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1.
Summary Fed-batch fermentation of non-supplemented concentrated whey permeate resulted in high ethanol productivity for feeds of lactose for which batch fermentation had a poor performance. At an initial lactose concentration of 100 g/L and a constant lactose feeding rate of 18 g/h we have obtained: ethanol concentration 64 g/L, ethanol productivity 3.3 g/Lh, lactose consumption 100%, ethanol yield 0.47 g/g, and biomass yield 0.058 g/g.Nomenclature St total lactose fed per medium volume in the bioreactor, g/L - Si initial lactose concentration, g/L - F lactpse feeding rate, g/h - P final ethanol concentration, g/L - Yp/s ethanol yield, g ethanol/g lactose - Yx/s biomass yield, g biomass/g lactose - XS lactose consumption, % - Qp overall ethanol volumetric productivity, g/Lh - m maximum specific growth rate, h - qsm maximum specific lactose consumption rate, g/gh - qpm maximum specific ethanol production rate, g/gh  相似文献   

2.
A mathematical model is described for the simultaneous saccharification and ethanol fermentation (SSF) of sago starch using amyloglucosidase (AMG) and Zymomonas mobilis. By introducing the degree of polymerization (DP) of oligosaccharides produced from sago starch treated with -amylase, a series of Michaelis-Menten equations were obtained. After determining kinetic parameters from the results of simple experiments carried out at various substrate and enzyme concentrations and from the subsite mapping theory, this model was adapted to simulate the SSF process. The results of simulation for SSF are in good agreement with experimental results.List of Symbols g/g rate coefficient of production - max 1/h maximum specific growth rate - E %, v/w AMG concentration - G 1 mmol/l glucose concentration - G c mmol/l glucose concentration consumed - G f mmol/l glucose concentration formed - G n mmol/l n-mer maltooligosaccharide concentration - K i g/l ethanol inhibition constant for ethanol production - K g mmol/l glucose inhibition constant for glucose production - K p mmol/l glucose limitation constant for ethanol production - K x mmol/l glucose limitation constant for cell growth - K m,n mmol/l Michaelis-Menten constant for n-mer oligosaccharide - k e %, v/w enzyme limitation constant - k es proportional constant - k max, n 1/s maximal velocity for n-mer digestion - k s g/l substrate limitation constant - m s g/g maintenance energy - MW n g/mol molecular weight of n-mer oligosaccharide - P g/l ethanol concentration - P 0 g/l initial ethanol concentration - P m g/l maximal ethanol concentration - Q pm g/(g · h) maximum specific ethanol production rate - S n mmol/h branched n-mer oligosaccharide concentration - S 0 g/l initial starch concentration - S sta g/l starch concentration - S tot g/l total sugar concentration - V max, n 1/h maximum digestion rate of n-mer oligosaccharide - V 0 g/(l · h) initial glucose formation rate - X g/l cell mass - X 0 g/l initial cell mass - Y p/s g/g ethanol yield - Y x/s g/g cell mass yield  相似文献   

