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May 20, 2026Polymers0 citationsOpen Access

Electron Beam Irradiation for Impact Strength Enhancement of Kevlar Fiber-Reinforced Polypropylene

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HKHideki KimuraYKYusuke KobayashiHIHirotaka Irie

Key Points

  • To assess the effect of electron beam irradiation on the impact strength of Kevlar fiber-reinforced polypropylene composites.
  • Evaluated homogeneous low-potential electron beam irradiation (HLEBI) on assembled samples of Kevlar fiber and polypropylene.
  • Conducted experiments at a cathode potential of 250 kV and a dose of 86 kGy, comparing results with untreated samples.
  • Utilized scanning electron microscopy (SEM) and x-ray photoelectron spectroscopy (XPS) for material analysis.
  • Charpy impact strength significantly increased by 59% from 72.5 kJ/m2 (untreated) to 115.6 kJ/m2 (250 kV–86 kGy).
  • A 170 kV–129 kGy setting raised the impact strength to 83.3 kJ/m2, a 15% increase from untreated samples.
  • SEM and XPS analyses indicate improved adhesion and strong bonding at the Kevlar and polypropylene interface.

Abstract

Presently, there is little to no literature that investigates the effect of electron beams on para-aramid (Kevlar®) fiber polymer (KFRP) composites. Therefore, we assessed the effect of homogeneous low-potential electron beam irradiation (HLEBI) on Kevlar-reinforced recyclable thermoplastic (TP) polypropylene (PP) (KFRPP). Samples were assembled in an interlayered configuration of four-sized KF plies between five PP sheets PP1-KF1-PP2-KF2-PP3-KF2-PP2-KF1-PP1 designated PP5KF4, which were hot-pressed at 493 K at 4 MPa for 7 min. Experimental results show when an HLEBI setting of 250 kV cathode potential (Vc) at an 86 kGy dose is applied to finished sample surfaces, the Charpy impact strength (auc) at median fracture probability (Pf of 0.50) is increased 59% from 72.5 kJ/m2 when untreated to 115.6 kJ/m2 thereafter, while a 170 kV–129 kGy setting increased auc about 15%, to 83.3 kJ/m2, when compared to the untreated sample. Scanning electron microscopy (SEM) showed the 250 kV–86 kGy HLEBI increases KF/PP adhesion with increased consolidation and KF bundling, while the electron spin resonance (ESR) showed HLEBI generates dangling bonds (DBs) in KF and PP, which is evidence of the strengthening KF/PP interface. X-ray photoelectron spectroscopy (XPS) of the N1s spectrum of Kevlar fiber from the fracture region of the untreated sample showed a dominant peak at 399.5 eV with 82.7% area, which is characteristic of the Kevlar backbone N–(C=O)–, indicating poor adhesion with fiber pullout. However, the dominant peak was shifted in the 250 kV–86 kGy sample to that of strongly bonded imines, –C=N–, at 398.6 eV and 36.8%, indicating strong bonds generated at the KF/PP interface. Together, the N1s, C1s and O1s spectra indicate increased polar groups, reduced weak Van der Waals forces, and the generation of a strong active nitrogen-containing interphase, acting to reduce fiber pullout to increase the impact strength of the PP5KF4 composite system.

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Cite This Study

Kimura et al. (2026) studied this question.

synapsesocial.com/papers/6a0d4f19f03e14405aa9a41dhttps://doi.org/10.3390/polym18101231
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