首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Micro- and macromechanical characterization of the influence of surface-modification of poly(vinyl alcohol) fibers on the reinforcement of calcium phosphate cements
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Micro- and macromechanical characterization of the influence of surface-modification of poly(vinyl alcohol) fibers on the reinforcement of calcium phosphate cements

机译:聚(乙烯醇)纤维表面改性对磷酸钙水泥加固的影响的微观和大致力学表征

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Calcium phosphate cements (CPCs) are frequently used as synthetic bone substitute materials due to their favorable osteocompatibility and handling properties. However, CPCs alone are inherently brittle and exhibit low strength and toughness, which restricts their clinical applicability to non-load bearing sites. Mechanical reinforcement of CPCs using fibers has proven to be an effective strategy to toughen these cements by transferring stress from the matrix to the fibers through frictional sliding at the interface. Therefore, tailoring the fiber-matrix affinity is paramount in designing highly toughened CPCs. However, the mechanistic correlation between this interaction and the macromechanical properties of fiber-reinforced CPCs has hardly been investigated to date. The aim of this study was to tailor the fiber-matrix interface affinity by modifying the surface of poly(vinyl alcohol) (PVA) fibers and correlate their interfacial properties to macromechanical properties (i.e. fracture toughness, work-of-fracture and tensile strength) of CPCs. Results from single fiber pullout tests reveal that the surface modification of PVA fibers increased their hydrophilicity and improved their affinity to the CPC matrix. This observation was evidenced by an increase in the interfacial shear strength and a reduction in the critical fiber embedment length (i.e. maximum embedded length from which a fiber can be pulled out without rupture). This increased interface affinity facilitated energy dissipation during fracture of CPCs subjected to macro mechanical three-point flexure and tensile tests. The fracture toughness also significantly improved, even for CPCs reinforced with fibers of lengths greater than their critical fiber embedment length, suggesting that other crack-arresting mechanisms also play an important role in mechanically reinforcing CPCs. Overall, these basic insights will improve the understanding of the correlation between micro-and macromechanical characteristics of fiber-reinforced CPCs.
机译:磷酸钙骨水泥(CPC)由于其良好的骨相容性和处理性能,经常被用作合成骨替代材料。然而,CPC本身就很脆,强度和韧性都很低,这限制了它们在非承重部位的临床应用。使用纤维对CPC进行机械增强已被证明是通过界面摩擦滑动将应力从基体转移到纤维来增韧这些水泥的有效策略。因此,在设计高度增韧的CPC时,调整纤维基质亲和力至关重要。然而,迄今为止,这种相互作用与纤维增强CPC宏观力学性能之间的机械相关性几乎没有被研究过。本研究的目的是通过改性聚乙烯醇(PVA)纤维的表面来调整纤维-基体界面亲和力,并将其界面性能与CPC的宏观力学性能(即断裂韧性、断裂功和拉伸强度)关联起来。单纤维拔出试验结果表明,PVA纤维的表面改性提高了其亲水性,并改善了其与CPC基体的亲和力。界面剪切强度的增加和临界纤维嵌入长度的减少(即纤维可以从中拉出而不断裂的最大嵌入长度)证明了这一观察结果。这种界面亲和力的增加促进了CPC在宏观力学三点弯曲和拉伸试验中断裂时的能量耗散。断裂韧性也显著提高,即使是使用长度大于其临界纤维嵌入长度的纤维加固的CPC,这表明其他止裂机制也在机械加固CPC中发挥重要作用。总的来说,这些基本见解将提高对纤维增强CPC微观和宏观力学特性之间相关性的理解。

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