3.
The on-line measurement of the relevant parameters and the control conception for three production processes for fine chemicals by fermentation and biotransformation at the 15 m3 scale were developed. The models describe the bioprocesses which successfully result in fully automated manufacturing steps. Modelling also proved to be a valuable tool for a better insight into biochemical fundamentals of the processes. Moreover, proper use of data logging, modelling and process control was important for quality, since two processes were controlled on-line and quality relevant deviations were registered early. Finally, combining modelling with simulation, we could drastically reduce both development time and cost.List of Symbols F l/h flux - V l volume - U 0 g/l nicotinonitrile concentration influx - U g/l actual nicotinonitrile concentration - q ug/gh specific educt (=nicotinonitrile) transformation rate - x g/l biocatalyst concentration - p 0 g/l nicotinamide concentration influx - p g/l actual nicotinamide concentration - q pg/gh specific product (=nicotinamide) formation rate - k parameter loss of activity - q u, maxg/gh max. specific educt transformation rate - K ug/l saturation constant for nicotinonitrile - K ig/l inhibition constant for nicotinonitrile - K iig/l inhibition constant for nicotinamide - MW Ag/mol molecular weight for nicotinonitrile - MW Bg/mol molecular weight for nicotinamide - NS Nicotinic acid - 6-HNS 6-Hydroxynicotinic acid - r NS, 6HNS g/lh 6-HNS production rate - r 6HNS, X g/lh biomass production rate - r NS, 6HNS, max g/lh max. 6-HNS production rate - S NS g/l actual NS concentration - K S, NS g/l saturation constant for NS - K i, 6HNS g/l inhibition constant for 6-HNS - K o2 g/l saturation constant for oxygen - r 6HNS, X, max g/lh max. biomass production rate - S 6HNS g/l actual 6-HNS concentration - K ii, NS g/l inhibition constant for NS - RQ mol/mol respiration quotient - S xylg/l actual xylene concentration - K i, xylg/ inhibition constant for xylene - K i, DMPYg/ inhibition constant for 2,5-dimethylpyrazine - r Xg/lh biomass production rate - r X, maxg/lh max. biomass production rate - K s, xylg/l saturation constant for xylene - S DMPYg/l actual concentration of DMPY - K i, MPCAg/ inhibition constant for MPCA - K O2g/ saturation constant for oxygen - S MPCAg/l actual MPCA concentration - S O2g/l actual oxygen concentration - r MPCAg/lh MPCA production rate - r MPCA, maxg/lh max. MPCA production rate - k lgl inhibition constant for the intermediates - k s, DMPYgl saturation constant for DMPY  相似文献   

4.
Summary Pichia stipitis NRRL Y-7124 yeast cells were for the first time immobilized both in agar gel beads and on fine nylon net for ethanol fermentation on D-xylose, in order to investigate the possibility of using the biocatalyst for improved utilization of the biomass pentose fraction. With free cells the initial xylose level affected little ethanol production, with a maximum of 22 g/l ethanol obtained in 5 days on 5% and of 40 g/l in 8 days on 10% xylose, and an average volumetric productivity of about 0.22 g/lh. The maximum ethanol concentration of 19.5% on 5% xylose with the nylon net attached cells in a continuous packed-bed column reactor was obtained with 35 h residence time. The volumetric productivities of 0.56 g/lh at 19.5 g/l ethanol and 1.0 g/lh at 15.0 g/l ethanol were markedly higher than those obtained with free cells. The stability of the immobilized biocatalyst was excellent. The same reactor could be used for at least 80 days without significant activity loss.  相似文献   

5.
Summary The performance ofZymomonas mobilis strains ATCC 31821 and ATCC 31823 was assessed in batch and continuous culture. In batch culture using a medium containing 250 g/l glucose, identical maximum specific growth rates of 0.16/h were found, though final biomass concentration and growth yield were significantly lower for ATCC 31 823 than for ATCC 31 821. Final ethanol concentrations in this medium were about 110 g/l vor both organisms. In continuous culture at increasing dilution rates using a medium containing 100 g/l glucose, no significant differences were seen between the two strains with respect to the fermentation parameters studied. For ATCC 31 821, maximum rates of glucose uptake (Qs) and ethanol produktion (Qp) of 8.7 g glu/g/h and 4.4 g eth/g/h, respectively, were found. Both strains showed a similar performance at a fixed dilution rate of 0.1/h, where maximum ethanol concentrations of about 68 g/l were reached at a feed glucose concentration of about 139 g/l. At this dilution rate the maximum values of Qs and Qp were about 5.8 g glu/g/h and 2.8 g eth/g/h, respectively. Test tube experiments showed that growth, measured as optical density, decreased with increasing concentrations of exogenous ethanol with complete inhibition of growth at ethanol concentrations >8% (v/v). As evidenced by the results presented here, we have been unable to practice the invention as described in U.S. Patent 4,403,034 (Rogers and Tribe 1983).Nomenclature D Dilution rate, 1/h - max maximum specific growth rate, 1/h - SR Initial substrate concentration, g glucose/1 - S Residual substrate concentration, g glucose/1 - S0 Effluent substrate concentration, g glucose/1 - X Blomass concentration; g cells/l - OD620 Optical density at 620 nm, dimensionless - [P] Product concentration, g ethanol/1 - Yx/s Growth yield, g cells/g glucose used - Yp/s Product yield, g ethanol/g glucose used - %, Yield Percentage yield, Yp/sx100/Y p s/max =Yp/sx100/0.51 - Qs Specific rate of glucose uptake, g glucose/g cells/h - Qp Specific rate of ethanol formation, g ethanol/g cells/h - me Maintenance energy coefficient, g glucose/g cells/h - VP Volumetric productivity, g ethanol/l/h - t Fermentation time, h  相似文献   

