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首页> 外文期刊>Polymers >Prediction of Thermal Exposure and Mechanical Behavior of Epoxy Resin Using Artificial Neural Networks and Fourier Transform Infrared Spectroscopy
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Prediction of Thermal Exposure and Mechanical Behavior of Epoxy Resin Using Artificial Neural Networks and Fourier Transform Infrared Spectroscopy

机译:使用人工神经网络和傅里叶变换红外光谱预测环氧树脂热暴露和力学行为

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Thermal degradation detection of cured epoxy resins and composites is currently limited to severe thermal damage in practice. Evaluating the change in mechanical properties after a short-time thermal exposure, as well as estimating the history of thermally degraded polymers, has remained a challenge until now. An approach to accurately predict the mechanical properties, as well as the thermal exposure time and temperature of epoxy resin, using Fourier-transform infrared spectroscopy (FTIR)-spectroscopy, data processing, and artificial neural networks, is presented here. Therefore, an epoxy resin has been fully cured and exposed to elevated temperatures for different time periods. A FTIR-spectrometer was used to measure molecular changes, using mid-IR (MIR)-FTIR for film samples and near-IR (NIR)-FTIR for bulk samples. A quantitative analysis of the thermally degraded film samples shows oxidation, chain-scission, and dehydration in the FTIR spectra in the MIR-range. Using NIR spectroscopy for the bulk samples, only minor changes in the FTIR spectra could be detected. However, using data processing, molecular information was extracted from the NIR range and a degradation model, using an artificial neural network, has been trained. Even though the changes due to thermal exposure were small, the presented model is capable of accurately predicting the time, temperature, and residual strength of the polymer.
机译:固化环氧树脂和复合材料的热降解检测目前在实践中限于严重的热损坏。在短时间热暴露之后评估机械性能的变化,以及估计热降解聚合物的历史,直到现在仍然是挑战。这里介绍了使用傅里叶变换红外光谱(FTIR) - 分号,数据处理和人工神经网络的热曝光性能的方法以及环氧树脂的热暴露时间和温度。因此,对于不同的时间段,环氧树脂已完全固化并暴露于升高的温度。使用FTIR光谱仪用于使用Mid-Ir(miR)-ftir用于薄膜样品和近红外(nir)-ftir的分子变化来测量分子变化。热降解薄膜样品的定量分析显示了MIR范围内的FTIR光谱中的氧化,链裂化和脱水。使用NIR光谱对散装样本,可以检测到FTIR光谱的小变化。然而,使用数据处理,从NIR范围内提取分子信息,并且使用人工神经网络的劣化模型已经过培训。尽管由于热曝光引起的变化很小,所示的模型能够精确地预测聚合物的时间,温度和残余强度。

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