Comprehensive Characterization of Novel Jute Fabrics with Musa Paradisiaca Leaf Agro-Waste Based Micro Cellulosic Fillers Reinforced Epoxy Composites For Lightweight Applications

dc.contributor.authorIndra Reddy, M.I.
dc.contributor.authorSethuramalingam, P.
dc.contributor.authorSahu, R.K.
dc.date.accessioned2026-02-03T13:20:03Z
dc.date.issued2025
dc.description.abstractFor lightweight, sustainable, high-strength products, hybrid bio-epoxy composites materials were the most excellent choice for the production industry. The investigation proceeds in developing a four-stacked sequence jute-woven mats reinforced with epoxy composite and added with micro-cellulose fillers. The extraction of micro cellulose from Musa paradisiaca plant leaf (MPPL) was carried out through a series of processes, including alkali treatment, acid hydrolysis, bleaching, and slow pyrolysis. The composite was fabricated using the conventional hand lay-up method and compression molding. The microcellulose was added to the stacked composite at varying weight percentages (0, 2.5, 5, 7.5, and 10%). Thermo-mechanical and water intake characterization were investigated using ASTM. The findings revealed that incorporating 5% MPPL cellulose into the jute-stacked layer sequence resulted in improved hardness (95 HRRW), tensile modulus (3407.69 MPa), tensile strength (79.74 MPa), flexural modulus (2195.752 MPa), flexural strength (56.87 MPa), and crystallinity index (72.7%). However, a reduction in impact strength (23.27 kJ/m2) was noted compared to the unfilled composite. The higher thermal degradation (480 °C) behavior of the filler-reinforced composite makes them a suitable material for applications in high-temperature environments. Fractographical morphology was also investigated to reveal the bonding behavior, voids formations, agglomeration of fillers, and fracture behavior. Thus, this distinguishable composite characterization will aid the manufacturing industries in producing high-strength biodegradable materials. © The Author(s), under exclusive licence to the Korean Fiber Society 2025.
dc.identifier.citationFibers and Polymers, 2025, 26, 4, pp. 1691-1703
dc.identifier.issn12299197
dc.identifier.urihttps://doi.org/10.1007/s12221-025-00886-4
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/20353
dc.publisherKorean Fiber Society
dc.subjectAgricultural wastes
dc.subjectBending strength
dc.subjectBond strength (materials)
dc.subjectCatalytic cracking
dc.subjectCleaning
dc.subjectCompaction
dc.subjectCompressive strength
dc.subjectImpact strength
dc.subjectJute fibers
dc.subjectTensile strength
dc.subjectWeaving
dc.subjectAgro-wastes
dc.subjectEpoxy
dc.subjectEpoxy composite
dc.subjectHigh-strength
dc.subjectJute fabrics
dc.subjectJute woven mat
dc.subjectMusa paradisiacum leaf cellulose
dc.subjectPlant leaves
dc.subjectReinforced epoxy
dc.subjectThermo-mechanical
dc.subjectCompression molding
dc.subjectBend Strength
dc.subjectCatalysts
dc.subjectCompression Strength
dc.subjectImpact Strength
dc.subjectPyrolysis
dc.titleComprehensive Characterization of Novel Jute Fabrics with Musa Paradisiaca Leaf Agro-Waste Based Micro Cellulosic Fillers Reinforced Epoxy Composites For Lightweight Applications

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