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Biodegradable poly-lactic acid based-composite reinforced unidirectionally with high-strength magnesium alloy wires

X. Li, C. L. Chu*, L. Liu, X. K. Liu, J. Bai*, C. Guo, F. Xue, P. H. Lin, Paul K. Chu

*Corresponding author for this work

    Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

    Abstract

    Biodegradable poly-lactic acid (PLA) - based composites reinforced unidirectionally with high-strength magnesium alloy wires (MAWs) are fabricated by a heat-compressing process and the mechanical properties and degradation behavior are studied experimentally and theoretically. The composites possess improved strengthening and toughening properties. The bending strength and impact strength of the composites with 40vol% MAWs are 190MPa and 150kJ/m2, respectively, although PLA has a low viscosity and an average molecular weight of 60,000g/mol. The mechanical properties of the composites can be further improved by internal structure modification and interface strengthening and a numerical model incorporating the equivalent section method (ESM) is proposed for the bending strength. Micro arc oxidization (MAO) of the MAWs is an effective interfacial strengthening method. The composites exhibit high strength retention during degradation and the PLA in the composite shows a smaller degradation rate than pure PLA. The novel biodegradable composites have large potential in bone fracture fixation under load-bearing conditions.
    Original languageEnglish
    Pages (from-to)135-144
    JournalBiomaterials
    Volume49
    Online published16 Feb 2015
    DOIs
    Publication statusPublished - May 2015

    Research Keywords

    • Biodegradable PLA-based composite
    • Degradation behaviors
    • Magnesium alloy wires
    • Mechanical properties
    • Strengthening and toughening

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