Processing of tocopherol and FA systems using a nonporous denser polymeric membrane

被引:0
|
作者
机构
[1] Nagesha, G.K.
[2] Subramanian, R.
[3] Udaya Sankar, K.
来源
Subramanian, R. (subbu@cscftri.ren.nic.in) | 1600年 / American Oil Chemists' Society卷 / 80期
关键词
Diffusion - Hydrophobicity - Oleic acid - Osmosis - Polymeric membranes - Viscosity;
D O I
暂无
中图分类号
学科分类号
摘要
Tocopherols permeated preferentially over oleic acid in model systems and over oleic acid and other oil constituents during processing of soy deodorizer distillate (DOD) when using nonporous denser polymeric membranes (i.e., denser than reverse osmosis membranes). This observation was unexpected, since the separation in a denser membrane is generally based on a solution-diffusion mechanism. That tocopherols are less polar than oleic acid appears to have facilitated the preferential permeation of tocopherols through the hydrophobic membrane. Selectivity of the membrane for tocopherols improved with esterified soy DOD. The presence of FAME decreased the viscosity of the feed and thereby increased convective flow, which in turn improved permeate flux. FAME appeared to have exerted positive coupling effects with tocopherols, having better selectivity in spite of the greater solubility of FAME in the membrane material. Membrane selectivity for tocopherols improved upon dilution of the feed material with hexane, perhaps owing to greater solubility of tocopherols in hexane (nonpolar) than other feed constituents.
引用
收藏
相关论文
共 50 条
  • [31] Processing of vegetable oils using polymeric composite membranes
    Subramanian, R
    Nakajima, M
    Kawakatsu, T
    JOURNAL OF FOOD ENGINEERING, 1998, 38 (01) : 41 - 56
  • [32] Polymeric membrane studied using slow positron beam
    Hung, Wei-Song
    Lo, Chia-Hao
    Cheng, Mei-Ling
    Chen, Hongmin
    Liu, Guang
    Chakka, Lakshmi
    Nanda, D.
    Tung, Kuo-Lun
    Huang, Shu-Hsien
    Lee, Kueir-Rarn
    Lai, Juin-Yih
    Sun, Yi-Ming
    Yu, Chang-Cheng
    Zhang, Renwu
    Jean, Y. C.
    APPLIED SURFACE SCIENCE, 2008, 255 (01) : 201 - 204
  • [33] Enantioseparation using apoenzymes immobilized in a porous polymeric membrane
    Brinda B. Lakshmi
    Charles R. Martin
    Nature, 1997, 388 : 758 - 760
  • [34] Polymeric membranes for desalination using membrane distillation: A review
    Ravi, Jeganes
    Othman, Mohd Hafiz Dzarfan
    Matsuura, Takeshi
    Bilad, Muhammad Ro'il
    El-badawy, T. H.
    Aziz, Farhana
    Ismail, A. F.
    Rahman, Mukhlis A.
    Jaafar, Juhana
    DESALINATION, 2020, 490
  • [35] Enantioseparation using apoenzymes immobilized in a porous polymeric membrane
    Lakshmi, BB
    Martin, CR
    NATURE, 1997, 388 (6644) : 758 - 760
  • [36] Polymeric Lithium Battery using Membrane Electrode Assembly
    Barcaro, Edoardo
    Marangon, Vittorio
    Bresser, Dominic
    Hassoun, Jusef
    BATTERIES & SUPERCAPS, 2024,
  • [37] Transdermal therapeutic system of narcotic analgesics using nonporous membrane (I): Effect of the ethanol permeability on vinylacetate content of EVA membrane
    Kwon, H
    Khang, G
    Song, HY
    Lee, HB
    POLYMER-KOREA, 1999, 23 (03) : 421 - 426
  • [38] Micro- and nano-layered processing of new polymeric systems
    Li, Zhenpeng
    Olah, Andrew
    Baer, Eric
    PROGRESS IN POLYMER SCIENCE, 2020, 102 (102)
  • [39] MOLECULAR DESIGN OF POLYMERIC SYSTEMS FOR OXYGEN PERMSELECTIVE MEMBRANE MATERIALS.
    Kawakami, Yuhsuke
    Yamashita, Yuya
    Memoirs of the Faculty of Engineering, Nagoya University, 1987, 39 (01): : 62 - 91
  • [40] A comparison between ceramic and polymeric membrane systems for casein concentrate manufacture
    Karasu, Kensuke
    Glennon, Nicole
    Lawrence, Nicole D.
    Stevens, Geoffrey W.
    O'Connor, Andrea J.
    Barber, Andrew R.
    Yoshikawa, Shiro
    Kentish, Sandra E.
    INTERNATIONAL JOURNAL OF DAIRY TECHNOLOGY, 2010, 63 (02) : 284 - 289