6.
An upflow packed-bed cell recycle bioreactor (IUPCRB) is proposed for obtaining a high cell density. The system is comprised of a stirred tank bioreactor in which cells are retained partially by a packed-bed. A 1.3 cm (ID) × 48 cm long packed-bed was installed inside a 2 L bioreactor (working volume 1 L). Continuous ethanol fermentation was carried out using a 100 g/L glucose solution containing Saccharomyces cerevisiae (ATCC 24858). Cell retention characteristics were investigated by varying the void fraction (VF) of the packed bed by packing it with particles of 0.8∼2.0 mm sized stone, cut hollow fiber pieces, ceramic, and activated carbon particles. The best results were obtained using an activated carbon bed with a VF of 30∼35%. The IUPCRB yielded a maximum cell density of 87 g/L, an ethanol concentration of 42 g/L, and a productivity of 21 g/L/h when a 0.5 h−1 dilution rate was used. A natural bleeding of cells from the filter bed occurred intermittently. This cell loss consisted of an average of 5% of the cell concentration in the bioreactor when a high cell concentration (approximately 80 g/L) was being maintained.  相似文献   

7.
Summary A cellulose hydrolysate from Aspen wood, containing mainly glucose, was fermented into ethanol by a thermotolerant strain MSN77 of Zymomonas mobilis. The effect of the hydrolysate concentration on fermentation parameters was investigated. Growth parameters (specific growth rate and biomass yield) were inhibited at high hydrolysate concentrations. Catabolic parameters (specific glucose uptake rate, specific ethanol productivity and ethanol yield) were not affected. These effects could be explained by the increase in medium osmolality. The results are similar to those described for molasses based media. Strain MSN77 could efficiently ferment glucose from Aspen wood up to a concentration of 60 g/l. At higher concentration, growth was inhibited.Nomenclature S glucose concentration (g/l) - X biomass concentration (g/l) - P ethanol concentration (g/l) - C conversion of glucose (%) - t fermentation time (h) - qS specific glucose uptake rate (g/g.h) - qp specific ethanol productivity (g/g.h) - YINX/S biomass yield (g/g) - Yp/S ethanol yield (g/g) - specific growth rate (h-1)  相似文献   

8.
Summary The fermentation of an equimolar mixture of glucose and fructose into ethanol and sorbitol by a fructose negative mutant of Zymomonas mobilis is analysed using a recently described methodology (Ait-Abdelkader and Baratti, Biotechnol. Tech. 1993,329–334) based on polynomial fitting and calculation of instantaneous and overall parameters. These parameters are utilized to describe this mixed-substrate mixed-product fermentation.Nomenclature X biomass concentration, g/l - S total sugar concentration, g/l - Glu glucose concentration, g/l - Fru fructose concentration, g/l - Sor sorbitol concentration, g/l - P ethanol concentration, g/l - t fermentation time, h - specific growth rate, h-1 - qs specific sugar uptake rate, g/g.h - qg specific glucose uptake rate, g/g.h - qF specific fructose uptake rate, g/g.h - qP specific ethanol productivity, g/g.h - qSor specific sorbitol productivity, g/g.h - YX/S biomass yield on total sugar, g/g - YP/S ethanol yield on total sugar, g/g - YSor/S sorbitol yield on total sugar, g/g - YSor/F sorbitol yield on fructose, (g/g) - YP/G ethanol yield on glucose, (g/g)  相似文献   

