高压和高温下离子液体的流变特性

Amin Atashnezhad, Saman Akhtarmanesh, Mohammed F. Al Dushaishi
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引用次数: 0

摘要

离子液体(IL)是存在于环境温度或低于环境温度的液态盐,由离子对组成。在溶液制备、分散、凝胶形成、复合材料和聚合物熔体等各种应用中,离子液体是有毒、有害、易燃和易挥发溶剂的理想替代品。IL 具有独特而有趣的特性,包括出色的化学和热稳定性以及低蒸汽压。了解 IL 的流变特性对于优化 IL 性能至关重要。本文对 NHexylpyridinium tetrafluoroborate (HPyBF4) 和 NHexylpyridinium bromide (HPyBr) 这两种离子液体在不同剪切速率、温度和压力下的流变特性进行了比较分析。流变学测量是在不同的受控压力和温度条件下进行的。实验调查的压力范围为 689-12,411 kPa [100-1800 psi],温度范围为室温至 522 开尔文 (K) [480°F]。主要目的是探索和比较 HPyBF4 和 HPyBr 在高压和高温条件下的流动行为和粘弹特性。实验数据表明,HPyBF4 和 HPyBr 具有剪切稀化行为,与温度影响相比,压力对流变学的影响并不明显。在相同的测试条件下,HPyBr 的剪切应力和粘度均高于 HPyBF4。这项研究大大有助于人们更好地了解这些特定离子液体的流变行为及其在各种工业和科学应用中的适用性,尤其是在高压和高温环境中的适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rheology characterization of ionic liquids under high pressure and high temperature

Ionic liquids (ILs) are liquid salts that exist at or below ambient temperatures and are composed of ion pairs. They offer promising alternatives to toxic, hazardous, highly flammable, and volatile solvents in various applications such as solution preparation, dispersion, gel formation, composites, and polymer melts. ILs possess unique and interesting characteristics, including excellent chemical and thermal stability and low vapor pressures. Understanding the rheological properties of ILs is essential to optimizing IL performance. This paper presents a comparative analysis of the rheological properties of two ionic liquids, NHexylpyridinium tetrafluoroborate (HPyBF4) and NHexylpyridinium bromide (HPyBr), under different shear rates, temperatures, and pressures. Rheological measurements were performed under varying controlled pressure and temperature conditions. The experimental investigation covered a pressure range of 689–12,411 kPa [100–1800 psi] and a temperature range from room temperature up to 522 kelvin (K) [480°F]. The primary objective is to explore and compare the flow behavior and viscoelastic characteristics of HPyBF4 and HPyBr under high-pressure and high-temperature conditions. The experimental data showed that HPyBF4 and HPyBr exhibited shear-thinning behavior, and pressure had an insignificant effect on rheology compared to the temperature effect. Under the same testing conditions, HPyBr showed higher shear stress and viscosity than HPyBF4. This research significantly contributes to the improved understanding of the rheological behavior of these specific ionic liquids and their suitability for diverse industrial and scientific applications, particularly in high-pressure and high-temperature environments.

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