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Analysis to effective elastic modulus and porosity for artificial bone scaffold with hydroxyapatite microspheres

机译:用羟基磷灰石微球的人工骨支架有效弹性模量和孔隙度分析

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The effective elastic modulus of hydroxyaptite (HA) microspheres composite scaffold is determined by the HA microspheres' elastic modulus, accumulation topology model and the porosity. Experiments showed that different accumulation pattern and porosity has different modulus for bone scaffold. Furthermore, porosity and accumulation pattern are affected directly by the adhesive thickness. Here, we elucidate the effect of the scaffold parameters on bone sitffness and porostiy by means of a mathmatically based approach. Based on ANSYS simulation platform, the effective elastic modulus of HA microspheres scaffold was demonstrated. And the effective elastic modulus of artificial bone scaffold with different adhesive thickness was calculated by using APDL. Use the void fraction to illustrate the porosity of HA microspheres scaffold, which is an important consideration when attempting to evaluate the potential volume of water and hydrocarbons it may contain. By analysis of the optimization results, the effective elastic modulus reaches the maximum when the adhesive layer thickness is 0.05 mm, while the corresponding porosity is 0.5231.
机译:羟基戊酸盐(HA)微球复合支架的有效弹性模量由HA微球的弹性模量,积聚拓扑模型和孔隙率决定。实验表明,不同的累积模式和孔隙率具有不同的骨支架模量。此外,孔隙率和累积模式直接受粘合剂厚度的影响。在这里,我们通过基于数学方式的方法阐明支架参数对骨骼偶数和多硬化的影响。基于ANSYS仿真平台,证明了HA微球支架的有效弹性模量。通过使用APD1计算具有不同粘合剂厚度的人造骨支架的有效弹性模量。使用空隙级分来说明HA微球支架的孔隙率,这是试图评估它可能含有的水和烃的潜在体积时的重要考虑因素。通过分析优化结果,当粘合剂层厚度为0.05mm时,有效弹性模量达到最大值,而相应的孔隙度为0.5231。

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