首页> 外文期刊>International Journal of Greenhouse Gas Control >Thermophysical properties and CO2 absorption studies of the amine functionalized [Amim][Tf2N] and the non-functionalized counterpart [bmim][Tf2N] ionic liquids
【24h】

Thermophysical properties and CO2 absorption studies of the amine functionalized [Amim][Tf2N] and the non-functionalized counterpart [bmim][Tf2N] ionic liquids

机译:胺官能化[Amim] [Tf2N]和非官能化对应物[bmim] [Tf2N]离子液体的热物理性质和CO2吸收研究

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Large scale application of physical ionic liquids (ILs) for carbon dioxide (CO2) capture from flue gas is mainly hindered by the low CO2 absorption capacity at post-combustion conditions. To overcome this problem researchers appealed to the amine chemistry by arguing that including an amine moiety to conventional ILs (amine-functionalized ionic liquids) could greatly improve CO2 absorption capacity. The present work investigates the thermophysical properties of the functionalized imidazolium based ionic liquid with an added primary amine group into the cation structure [Amim](+)[Tf2N](-) and the non-functionalized counterpart ionic liquid [bmim](+)[Tf2N](-) and compares them to the conventional amine solutions used for absorption of CO2. The thermophysical properties (densities, viscosity and surface tension) of the ionic liquids measured over the temperatures between 293.15 K and 348.15 K at atmospheric pressure. It was observed that a rise in temperature caused a remarkable reduction in the ionic liquid viscosity by factors of 3.75 and 3.71 for [Amim][Tf2N] and [bmim][Tf2N] respectively whereas for a similar temperature change, the viscosity of the aqueous MEA and DEA solutions decreased only by factors of 2.10 and 2.15 respectively. The surface tension-fluidity relation of the tested ionic liquids investigated. The functionalized IL showed higher CO2 solubility compared to the non-functionalized counterpart IL. The results showed that CO2 absorption behavior of the [Amim][Tf2N] was influenced by the functionalized chain (primary amine group) appended to the IL cation and probably a typical chemical enhancement of the CO2 absorption took place when the functional IL was used as absorption solvent. On mass basis (g CO2/kg IL), The [Amim][Tf2N] showed 780% and 350% more CO2 absorption capacity than the non-functionalized counterpart IL at 1.1 bar and 8 bar respectively at 308.15 K. The isotherms of CO2-functionalized IL shows a trend which is typical for chemical absorption. At low pressure (P = 1.1 bar) the solubility increases sharply, while a steady increase in solubility is observed at higher pressure (from 1.1 to 8 bar) due to contribution of the physical mechanism. We observed a marginal increase in volumetric CO2 load into the [bmim][Tf2N] at higher pressures which is typical for physical absorption. At pressure equal to 6 bar, the CO2 loads for the functionalized ionic liquid at 308.15 K is comparable to CO2 loads from 20% DEA at 323 K. The results of the measured volumetric CO2 loads of the functionalized ionic liquid indicated that for representative operating conditions, (308.15 K and pressures up to 8 bar), the two studied ILs do not present a greater absorption capacity than the aqueous MEA solution. The ionic liquids were regenerated at vacuum (10 Pa) and at 378.15 K during at 16 h. The next absorption experiments were performed with the regenerated samples and a reduction in CO2 absorption capacity was not observed. (C) 2016 Elsevier Ltd. All rights reserved.
机译:物理离子液体(IL)大规模用于从烟道气中捕集二氧化碳(CO2)的主要原因是在燃烧后条件下低的CO2吸收能力。为了克服这个问题,研究人员呼吁胺化学,认为在常规ILs(胺官能化的离子液体)中包括一个胺部分可以大大提高CO2的吸收能力。本工作研究了在阳离子结构[Amim](+)[Tf2N](-)和非功能化对应离子液体[bmim](+)中添加伯胺基的功能化咪唑基离子液体的热物理性质。 [Tf2N](-)并将其与用于吸收CO2的常规胺溶液进行比较。在大气压下,在293.15 K和348.15 K之间的温度下测得的离子液体的热物理性质(密度,粘度和表面张力)。观察到,温度升高导致[Amim] [Tf2N]和[bmim] [Tf2N]的离子液体粘度分别降低了3.75和3.71倍,而在类似的温度变化下, MEA和DEA解决方案分别仅减少了2.10和2.15倍。研究了测试离子液体的表面张力-流动性关系。与未官能化的对应物IL相比,官能化的IL显示出更高的CO2溶解度。结果表明,[Amim] [Tf2N]的CO2吸收行为受到附加在IL阳离子上的官能化链(伯胺基)的影响,当使用功能性IL时,可能会发生典型的化学吸收CO2增强现象。吸收溶剂。以质量计(g CO2 / kg IL),在308.15 K时,[Amim] [Tf2N]分别比未官能化的对应IL在1.1 bar和8 bar时分别显示出780%和350%的CO2吸收能力。 -官能化的IL显示出典型的化学吸收趋势。在低压(P = 1.1 bar)下,溶解度急剧增加,而在较高压力下(从1.1至8 bar),由于物理机理的影响,溶解度稳定增加。我们观察到在较高压力下进入[bmim] [Tf2N]的体积二氧化碳负荷略有增加,这是物理吸收的典型现象。在等于6 bar的压力下,功能化离子液体在308.15 K时的CO2负载与323 K下20%DEA的CO2负载相当。功能化离子液体的体积CO2负载测量结果表明,在代表性的工作条件下,(308.15 K和最高8 bar的压力),这两个被研究的离子液体不比MEA水溶液具有更大的吸收能力。离子液体在真空(10 Pa)和378.15 K在16小时内再生。接下来的吸收实验是用再生的样品进行的,未观察到CO 2吸收能力的降低。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号