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
  • [21] FORMATION OF THE PRIMARY PRODUCT OF THE TOCOPHEROL - SINGLET OXYGEN INTERACTION IN MEMBRANE SYSTEMS
    IVANOV, II
    ERIN, AN
    KAUROV, IN
    FILIPPOV, VI
    DOKLADY AKADEMII NAUK SSSR, 1979, 245 (04): : 998 - 1000
  • [22] Polymeric Systems for Bio-Inspired Information Processing
    Erokhin, Victor
    PROCEEDINGS OF THE INTERNATIONAL CONFERENCE OF NUMERICAL ANALYSIS AND APPLIED MATHEMATICS 2014 (ICNAAM-2014), 2015, 1648
  • [23] PHASE-TRANSITIONS DURING PROCESSING OF POLYMERIC SYSTEMS
    PAPKOV, SP
    VYSOKOMOLEKULYARNYE SOEDINENIYA SERIYA A, 1989, 31 (04): : 675 - 683
  • [24] Applying the polymer parameters to advanced polymeric membrane systems
    McGrath, J. E.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2007, 234
  • [25] Use of nonporous polymeric flat-sheet gas-separation membranes in a membrane-liquid contactor: Experimental studies
    Bessarabov, DG
    Jacobs, EP
    Sanderson, RD
    Beckman, IN
    JOURNAL OF MEMBRANE SCIENCE, 1996, 113 (02) : 275 - 284
  • [26] Studies of Humic Acid Removal from Aqueous Systems by Using Polymeric Membrane Ultrafiltration Process
    Tataru, Laureniu
    Nedeff, Valentin
    Barsan, Narcis
    Mosnegutu, Emilian
    Lehadus, Mirela Panainte
    Sandu, Ion
    Chitimus, Dana
    MATERIALE PLASTICE, 2018, 55 (04) : 680 - 685
  • [27] Evaluation of phosphoglycolipid elimination from rice bran oil by a nonporous membrane using NMR spectroscopy
    Manjula, Sarode
    Divakar, Soundar
    Subramanian, Rangaswamy
    EUROPEAN JOURNAL OF LIPID SCIENCE AND TECHNOLOGY, 2009, 111 (10) : 1020 - 1026
  • [28] Miniaturized systems for evaluating enzyme activity in polymeric membrane bioreactors
    Islam, Mohammad S.
    Harnett, Cindy K.
    ENGINEERING IN LIFE SCIENCES, 2019, 19 (11): : 749 - 758
  • [29] Water activities of polymeric membrane/water systems in fuel cells
    Seong, Ji Yun
    Bae, Young Chan
    Sun, Yang Kook
    JOURNAL OF POWER SOURCES, 2006, 157 (02) : 733 - 738
  • [30] Processing of honey using polymeric microfiltration and ultrafiltration membranes
    Barhate, RS
    Subramanian, R
    Nandini, KE
    Hebber, HU
    JOURNAL OF FOOD ENGINEERING, 2003, 60 (01) : 49 - 54