9.
Zymomonas mobilis immobilized on microporous ion exchange resins has previously been shown to allow the attainment of high ethanol productivities in packed-bed bioreactors. The formation of bacterial filaments after several days of continuous operation, however, had resulted in excessive pressure increases across the reactor bed. The present work examines techniques for controlling filament formation by Z. mobilis in two reactor sizes (161 mL and 7.85 L) and a feed glucose concentration of 100 g/L. By controlling the fermentation temperature at 20-25 degrees C it has been possible to eliminate filament formation by Z. mobilis and to operate the larger bioreactor for 232 h with an ethanol productivity of 50 g/L h (based on total reactor volume). The rate of ethanol production has been shown to be very sensitive to temperature in the range 20-30 degrees C, and it is likely that slightly higher temperatures than those used in this study will improve ethanol productivity while still permitting long-term operation.  相似文献   

10.
Summary The effect of substrate concentration (S 0) on the fermentation parameters of a sugar mixture byPichia stipitis Y 7124 was investigated under anaerobic and microaerobic conditions. Under microaerobiosisP. stipitis maintained high ethanol yield and productivity when initial substrate concentration did not exceed 150 g/l; ethanol yield of about 0.40 g/g and volumetric productivity up to 0.39 g/l per hour were obtained. Optimal specific ethanol productivity (0.2 g/g per hour) was observed withS 0=110 g/l. Under anaerobic conditionsP. stipitis exhibited the highest fermentative performances atS 0=20 g/l; it produced ethanol with a yield of 0.42 g/g, with a specific rate of 1.1 g/g per day. When the initial substrate level increased, specific ethanol productivity declined gradually and ethanol yield was dependent on the degree of utilization of each sugar in the mixture.Abbreviations E m maximum produced ethanol (g/l) - E 0 initial ethanol (g/l) - E v evaporated ethanol (g/l) - Q p volumetric productivity of ethanol (g ethanol/l per hour or g/l per day) - q p specific productivity of ethanol (g ethanol/g cells per hour) - q pm maximum specific productivity of ethanol (g/l per hour) - S 0 initial substrate concentration (g/l) - t f time at which produced ethanol is maximum (h) - Y p/s ethanol yield (g ethanol produced/g substrate utilized) - Y x/s cell yeild (g cells produced/g substrate utilized) - Y xo/xy xylitol yield (g xylitol produced/g xylose utilized) - probability coefficient - specific growth rate coefficient (h-1 or d-1)  相似文献   

11.
Summary The fermentation of an equimolar mixture of glucose and fructose into ethanol and sorbitol by a glucose negative mutant ofZymomonas mobilis was monitored. The results were analyzed using a recently described method based on polynomial fitting and calculation of intantaneous and overall parameters. These parameters described well the physiology of this mixed-substrate mixed-product fermentation. Growth of the mutant was greatly inhibited on this medium. Fructose was quantitatively converted into sorbitol while glucose was oxidized into gluconic acid .This latter product was utilized as substrate for cell growth and ethanol production.Nomenclature X biomass concentration, g/l - S total sugar concentration, g/l - Glu glucose concentration, g/l - Fru fructose concentration, g/l - Sor sorbitol concentration, g/l - P ethanol concentration, g/l - t fermentation time, h - specific growth rate, h-1 - qs specific sugar uptake rate, g/g.h - qG specific glucose uptake rate, g/g.h - qF specific fructose uptake rate, g/g.h - qP specific ethanol productivity, g/g.h - qSor specific sorbitol productivity, g/g.h - YX/S biomass yield on total sugar, g/g - YP/S ethanol yield on total sugar, g/g - YSor/S sorbitol yield on total sugar, g/g - ySor/f sorbitol yield on fructose, g/g - YP/G ethanol yield on glucose, g/g  相似文献   

