sandip Institute of Technology and Research Centre, Nashik, Maharashtra 422213, India

4. Department of Mechanical Engineering, MIT ADT University’s MIT School of Engineering, Rajbaug Loni Kalbhor, Pune, Maharashtra 412201, India

5. Department of Mechanical Engineering, Aditya Engineering College Surampalem, Andhra Pradesh, India

6. Mechanical Engineering Department, College of Engineering, King Saud University, P.O. Box 800, Al-Riyadh 11421, Saudi Arabia

7. Intelligent Construction Automation Centre, Kyungpook National University, Daegu, Republic of Korea

8. Department of Mechanical Engineering, College of Engineering, Wolaita Sodo University, Ethiopia

Abstract

Organic fiber-based biocomposites have gained prominence in a variety of sectors over the last four to five years due to their exceptional mechanical and physical properties. Natural fiber-based composites are increasingly being employed in autos, ships, airplanes, and infrastructure projects. The current study will look at the effect of nanotitanium oxide (TiO2) fillers on the properties of hybridised jute-hemp-based composites. In this work, TiO2-filled biocomposites were created using the hand layup method in hybrid jute-hemp composites containing jute fiber mats, woven hemp mats, and epoxy resin. After nanotitanium oxide fillers were injected in various weight proportions, the mechanical properties of fiber-reinforced polymers were investigated. The mechanical properties of laminated composites were tested using the ASTM standard. Compared to 2 and 4 wt.% of TiO2, the 6 wt.% was provided the highest mechanical strength. Among the different types of specimen, the E-type specimen (30 wt.% of hemp, 7 wt.% of jute, 57 wt.% of epoxy, and 6 wt.% of TiO2) gives their highest contribution, i.e., for tensile 24.21%, for flexural 25.03%, and for impact 24.56%. The scanning electron microscope was utilized to analyse the microstructures of nanocomposites.

Funder

King Saud University

Publisher

Hindawi Limited

Subject

General Materials Science

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