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A New Approach for Designing Biodegradable Bone Tissue Augmentation Devices by Using Degradation Topology Optimization

机译:一种使用劣化拓扑优化设计可生物降解的骨组织增强装置的新方法

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The current study proposed a topology optimization method accounting for base material degradation and create a degradable device that retains sufficient stiffness through the degradation process to provide load bearings for tissue regeneration in orthopaedic applications. Degradable materials are less stiff than permanent materials and suffer further stiffness reduction through time when considering those as substitutes to replace permanent materials for many reconstruction applications. Merely replacing the permanent material with a degradable material in the same design may lead to early device failure. Since many degradable materials lose material through bulk erosion without shape change, the proposed optimization method creates a density distribution map for selected time points during degradation. These different density distributions are then linearly superposed using both time and degraded base stiffness weighting factors. In this paper, the method is applied to design a degradable spine interbody fusion cage device from poly(propylene fumarate)/beta-tricalcium phosphate (PPF/β-TCP). The weighted optimization study successfully produced designs that maintained device stiffness better than either non-weighted or conventional designs. Any bulk degrading material can be designed using this process for any skeletal reconstruction application.
机译:目前的研究提出了一种拓扑优化方法,用于基础材料的劣化,采用可降解装置,通过降解过程保持足够的刚度,以提供用于在整形外科应用中的组织再生的负载轴承。可降解的材料比永久材料较小,并且在将那些替代替代品中取代许多重建应用的替代材料时,通过时间越来越耐刚度降低。仅在同一设计中用可降解材料更换永久性材料可能导致早期装置失败。由于许多可降解的材料通过散装侵蚀而丢失材料而没有形状变化,所以所提出的优化方法在降解期间创建用于所选时间点的密度分布图。然后使用时间和降级的基刚度加权因子线性地叠加这些不同的密度分布。本文施加该方法以设计来自聚(丙烯富马酸乙酯)/β-β-三磷酸钙(PPF /β-TCP)的可降解脊柱椎体椎体融合笼装置。加权优化研究成功地制造了比未加权或传统设计更好地维持器件刚度的设计。可以使用该过程设计任何散装劣化材料,用于任何骨骼重建应用。

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