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Moisture sorption in polyamide 6.6: Experimental investigation and comparison to four physical-based models

机译:聚酰胺6.6中的水分吸附:实验研究和与四种物理模型的比较

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摘要

Water sorption in polyamide 6.6 has been characterized for a wide range of temperature (25 degrees C to 80 degrees C) and various water activities using a Dynamic Vapor Sorption testing machine. Complex sorption mechanisms govern the water uptake in the material. The competition between two main temperature dependant mechanisms has been observed: a Henry's sorption mechanism that mainly governs the sorption curve at low water activities, and a second mechanism at high water activities that could be related to the formation of water clusters. It is observed that the temperature dependency can mainly be attributed to the Henry's contribution. Four physically based models are then used and identified thanks to the extended experimental database. It is shown that a simple Flory-Huggins model is not able to capture the experimental observations at very high water activities for all the temperatures tested. The ENSIC model is a better choice, but good prediction for very high water activity cannot be obtained. Both modified Park and GAB models can accurately predict the volume fraction of water for the whole ranges of water activity and temperature, although the modified Park model should be preferred considering the number of parameters and the mathematical simplicity. (C) 2015 Elsevier Ltd. All rights reserved.
机译:使用动态蒸汽吸附测试机,已在广泛的温度范围(25摄氏度至80摄氏度)和各种水分活度中对聚酰胺6.6中的吸水特性进行了表征。复杂的吸附机制控制材料中的水分吸收。已经观察到两种主要的温度依赖性机制之间的竞争:一种主要控制低水分活度时的吸附曲线的亨利吸附机制,另一种可能与水团簇形成有关的第二种机制。观察到温度依赖性主要可以归因于亨利的贡献。由于扩展了实验数据库,因此可以使用和识别四个基于物理的模型。结果表明,一个简单的Flory-Huggins模型无法在所有测试温度下在很高的水分活度下捕获实验观察结果。 ENSIC模型是一个更好的选择,但无法获得非常高的水分活度的良好预测。修改后的Park和GAB模型都可以准确预测整个水活度和温度范围内的水体积分数,尽管考虑到参数数量和数学上的简单性,应该首选修改后的Park模型。 (C)2015 Elsevier Ltd.保留所有权利。

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