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Analysis of deformation coupled surface remodeling in porous biomaterials

机译:多孔生物材料的变形耦合表面重塑分析

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Surface remodeling of biological tissues through tissue growth or dissolution is deemed critical to their proper functioning, and is influenced by the deformation of the tissues during physiological activities. The present work attempts to develop a constitutive framework for deformation modulated surface remodeling of biological tissues. The framework is developed assuming finite deformation of the tissue, and the effect of deformation on the driving force for surface remodeling is determined from thermodynamic principles. The microscopic trends are upscaled to yield the remodeling-induced change in a macroscopic porous tissue. By way of application, the effect of deformation on the remodeling kinetics is determined for an incompressible elastic tissue. Depending on the ratio of the specific elastic stiffness and the specific Gibbs energy variation induced by the cell, the effect of deformation on the remodeling kinetics can be significant. It is found that both tensile and compressive deformation aid tissue dissolution (and dissuade growth). However, the magnitude of the effect is found to be different under tensile and compressive loadings, and critically depends on the reference frame used for the strain measurements. For Lagrangian strain measures (e.g., stretch, engineering strain), the increase in the dissolution kinetics per unit strain is higher under compressive loadings. On the other hand, for Eulerian strain measures (e.g., logarithmic or true strain), the effect of tensile loading on the dissolution kinetics is higher. This reinforces the need for proper reference frame definition for experimental strain measurements.
机译:通过组织生长或溶解对生物组织进行表面重塑被认为对它们的正常功能至关重要,并且在生理活动过程中受到组织变形的影响。本工作试图开发用于生物组织的变形调制表面重塑的本构框架。在假设组织有限变形的前提下开发框架,并根据热力学原理确定变形对表面重塑的驱动力的影响。微观趋势被扩大以产生宏观多孔组织中的重塑诱导的变化。通过应用,确定了不可压缩弹性组织的变形对重塑动力学的影响。取决于由细胞引起的比弹性刚度和比吉布斯能量变化的比,变形对重塑动力学的影响可能是显着的。发现拉伸变形和压缩变形均有助于组织溶解(并阻止生长)。但是,发现在拉伸和压缩载荷下,作用的大小是不同的,并且在很大程度上取决于用于应变测量的参考系。对于拉格朗日应变测量(例如拉伸,工程应变),在压缩载荷下,每单位应变的溶出动力学增加更高。另一方面,对于欧拉应变测量(例如对数应变或真应变),拉伸载荷对溶出动力学的影响更高。这就增加了对用于实验应变测量的适当参考系定义的需求。

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  • 来源
    《Journal of Materials Science 》 |2007年第21期| 8873-8884| 共12页
  • 作者单位

    Schlumberger Doll Research Cambridge MA 02141 USA;

    Massachusetts Institute of Technology 77 Massachusetts Ave. Cambridge MA 02139 USA;

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  • 正文语种 eng
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