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New method for estimating the shift factors in Time Temperature Superposition (TTS) models

机译:估计时间温度叠加(TTS)模型中换档因子的新方法

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Prediction of polymer properties at short and long observation times is usually performed through time temperature superposition (TTS) models, which make use of some calculated shift factors. Although TTS principle has been used for many decades, no firm rules have been developed for obtaining the master curves. In the absence of reliable long-term data, it has been a common practice to try to minimize the discrepancy between the individual shifted curves. It was reported that a TTS method is more reliable as that discrepancy is minimized. In this work, a new method for obtaining the shift factors is presented. The optimal shift factors were estimated by minimizing the distance between the single curve derivatives respect to the derivative of the curve at the reference temperature. That shift factors were tested with some classical models. The data were analysed by statistical methods, making use of bootstrap resampling and spline estimation. The shift factors obtained from the proposed method allow for obtaining smooth master curves. The accuracy of the estimations was evaluated.
机译:通常通过时间温度叠加(TTS)模型进行短期和长观察时间的聚合物性质预测,这是使用一些计算出的换档因子。虽然TTS原则已经使用了数十年,但没有制定任何公司规则来获得主曲线。在没有可靠的长期数据的情况下,尝试最小化各个移位曲线之间的差异是一种常见的做法。据报道,由于这种差异最小化,因此TTS方法更可靠。在这项工作中,提出了一种用于获得换档因子的新方法。通过最小化单曲线衍生物对参考温度的曲线的衍生物之间的距离来估计最佳变换因子。使用一些经典模型测试了转变因子。通过统计方法进行分析数据,利用引导重采样和样条估计。从所提出的方法获得的换档因子允许获得平滑的主曲线。评估估计的准确性。

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