首页> 外文期刊>Chemical engineering journal >Liquid-liquid extraction system with microstructured coiled flow inverter and other capillary setups for single-stage extraction applications
【24h】

Liquid-liquid extraction system with microstructured coiled flow inverter and other capillary setups for single-stage extraction applications

机译:液-液萃取系统,具有微结构线圈式流量逆变器和其他用于单级萃取应用的毛细管装置

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

Process intensification via miniaturization has become an attractive research field for industry and R&D especially for the production of fine chemicals and pharmaceuticals due to enhanced mass and heat transport. Fabrication of helically coiled tubular devices (HCTDs) in micro-scale can further enhance the mass and heat transfer due to the formation of secondary flow profile at laminar flow. Liquid-liquid (L-L) mass transfer performance of different microstructured HCTDs were investigated for slug flow patterns. A complete microextraction system was constructed and characterized including a T-junction (T-mixer) for slug flow generation, HCTDs as residence time units (RTUs), and a continuously working in-line phase splitter for an instantaneous phase separation. RTUs were fabricated by using fluorinated ethylene propylene (PEP) tubes (ID = 1 mm). EFCE test system, namely, n-butyl acetate/acetone/water system was chosen as an extraction system for the mass transfer characterization. The total volumetric flow rate and the volumetric flow ratio of aqueous to organic phase were varied in the range of 1-8 mL min(-1) and 0.5-2.0, respectively. Effects of residence time, flow ratio, and the generation of secondary flow profile, i.e. Dean vortices on L-L mass transfer were investigated and results were compared with straight capillaries. Results revealed that a certain type of HCTD, i.e. coiled flow inverter (CFI) offers higher extraction efficiencies up to 20% in comparison to straight capillaries at constant residence times. Additionally, it was found that for slug flow patterns, Dean vortices provide enhanced L-L mass transfer compared to Taylor vortices that occur in straight capillaries. A complete, continuously operated microextraction system was developed for single-stage applications, where very small liquid hold-ups and longer residence times are required due to slower mass transfer rates. (C) 2015 Elsevier B.V. All rights reserved.
机译:由于增强的质量和热传递,通过小型化进行的过程强化已成为工业和研发领域的一个有吸引力的研究领域,特别是在精细化学品和药物生产方面。由于在层流处形成二次流动轮廓,因此在微观尺度上制造螺旋形盘绕的管状装置(HCTD)可以进一步提高质量和传热。研究了不同微结构化HCTD的液-液(L-L)传质性能,研究了团状流型。构造并表征了完整的微萃取系统,包括一个用于产生团状流的T型结(T型混合器),作为停留时间单位(RTU)的HCTD和一个用于瞬时相分离的连续工作的在线分相器。 RTU是使用氟化乙烯丙烯(PEP)管(ID = 1 mm)制造的。选择EFCE测试系统,即乙酸正丁酯/丙酮/水系统作为传质表征的萃取系统。水相与有机相的总体积流量和体积流量比分别在1-8 mL min(-1)和0.5-2.0范围内变化。研究了停留时间,流量比和二次流动曲线(即迪安涡流)对L-L传质的影响,并将结果与​​直毛细管进行了比较。结果表明,与恒定停留时间下的直毛细管相比,某种类型的HCTD(即​​旋流逆变器(CFI))具有更高的提取效率,最高可达20%。另外,发现对于块状流型,与直接毛细管中发生的泰勒涡流相比,迪安涡流提供增强的L-L传质。针对单阶段应用开发了一套完整的,连续运行的微萃取系统,由于传质速度较慢,因此需要极小的液体滞留量和更长的停留时间。 (C)2015 Elsevier B.V.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