In recent developments for producing fiber-reinforced polymer matrix composites, the fused deposition modeling method has emerged as a prominent technique. While carbon and glass fibers traditionally constitute these composites, the non-recyclable nature of these fibers has prompted a shift towards utilizing natural fibers. This transition offers several advantages for matrix reinforcement, including reduced production costs, minimized waste generation, enhanced mechanical properties, decreased part density, and the renewable nature of the materials. This study examines the influence of three key printing parameters—layer thickness, printing speed, and infill percentage—on the mechanical properties of composite parts reinforced with natural fibers. A composite filament, comprising a 60% polylactic acid (PLA) matrix and 40% coconut shell powder (CSP) reinforcement, was extruded using a laboratory setup. Subsequently, the filament was employed to print samples that underwent tensile testing. The experiments were designed and analyzed using response surface methodology to optimize the printing parameters and understand their interactive effects on tensile strength and elongation. The
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