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FINITE ELEMENT ANALYSIS OF LASER FABRICATED MICROJOINT PERFORMACE IN CEREBROSPINAL FLUID

机译:脑脊液中激光制造微关节性能的有限元分析

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Assessment of neural biocompatibility requires that materials be tested with exposure in neural fluids. Laser bonded microjoint samples made from titanium foil and polyimide film (TiPI) were evaluated for mechanical performance before and after exposure in artificial cerebrospinal fluid (CSF) for two, four and twelve weeks at 37°C. These samples represent a critical feature i.e., the microjoint - a major weakness in the bioencapsulation system. The laser microbonds showed initial degradation up to four weeks which then stabilized afterwards and retained similar strength until twelve weeks. To understand this bond degradation mechanism better, a finite element modeling approach was adopted. From the finite element results, it was revealed that the bond degradation was not owing to the hygroscopic expansion of polyimide. Rather, relaxation of the process induced residual stresses may have resulted in weakening of the bond strength as observed from experimental measurements.
机译:神经生物相容性的评估要求用神经液中的暴露进行测试。在37℃下在人工脑脊液(CSF)中暴露之前和之后,评估由钛箔和聚酰亚胺膜(TIPI)制成的激光粘合的微快报样品进行机械性能,在37℃下进行两次,四个和12周。这些样品代表了一个关键特征,即,微快报 - 生物静态塑化系统中的主要弱点。激光微硼晶片显示出初始降解,最多四周,然后之后稳定并保留相似的强度直至12周。要了解这种债券退化机制更好,采用了有限元建模方法。从有限元结果中,揭示了粘合降解不是由于聚酰亚胺的吸湿性膨胀。相反,处理诱导的残余应力的松弛可能导致从实验测量中观察到的粘合强度的弱化。

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