12.
The ability of oxygen vector to extract produced carbon dioxide has been tested in an anaerobic fermentation. During the continuous culture of Clostridium acetobutylicum at pH 4.6 and at a dilution rate of 0.124 h–1, a feed composed of an emulsion of 18.5% by volume of Forane F66E was able to extract about 9% of the total CO2 produced under CO2 partial pressure equal to 0.42 atm. A theoretical evaluation of the extracted amount, based on the hypothesis of total saturation of the vector by carbon dioxide, has lead to very good agreement.List of Symbols [AA] g/l acetic acid concentration - [BA] g/l butyric acid concentration - D 1/h Q w /V dilution rate - [ETH] g/l ethanol concentration - H w Henry constant of CO2 for water at 37°C (=23.91 mmol/(l atm)) - H F Henry constant of CO2 for Forane at 37°C (=83.4 mmol/(l atm)) - H i g/mol molar mass of componenti - P i atm partial pressure of gasi - W w l/h aqueous flow - Qf 1/h Forane flow - mmol/(lh) dissolved CO2 flow in aqueous effluent - mmol/(lh) CO2 gas flow - mmol/(lh) CO2 gas flow without Forane - mmol/(lh) CO2 gas flow with Forane - mmol/(lh) total CO2 production - r X g/(lh) biomass production rate - r G mmol/(lh) total gas flow - mmol/(lh) hydrogen production - mmol/(lh) nitrogen flow - r S mmol/(lh) glucose input - V 1 fermentor volume  相似文献   

13.
Summary A continuous single stage yeast fermentation with cell recycle by ultrafiltration membranes was operated at various recycle ratios. Cell concentration was increased 10.6 times, and ethanol concentration and fermentor productivity both 5.3 times with 97% recycle as compared to no recycle. Both specific growth rate and specific ethanol productivity followed the exponential ethanol inhibition form (specific productivity was constant up to 37.5 g/l of ethanol before decreasing), similar to that obtained without recycle, but with greater inhibition constants most likely due to toxins retained in the system at hight recycle ratios.By analyzing steady state data, the fractions of substrate used for cell growth, ethanol formation, and what which were wasted were accounted for. Yeast metabolism varied from mostly aerobic at low recycle ratios to mostly anaerobic at high recycle ratios at a constant dissolved oxygen concentration of 0.8 mg/kg. By increasing the cell recycle ratio, wasted substrate was reduced. When applied to ethanol fermentation, the familiar terminology of substrate used for Maintenance must be used with caution: it is not the same as the wasted substrate reported here.A general method for determining the best recycle ratio is presented; a balance among fermentor productivity, specific productivity, and wasted substrate needs to be made in recycle systems to approach an optimal design.Nomenclature B Bleed flow rate, l/h - C T Concentration of toxins, arbitrary units - D Dilution rate, h-1 - F Filtrate or permeate flow rate, removed from system, l/h - F o Total feed flow rate to system, l/h - K s Monod form constant, g/l - P Product (ethanol) concentration, g/l - P o Ethanol concentration in feed, g/l - PP} Adjusted product concentration, g/l - PD Fermentor productivity, g/l-h - R Recycle ratio, F/F o - S Substrate concentration in fermentor, g/l - S o Substrate concentration in feed, g/l - V Working volume of fermentor, l - V MB Viability based on methylene blue test - X Cell concentration, g dry cell/l - X o Cell concentration in feed, g/l - Y ATP Cellular yield from ATP, g cells/mol ATP - Y ATPS Yield of ATP from substrate, mole ATP/mole glucose - Y G True growth yield or maximum yield of cells from substrate, g cell/g glucose - Y P Maximum theoretical yield of ethanol from glucose, 0.511 g ethanol/g glucose - Y P/S Experimental yield of product from substrate, g ethanol/g glucose - Y x/s Experimental yield of cells from substrate, g cell/g glucose - S NP/X Non-product associated substrate utilization, g glucose/g cell - k 1, k2, k3, k4 Constants - k 1 APP , k 2 APP Apparent k 1, k3 - k 1 TRUE True k 1 - m Maintenance coefficient, g glucose/g cell-h - m * Coefficient of substrate not used for growth nor for ethanol formation, g glucose/g cell-h - Specific growth rate, g cells/g cells-h, reported as h-1 - m Maximum specific growth rate, h-1 - v Specific productivity, g ethanol/g cell-h, reported as h-1 - v m Maximum specific productivity, h-1  相似文献   

