Electrodialytic desalting of model concentrated NaCl brines as such or enriched with a non-electrolyte osmotic component

被引:34
作者
Fidaleo, Marcello [1 ]
Moresi, Mauro [1 ]
机构
[1] Univ Tuscia, Dept Food Sci & Technol, I-01100 Viterbo, Italy
关键词
Electrodialysis; Brine desalting; Membrane resistance; Modelling; Glucose; Osmotic pressure; Osmotic contribution; Transport numbers; REVERSE-OSMOSIS CONCENTRATION; AMINO-ACIDS; RECOVERY; DESALINATION; ION; WASTE; DEMINERALIZATION; WATER; SAUCE;
D O I
10.1016/j.memsci.2010.10.069
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The Nernst-Planck approach, previously used to model the electrodialytic recovery of uni- or di-valent electrolytes, was employed to comply with the desalination of concentrated brines with an initial NaCl concentration (c(BD0)) ranging from about 1.4 to 3.0 kmol m(-3) and to enucleate the contribution of osmosis and electro-osmosis. The experimental procedure formerly developed was simplified and thus shortened in order to determine just the engineering parameters essential to simulate the desalting process under study. This was further checked by performing a few validation tests in quite different operating conditions from those used in the training tests, that is (i) by changing the electric current (I) step-wisely to simulate the continuous-mode operation of a multistage ED unit, (ii) by reducing the initial salt content of the concentrate by a factor of about 10 and (iii) by spiking the model brine solution with a non-electrolyte osmotic component (i.e., glucose) to enhance water transfer by osmosis. In these tests both membrane resistances were found to be constant and independent of the solute concentration, owing to the fact that the ED desalting process was carried out at electric current densities by far smaller than the limiting one. Either the effective solute (t(B)) or water (t(W)) transport number was independent of I and C-BD0 in the ranges tested. The contribution of solute diffusion was negligible (L-B approximate to 0), while that of osmosis (L-W) across the membranes used here was definitively different from zero and had to be taken into account. (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:220 / 232
页数:13
相关论文
共 41 条
  • [1] Desalting of neutral amino acids fermentative solutions by electrodialysis with ion-exchange membranes
    Aghajanyan, Armen E.
    Hambardzumyan, Artur A.
    Vardanyan, Andranik A.
    Saghiyan, Ashot S.
    [J]. DESALINATION, 2008, 228 (1-3) : 237 - 244
  • [2] Ion-exchange membrane mediated electrodialysis of scallop broth: Ion, free amino acid and heavy metal profiles
    Atungulu, Griffiths
    Koide, Shoji
    Sasaki, Shigefumi
    Cao, Wei
    [J]. JOURNAL OF FOOD ENGINEERING, 2007, 78 (04) : 1285 - 1290
  • [3] AUDINOS R, 1992, SEPARATION PURIFICAT, P229
  • [4] BATCHELDER BT, 1987, FILIDF B, V212, P84
  • [5] Analysis of the sodium lactate concentration process by electrodialysis
    Boniardi, N
    Rota, R
    Nano, G
    Mazza, B
    [J]. SEPARATIONS TECHNOLOGY, 1996, 6 (01): : 43 - 54
  • [6] Box GEP, 1987, Empirical model-building and response surfaces
  • [7] Bozzi R., 1997, PCT Int. Appl., Patent No. [WO 9,700,264, 9700264]
  • [8] Electrodialysis Desalination of Fish Sauce: Electrodialysis Performance and Product Quality
    Chindapan, Nathamol
    Devahastin, Sakamon
    Chiewchan, Naphaporn
    [J]. JOURNAL OF FOOD SCIENCE, 2009, 74 (07) : E363 - E371
  • [9] EFFECT OF TURBULENCE ON LIMITING CURRENT IN ELECTRODIALYSIS CELLS
    COWAN, DA
    BROWN, JH
    [J]. INDUSTRIAL AND ENGINEERING CHEMISTRY, 1959, 51 (12): : 1445 - 1448
  • [10] Technical and economical evaluation of an integrated membrane process capable both to produce an aroma concentrate and to reject clean water from shrimp cooking juices
    Cros, S.
    Lignot, B.
    Jaouen, P.
    Bourseau, P.
    [J]. JOURNAL OF FOOD ENGINEERING, 2006, 77 (03) : 697 - 707