Investigation on mechanical properties of the green synthesis bamboo fiber/eggshell/coconut shell powder-based hybrid biocomposites under NaOH conditions

Author:

Natrayan L.1,Chinta Neelima Devi2,Gogulamudi Balakrishna3,Swamy Nadh V.4,Muthu G.5,Kaliappan S.6,Srinivas Chidurala7

Affiliation:

1. Department of Mechanical Engineering, Saveetha School of Engineering, SIMATS , Chennai , Tamil Nadu, 602 105 , India

2. Department of Mechanical Engineering, JNTU-GV College of Engineering , Vizianagaram (JNTUGV-CEV) , Vizianagaram 535003, Andhra Pradesh , India

3. Department of Mechanical Engineering, PVP Siddhartha Institute of Technology , Kanuru , Vijayawada , Andhra Pradesh 520007 , India

4. Department of Civil Engineering, Aditya College of Engineering , Surampalem , Andhra Pradesh 533437 , India

5. Department of Mechanical Engineering, Rajalakshmi Institute of Technology , Kuthampakkam , Chennai 600124, Tamil Nadu , India

6. Department of Mechatronics Engineering, KCG College of Technology , KCG Nagar, Karapakkam , Chennai 600097, Tamil Nadu , India

7. Department of Mechanical Engineering, Vaageswari College of Engineering , Karimnagar , Telangana 505527 , India

Abstract

Abstract This research delves into the effects of different alkalization treatment approaches on the mechanical characteristics of epoxy matrix composites that are reinforced with natural bamboo fibers and enriched with egg and coconut shell powders as fillers. Various weight ratios of fibers and fillers were investigated, specifically at 5%, 10%, 15%, 20%, 25%, and 30%. The study assessed mechanical properties such as tensile strength, flexural behavior, microhardness, and impact resilience. Findings indicate that composites with alkali-treated fibers demonstrate superior mechanical performance (49.28 MPa of tensile, 57.33 MPa of flexural 89 HV of hardness, and 1.3 kJ·m−2 of impact) compared to untreated counterparts. Particularly noteworthy is the significant improvement in fracture toughness observed with the inclusion of 20% hybrid laminates, surpassing the performance of existing biomaterial-based composites. This heightened toughness is attributed to the optimized composition of fibers and enhanced water absorption capabilities. Conversely, the incorporation of 25% and 30% hybrid composites led to a decrease in mechanical strength (38.65 MPa of tensile, 46.7 MPa of flexural, 72 HV of hardness, and 1.19 kJ·m−2 of impact) due to the formation of additional interfacial contacts, pores, and voids within the polymeric matrix.

Publisher

Walter de Gruyter GmbH

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