14.
High-molecular weight pectic acid with a STAUDINGER index of 210 ml/g and a degree of esterification of 3%was used as matrix material for the immobilization of Saccharomyces cerevisiae cells. In discontinuous and continuous fermentation tests the gel beads obtained exhibited the same biomass loading capacity (152–155 g dry wt. cells/kg gel) and about the same maximum specific productivity (103.0 g ethanol/kg gel · h) as alginate immobilizates. But there were distinct differences in the swelling behaviour of the two gels. Under the same experimental conditions the increase of bead volume amounted to 27% only for pectate gel in comparison to 129% for alginate gel. In continuous fermentation experiments performed in a horizontal-column packed-bed reactor with liquid recycling a mean steady-state ethanol concetration of 69.1 g/l and a mean productivity of 24.7 g ethanol/lh could be kept constant over a period of more than 10 days.  相似文献   

15.
Summary Aspergillus terreus NRRL 1960 was grown on porous disks rotating intermittently in and out of the liquid phase. This immobilized fungal cell bioreactor was used to produce itaconic acid from glucose in a continuous operation. The effect of temperature, pH, disk rotation speed, and feed rate on the itaconic acid concentration and volumetric productivity were studied. The highest itaconic acid concentration and volumetric productivity obtained were 18.2 g/l and 0.73 g/l·h, respectively, under the following conditions: temperature at 36°C, pH 3.0, disk rotation speed at 8 rpm, and feed rate at 60 ml/h. These results are better than those by conventional fermentation or by other immobilized method.Nomenclature F feed rate (l/h) - K 1s saturation constant for immobilized cells (g/l) - K 2s saturation constant for suspended cells (g/l) - M 1 increased mass of immobilized cells (g) - M 2 total mass of immobilized cells (g) - P concentration of itaconic acid (g/l) - S substrate concentration in and out of the reactor (g/l) - S 0 substrate concentration in the feed (g/l) - V liquid volume of the reactor (1) - X concentration of the suspended cells (g/l) - Y 1 apparent yield of the immobilized cells (g cells/g substrate) - Y 2 apparent yield of the suspended cells (g cell/g substrate) - Y 3 apparent yield of itaconic acid (g itaconic acid/g substrate) - m 1 maintenance and by-products coefficient of the immobilized cells (g substrate/g cell·h) - m 2 maintenance and by-products coefficient of the suspended cells (g substrate/g cell·h) - µ1max maximum specific growth rate of the immobilized cells (h-1) - µ2max maximum specific growth rate of the suspended cells (h-1)  相似文献   

