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Alkali Attack on Anion Exchange Membranes with PVC Backing and Binder: II Prediction of Electrical and Mechanical Performances from Simple Optical Analyses

机译:碱对带有PVC衬里和粘合剂的阴离子交换膜的攻击:通过简单的光学分析II预测电气和机械性能

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摘要

Performance of anion exchange membranes (AEMs), including polyvinyl chloride (PVC) as backing and binder, decreases during a repetitive cleaning-in-place (CIP) treatment using alkali. In this study, we have systematically performed two optical analyses, relative total visible (VIS) reflectance and handheld X-ray fluorescence (XRF), for alkali-attacked commercially available AEM (Neosepta® AMX, Tokyo, Japan) with different NaOH immersion conditions (0–1.0 M NaOH at 40–80 °C for 0–168 h). The VIS reflectance and XRF data were then compared with the electrical and mechanical performances (i.e., membrane resistance, proton rejection, amount of fixed-charge sites, and Young’s modulus) of the alkali-attacked AMXs. The result indicated that there are clear linear relationships between their performances and both VIS reflectance and XRF data especially at 40 °C, indicating both optical analyses have a good possibility as a quick diagnosis-in-place (DIP) to predict the resulting performance of the alkali-attacked AMXs. In addition, we also found a clear linear relationship between VIS reflectance and XRF data, so that polyene formations through dehydrochlorination of PVC during alkali attack is one of dominant mechanisms for the performance reduction of the alkali-attacked AMX at 40 °C. These results are promising to be useful for the analysis of ion exchange membranes (IEMs) used in real commercial processes on-site in future.
机译:阴离子交换膜(AEM)的性能(包括聚氯乙烯(PVC)作为背衬和粘合剂)在使用碱进行的重复就地清洗(CIP)处理期间会降低。在这项研究中,我们系统地对碱液侵蚀的市售AEM(Neosepta ® AMX,东京,东京,日本)使用不同的NaOH浸入条件(40–80°C下0–1.0 M NaOH 0–168小时)。然后将VIS反射率和XRF数据与遭受碱攻击的AMX的电气和机械性能(即膜电阻,质子排斥,固定电荷位点的数量和杨氏模量)进行比较。结果表明,它们的性能与VIS反射率和XRF数据之间存在明确的线性关系,尤其是在40°C时,表明两种光学分析都有可能作为快速就地诊断(DIP)来预测所得的性能。碱攻击的AMX。此外,我们还发现VIS反射率和XRF数据之间存在明显的线性关系,因此在碱侵蚀过程中通过PVC的脱氯化氢作用形成多烯是降低40°C碱侵蚀AMX性能的主要机理之一。这些结果有望用于将来现场实际商业过程中使用的离子交换膜(IEM)的分析。

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