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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Evaluation of damage progression and mechanical behavior under compression of bone cements containing core-shell nanoparticles by using acoustic emission technique
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Evaluation of damage progression and mechanical behavior under compression of bone cements containing core-shell nanoparticles by using acoustic emission technique

机译:声发射技术评估含核壳纳米粒子的骨水泥受压下的损伤进展和力学行为

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In this work, the effect of the incorporation of core-shell particles on the fracture mechanisms of the acrylic bone cements by using acoustic emission (AE) technique during the quasi-static compression mechanical test was investigated. Core-shell particles were composed of a poly(butyl acrylate) (PBA) rubbery core and a methyl methacrylate/styrene copolymer (P(MMA-co-St)) outer glassy shell. Nanoparticles were prepared with different core-shell ratio (20/80, 30/70, 40/60 and 50/50) and were incorporated into the solid phase of bone cement at several percentages (5, 10 and 15 wt%). It was observed that the particles exhibited a spherical morphology averaging ca. 125 nm in diameter, and the dynamic mechanical analysis (DMA) thermograms revealed the desired structuring pattern of phases associated with core-shell structures. A fracture mechanism was proposed taking into account the detected AE signals and the scanning electron microscopy (SEM) micrographs. In this regard, core-shell nanoparticles can act as both additional nucleation sites for microcracks (and crazes) and to hinder the microcrack propagation acting as a barrier to its growth; this behavior was presented by all formulations. Cement samples containing 15 wt% of core-shell nanoparticles, either 40/60 or 50/50, were fractured at 40% deformation. This fact seems related to the coalescence of microcracks after they surround the agglomerates of core-shell nanoparticles to continue growing up. This work also demonstrated the potential of the AE technique to be used as an accurate and reliable detection tool for quasi-static compression test in acrylic bone cements. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在这项工作中,研究了在准静态压缩力学测试中通过声发射(AE)技术掺入核壳颗粒对丙烯酸骨水泥的断裂机理的影响。核-壳颗粒由聚丙烯酸丁酯(PBA)橡胶状核和甲基丙烯酸甲酯/苯乙烯共聚物(P(MMA-co-St))外部玻璃状壳组成。制备具有不同核-壳比(20 / 80、30 / 70、40 / 60和50/50)的纳米颗粒,并将其以几个百分比(5、10和15 wt%)掺入骨水泥的固相中。观察到,颗粒表现出平均约Ca的球形形态。直径为125 nm,动态力学分析(DMA)热分析图显示了与核-壳结构相关的相的所需结构模式。考虑到检测到的AE信号和扫描电子显微镜(SEM)显微照片,提出了一种断裂机制。在这方面,核壳纳米粒子既可以充当微裂纹(和裂纹)的附加成核位点,又可以阻止微裂纹的传播,从而阻碍其生长。所有配方都表现出这种行为。包含15 wt%的核壳纳米颗粒(40/60或50/50)的水泥样品在40%变形时破裂。这个事实似乎与微裂纹围绕核-壳纳米粒子的团聚体继续生长后的聚结有关。这项工作还证明了声发射技术的潜力,可以用作丙烯酸骨水泥准静态压缩测试的准确可靠的检测工具。 (C)2015 Elsevier Ltd.保留所有权利。

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