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Control of ethanol production and monitoring of membrane performance by mass-spectrometric gas analysis in the coupled fermentation-pervaporation of whey permeate

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Abstract

A coupled fermentation-pervaporation process was operated continuously with on-line mass spectrometric gas analysis monitoring of product accumulation on both the upstream and the downstream sides of the membrane. Efficient coupling of the fermentation with pervaporation was attained when a steady state of ethanol production and removal was achieved with whey permeate containing high concentrations of lactose (>8%) or by controlled lactose additions that also compensated for loss of liquid due to pervaporation. The combined system consists of a tubular membrane pervaporation module, directly connected to a stirred fermentor to form one circulation loop, kept at 38°C, with both units operating under computer control. Mass spectrometric gas analysis of the CO2 gas evolved in the fermentor and the ethanol and water in the pervaporate on the downstream side of the membrane enabled us to follow the production of ethanol and its simultaneous removal. Membrane selectivity was calculated on-line and served to monitor the functioning of the membrane. Batch-wise-operated fermentation-pervaporation with Candida pseudotropicalis IP-513 yielded over 120 gl−1 of concentrated ethanol solution using supplemented whey permeate containing 16% lactose. A steady state lasting for about 20 h was achieved with ethanol productivity of 20 g h−1 (approx. 4 g l−1 h−1). Membrane selectivity was over 8. Controlled feeding of concentrated lactose suspension in the whey permeate (350 g l−1) resulted in the continuous collection of 120–140 g l−1 of ethanol pervaporate for 5 days, by which time salt accumulation hampered the fermentation. Medium refreshment restored the fermentative activity of the yeast cells and further extended the coupled process to over 9 days (200 h), when reversible membrane fouling occurred. The membrane module was exchanged and the combined process restarted.

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References

  • Alani DI, Moo-Young M (1986) Membrane bioreactors: a new approach to fermentation of agricultural and food processing wastes. In: Alani DI, Moo-Young M (eds) Perspectives in biotechnology and applied microbiology. Arab Gulf Conference on Biotechnology and Applied Microbiology, Riyadh, Saudi Arabia, King-Saud University, 12–15 November 1984, pp 287–294

    Google Scholar 

  • Bothast RJ, Kurtzman CP, Saltarelli MD, Slininger PJ (1986) Ethanol production by 107 strains of yeasts on 5, 10 and 20% lactose. Biotechnol Lett 8:593–596

    Google Scholar 

  • Cheryan M, Mehaia MA (1983) A high performance membrane bioreactor for continuous conversion of lactose to ethanol. Biotechnol Lett 5:519–524

    Google Scholar 

  • Friedl A, Qureshi N, Maddox IS (1991) Continuous acetone-butanol-ethanol (ABE) fermentation using immobilized cells of Clostridium acetobutylicum in a packed bed reactor and integration with product removal by pervaporation. Biotechnol Bioeng 38:518–527

    Google Scholar 

  • Gawal J, Kosikowski FV (1978) Improving alcohol fermentation in concentrated ultrafiltration permeates of cottage cheese whey. J Food Sci 43:1717–1719

    Google Scholar 

  • Groot WJ, Luyben KChAM (1987) Continuous production of butanol from a glucose/xylose mixture with an immobilized cell system coupled to pervaporation. Biotechnol Lett 9:867–870

    Google Scholar 

  • Janssens JH, Bernard A, Bailey RB (1984) Ethanol from whey: continuous fermentation with cell recycle. Biotechnol Bioeng 26:1–5

    Google Scholar 

  • Kisaalita WS, Pinder KL, Lo KV (1987) Acidigenic fermentation of lactose. Biotechnol Bioeng 30:88–95

    Google Scholar 

  • Marwaha SS, Kennedy JF, Tewari HK (1986) Role of immobilized whole cells in whey permeate treatment. Ann Biol 2:203–214

    Google Scholar 

  • Matsumoto K, Haruhiko O, Negishi Y (1988) Ethanol production by pervaporation using reactor with porous hollow fibers. In: Proceedings of 2nd Annual National Meeting of North American Membrane Society (NAMS), Syracuse University, Syracuse, New York, 1–3 June 1988, p 139

    Google Scholar 

  • Matsumura M, Markl H (1986) Elimination of ethanol inhibition by perstraction. Biotechnol Bioeng 28:534–541

    CAS  PubMed  Google Scholar 

  • Mehaia MA, Cheryan M, Argoudelis CJ (1985) Conversion of whey permeate to ethanol: improvement of fermentor productivity using membrane bioreactors. Cult Dairy Prod J 20(2):9–12

    Google Scholar 

  • Mori Y, Inaba T (1990) Ethanol production from starch in a pervaporation membrane bioreactor using clostridium thermohydrosulfuricum. Biotechnol Bioeng 36:849–853

    Google Scholar 

  • Mulder MHV, Smolders CA (1986) Continuous ethanol production controlled by membrane processes. Process Biochem 4:35–39

    Google Scholar 

  • Sanderson GW, Reed G (1985) Fermented products from whey and whey permeate. In: 8–9 October 1985, New Dairy products via new technology, IDF Publication, Brussels, Belgium. Proceedings of IDF Seminar, Atlanta, Ga., USA, pp 141–157

    Google Scholar 

  • Schoutens GH, Groot WJ (1985) Economic feasibility of the production of iso-propanol-butanol-ethanol fuels from whey permeate. Process Biochem 20:117–121

    Google Scholar 

  • Shabtai Y, Chaimovitz S, Freeman A, Katchalski-Katzir E, Linder C, Nemas M, Perry M, Kedem O (1991) Continuous ethanol production by immobilized yeast reactor coupled with membrane pervaporation unit. Biotechnol Bioeng 38:869–876

    Google Scholar 

  • Tu C-W, Jayanata Y, Bajpai R (1986) Factors affecting ethanol production from cheese whey. Biotechnol Bioeng Symp 15:295–305

    Google Scholar 

  • Vienne P, Stockar U (1983) Alcohol from whey permeate: strain selection, temperature and medium optimization. Biotechnol Bioeng 13:421–435

    Google Scholar 

  • Vienne P, Stockar U (1985) An investigation of ethanol inhibition and other limitations occurring during the fermentation of concentrated whey permeate by Kluyveromyces fragilis. Biotechnol Lett 7:521–526

    Google Scholar 

  • Wang C-J, Jayanata Y, Bajpai R (1986) Kinetic consideration in fermentation of cheese whey to ethanol. J Microb Biotechnol 1:1–6

    Google Scholar 

  • Zacchi G, Axelsson A (1989) Economic evaluation of preconcentration in production of ethanol from dilute sugar solutions. Biotechnol Bioeng 34:223–233

    Google Scholar 

  • Zakrezewski E, Zmarlicki S (1988) Ethanolic fermentation in whey-molasses mixtures. I. Influence of concentration and type of whey on the rate of fermentation. Milchwissenschaft 43:435–437

    Google Scholar 

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Correspondence to: Y. Shabtai

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Shabtai, Y., Mandel, C. Control of ethanol production and monitoring of membrane performance by mass-spectrometric gas analysis in the coupled fermentation-pervaporation of whey permeate. Appl Microbiol Biotechnol 40, 470–476 (1993). https://doi.org/10.1007/BF00175733

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