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March 16, 2026Composites Part B Engineering2 citationsOpen Access

Comparative multiscale evaluation of the temperature-dependent interfacial strength in aluminum alloy/carbon fiber-reinforced thermoplastic joints

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TMTomoki MatsudaRSRen SatoKSKazuma Shimizu

Key Points

  • The aim is to evaluate how temperature affects the strength and fracture mechanisms of aluminum alloy and CFRTP joints.
  • Established a multiscale framework for evaluation
  • Nanostructured A6061 surfaces using hydrochloric acid etching
  • Conducted thermocompression bonding at temperatures from 230 to 350 °C
  • Performed tensile-shear, miniature tensile, and microscale tensile testing
  • Utilized thermal analysis, microscopy, and nanoindentation for characterization.
  • Tensile-shear strength peaked at around 8 kN near 330 °C before declining at 350 °C
  • Void formation was observed at temperatures above 300 °C, indicating thermal decomposition of PA6
  • Miniature-scale tests showed earlier strength loss than joint-scale specimens
  • Microtensile tests revealed intrinsic degradation in PA6 near the interface
  • Nanoindentation indicated a hardness reduction of ≈ 200 MPa at 350 °C.

Abstract

Lightweight structural systems increasingly rely on dissimilar joints between aluminum alloys and carbon fiber-reinforced thermoplastics (CFRTPs); however, their mechanical reliability remains highly sensitive to the bonding temperature and the length scale of fracture. In this study, a comparative multiscale framework was established to elucidate the temperature-dependent evolution of strength and fracture mechanisms in dissimilar 6061 aluminum alloy (A6061)/polyamide 6 (PA6)-CFRTP joints. A6061 surfaces were nanostructured via hydrochloric acid etching to enhance mechanical interlocking, and thermocompression bonding was performed at temperatures ranging from 230 to 350 °C. Mechanical characterization was conducted across three scales: macroscopic tensile-shear, sub-millimeter-scale miniature tensile, and microscale tensile testing. These were complemented by thermal analysis, microscopy, X-ray nano-computed tomography, and nanoindentation. The tensile-shear strength increased moderately from near the melting point of PA6 to approximately 330 °C (reaching ≈ 8 kN), but declined to ∼ 6 kN at 350 °C. Cross-sectional observations revealed numerous voids within ∼ 1 mm of the interface above 300 °C, which was consistent with the onset of thermal decomposition of PA6. Miniature-scale specimens exhibited an earlier onset of strength loss than joint-scale specimens, which was attributed to void-induced stress concentration under a loading axis nearly perpendicular to the in-plane fiber orientation. Microtensile tests were used to isolate the intrinsic degradation region of PA6 adjacent to the interface. Nanoindentation confirmed a near-interfacial hardness reduction of ≈ 200 MPa at 350 °C. These findings elucidate the scale-dependent and temperature-driven fracture transition from interfacial to CFRTP-side failure and define an optimized process window.

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Cite This Study

Matsuda et al. (2026) studied this question.

synapsesocial.com/papers/69b79df38166e15b153ab25ahttps://doi.org/10.1016/j.compositesb.2026.113607
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