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Shaping the micromechanical behavior of multi-phase composites for bone tissue engineering.

机译:塑造用于骨组织工程的多相复合材料的微机械性能。

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摘要

Mechanical stiffness is a fundamental parameter in the rational design of composites for bone tissue engineering in that it affects both the mechanical stability and the osteo-regeneration process at the fracture site. A mathematical model is presented for predicting the effective Young's modulus (E) and shear modulus (G) of a multi-phase biocomposite as a function of the geometry, material properties and volume concentration of each individual phase. It is demonstrated that the shape of the reinforcing particles may dramatically affect the mechanical stiffness: E and G can be maximized by employing particles with large geometrical anisotropy, such as thin platelet-like or long fibrillar-like particles. For a porous poly(propylene fumarate) (60% porosity) scaffold reinforced with silicon particles (10% volume concentration) the Young's (shear) modulus could be increased by more than 10 times by just using thin platelet-like as opposed to classical spherical particles, achieving an effective modulus E approximately 8 GPa (G approximately 3.5 GPa). The mathematical model proposed provides results in good agreement with several experimental test cases and could help in identifying the proper formulation of bone scaffolds, reducing the development time and guiding the experimental testing.
机译:机械刚度是合理设计骨组织工程复合材料的基本参数,因为它会影响机械稳定性和骨折部位的骨再生过程。提出了数学模型,用于预测多相生物复合材料的有效杨氏模量(E)和剪切模量(G),其是各个相的几何形状,材料特性和体积浓度的函数。已证明增强颗粒的形状可能会极大地影响机械刚度:通过使用具有较大几何各向异性的颗粒(例如薄片状或长纤维状的颗粒),可以最大程度地提高E和G。对于用硅颗粒(体积浓度为10%)增强的多孔聚(富马酸丙二酯)(孔隙度为60%)支架,只需使用薄片状薄片(与经典球形薄片相反),杨氏(剪切)模量可以增加10倍以上颗粒的有效模量E约为8 GPa(G约为3.5 GPa)。所提出的数学模型提供的结果与几个实验测试案例非常吻合,并且可以帮助确定骨支架的正确配方,减少开发时间并指导实验测试。

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