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Effect of fiber architecture on flexural characteristics and fracture of fiber-reinforced dental composites

机译:纤维结构对纤维增强牙科复合材料弯曲特性和断裂的影响

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Objective. The aim of this study was to compare and elucidate the differences in damage mechanisms and response of fiber-reinforced dental resin composites based on three different brands under flexural loading. The types of reinforcement consisted of a unidirectional E-glass prepreg (Splint-It from Jeneric/Petron Inc.), an ultrahigh molecular weight polyethylene fiber based biaxial braid (Connect, Kerr) and an ultrahigh molecular weight polyethylene fiber based leno-weave (Ribbond). Methods. Three different commercially available fiber reinforcing systems were used to fabricate rectangular bars, with the fiber reinforcement close to the tensile face, which were tested in flexure with an emphasis on studying damage mechanisms and response. Eight specimens (n = 8) of each type were tested. Overall energy capacity as well as flexural strength and modulus were determined and results compared in light of the different abilities of the architectures used. Results. Under flexural loading unreinforced and unidirectional prepreg reinforced dental composites failed in a brittle fashion, whereas the braid and leno-weave reinforced materials underwent significant deformation without rupture. The braid reinforced specimens showed the highest peak load. The addition of the unidirectional to the matrix resulted in an average strain of 0.06 mm/mm which is 50% greater than the capacity of the unreinforced matrix, whereas the addition of the braid and leno-weave resulted in increases of 119 and 126%, respectively, emphasizing the higher capacity of both the UHM polyethylene fibers and the architectures to hold together without rupture under flexural loading. The addition of the fiber reinforcement substantially increases the level of strain energy in the specimens with the maximum being attained in the braid reinforced specimens with a 433% increase in energy absorption capability above the unreinforced case. The minimum scatter and highest consistency in response is seen in the leno-weave reinforced specimens due to the details of the architecture which restrict fabric shearing and movement during placement. Significance. It is crucial that the appropriate selection of fiber architectures be made not just from a perspective of highest strength, but overall damage tolerance and energy absorption. Differences in weaves and architectures can result in substantially different performance and appropriate selection can mitigate premature and catastrophic failure. The study provides details of materials level response characteristics which are useful in selection of the fiber reinforcement based on specifics of application.
机译:目的。这项研究的目的是比较和阐明基于三种不同品牌的纤维增强牙科树脂复合材料在弯曲载荷下的损伤机理和响应的差异。增强类型包括单向电子玻璃预浸料(来自Jeneric / Petron Inc.的Splint-It),基于超高分子量聚乙烯纤维的双轴编织物(Connect,Kerr)和基于超高分子量聚乙烯纤维的纱织法(丝带状)。方法。使用三种不同的可商购的纤维增强系统来制造矩形钢筋,使纤维增强件靠近拉伸面,并对其进行了弯曲测试,重点是研究损伤机理和响应。测试了每种类型的八个样本(n = 8)。确定了总能量容量以及抗弯强度和模量,并根据所用架构的不同能力比较了结果。结果。在弯曲载荷下,未增强的单向预浸料和增强的牙科复合材料以脆性方式失效,而编织物和纱罗编织的增强材料经历了明显的变形而没有破裂。编织增强样品显示出最高峰值载荷。向基体中添加单向会产生0.06 mm / mm的平均应变,比未增强的基体的容量大50%,而向编织层和纱罗编织的添加会导致119和126%的增长,分别强调了UHM聚乙烯纤维和该结构在弯曲载荷下能保持在一起而不会破裂的更高能力。纤维增强材料的添加大大增加了样品中的应变能水平,在编织增强样品中达到了最大值,与未增强的情况相比,能量吸收能力提高了433%。由于结构的细节限制了织物在放置期间的剪切和移动,因此在纱罗织物增强的样品中可以看到最小的散射和最高的响应一致性。意义。至关重要的是,不仅要从最高强度的角度进行纤维结构的适当选择,而且要从整体损害容忍度和能量吸收角度进行选择。编织和架构上的差异可能导致性能显着不同,适当的选择可以减轻过早的灾难性故障。该研究提供了材料水平响应特性的详细信息,这些特性可根据应用的具体情况选择纤维增强材料。

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