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Surface characterisation of PLLA polymer in HAp/PLLA biocomposite material by means of nanoindentation and artificial neural networks

机译:利用纳米压痕和人工神经网络表征HAp / PLLA生物复合材料中PLLA聚合物的表面特性

摘要

In this paper, the mechanical properties of polymer matrix phase (modulus of elasticity, yield stress and work hardening rate) have been determined using combined methods such as nanoindentation, finite element modelling and artificial neural networks. The approach of neural modelling has been employed for the functional approximation of the nanoindentation load-displacement curves. The data obtained from finite element analyses have been used for the artificial neural networks training and validating. The neural model of polymer matrix phase of poly-l-lactide (PLLA) polymer in hydroxyapatite (HAp)/PLLA mechanical behaviour has been developed and tested versus unknown data related to the load-displacement curves that were not used during the neural network training. Based on this neural model, the nanoindentation matrix phase properties of PLLA polymer in HAp/PLLA composite have been predicted.
机译:在本文中,已使用纳米压痕,有限元建模和人工神经网络等组合方法确定了聚合物基体相的力学性能(弹性模量,屈服应力和加工硬化率)。神经建模的方法已被用于纳米压痕载荷-位移曲线的函数逼近。从有限元分析获得的数据已用于人工神经网络的训练和验证。在羟基磷灰石(HAp)/ PLLA力学行为中,聚丙交酯(PLLA)聚合物的聚合物基质相的神经模型已经开发和测试,并且与与神经网络训练中未使用的载荷-位移曲线有关的未知数据进行了比较。基于该神经模型,预测了HAp / PLLA复合材料中PLLA聚合物的纳米压痕基质相特性。

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