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ABSTRACT Plastic pyrolysis offers circular solutions for mixed plastic waste but leaves a carbonaceous char that is often underutilized. This study evaluates plastic‐waste‐derived pyrolysis char (0–10 wt.%) as a filler in epoxy/E‐glass laminates (GFRP) and quantifies mechanical, thermal, microstructural, and electrical responses. Tensile behavior remained brittle across all systems; Young's modulus rose at 2.5 wt.% while ultimate tensile strength decreased at mid‐loadings and partially recovered at 10 wt.%. Flexural strength increased at 2.5 wt.%, dipped at 5–7.5 wt.%, and rebounded at 10 wt.%. Interlaminar shear strength improved markedly at high loadings (7.5 wt.% and 10 wt.%). Impact strength showed a modest gain at 2.5 wt.% but declined sharply at 5 wt.%. Hardness peaked at 5 wt.%. Fiber volume fraction fell with char, rationalizing strength/stiffness trends. TGA/DTG revealed three‐stage degradation with a single main peak. Four‐point probe tests detected no conduction at 10 wt.% (sub‐percolation). SEM linked property changes to dispersion at low loading (crack deflection) versus agglomeration and interfacial defects at mid/high loading. Overall, low to moderate char levels enhance stiffness and interlaminar shear strength with minimal reduction in mechanical strength, while higher loadings trade toughness for through‐thickness shear resistance.
Anokwu et al. (Thu,) studied this question.
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