16.
The mathematical model of an aerobic culture of recombinant yeast presented in work by Zhang et al. (1997) is given by a differential-algebraic system. The classical nonlinear observer algorithms are generally based on ordinary differential equations. In this paper, first we extend the nonlinear observer synthesis to differential-algebraic dynamical systems. Next, we apply this observer theory to the mathematical model proposed in Zhang et al. (1997). More precisely, based on the total cell concentration and the recombinant protein concentration, the observer gives the online estimation of the glucose, the ethanol, the plasmid-bearing cell concentration and a parameter that represents the probability of plasmid loss of plasmid-bearing cells. Numerical simulations are given to show the good performances of the designed observer.Symbols C 1 activity of pacing enzyme pool for glucose fermentation (dimensionless) - C 2 activity of pacing enzyme pool for glucose oxidation (dimensionless) - C 3 activity of pacing enzyme pool for ethanol oxidation (dimensionless) - E ethanol concentration (g/l) - G glucose concentration (g/l) - k a regulation constant for (g glucose/g cell h–1) - k b regulation constant for (dimensionless) - k c regulation constant for (g glucose/g cell h–1) - k d regulation constant for (dimensionless) - K m1 saturation constant for glucose fermentation (g/l) - K m2 saturation constant for glucose oxidation (g/l) - K m3 saturation constant for ethanol oxidation (g/l) - L ( t) time lag function (dimensionless) - p probability of plasmid loss of plasmid-bearing cells (dimensionless) - P recombinant protein concentration (mg/g cell) - q G total glucose flux culture time (g glucose/g cell h) - t culture time (h) - t lag lag time (h) - X total cell concentration (g/l) - X + plasmid-bearing cell concentration (g/l) - Y F X / G cell yield for glucose fermentation pathway (g cell/g glucose) - Y O X / G cell yield for glucose oxidation pathway (g cell/g glucose) - Y X / E cell yield for ethanol oxidation pathway (g cell/g ethanol) - Y E / X ethanol yield for fermentation pathway based on cell mass (g ethanol·g cell) - 2 glucoamylase yield for glucose oxidation (units/g cell) - 3 glucoamylase yield for ethanol oxidation (units/g cell) - µ1 specific growth rate for glucose fermentation (h–1) - µ2 specific growth rate for glucose oxidation (h–1) - µ3 specific growth rate for ethanol oxidation (h–1) - µ1max maximum specific growth rate for glucose fermentation (h–1) - µ2max maximum specific growth rate for glucose oxidation (h–1) - µ3max maximum specific growth rate for ethanol oxidation (h–1)  相似文献   

17.
Summary Vertical Rotating Immobilized Cell Reactor was designed and built for glucose conversion into ethanol. Immobilized biomass units withZ. mobilis cells attached into polyurethane foam discs were fixed along a rotating shaft inside the bioreactor. The effect of rotation speed on the concentration of immobilized biomass was studied. Stability of the bioreactor over long-term operation was dependent on the concentration of the immobilized biomass. With fermentation carried out at 6 rpm a constant active immobilized cell concentration of only 34.5 g/l was maintained and used to convert up to 140 g glucose/l into more than 70 g ethanol/l with a volumetric ethanol productivity of 63 g/l/h.  相似文献   

18.
In this work, an expert system was developed and applied for on-line control and supervision of ethanolic fermentation by immobilized Saccharomyces cerevisiae in a fixed-bed pulsed bioreactor of 1.2 l of working volume. A number of experiments with different substrate concentrations (75, 100, 150 and 200 g/l) and hydraulic residence times (2.4, 1.2 and 0.8 h) were carried out. Knowledge-based computer-aided supervision of this process involves accurate on-line measurement of the relevant process variables (temperature, pH, flow rate, carbon dioxide production, etc.). Carbon dioxide production was used for the estimation of the ethanol productivity. The analysis of the measured data allowed to detect states or trends that may be indicative of process or system failures, providing advices and/or alarms. The results showed the reliability of the control system. In previous works, it was proven that pulsing the feed stream highly improves the productivity of fermentation processes carried out in fixed-bed bioreactors [14, 15, 16]. The amplitude and frequency of the pulsation, which is a key factor in the performance of a pulsed feed bioreactor [13], was selected by the control system by using an algorithm allowing the ethanol productivity to be optimized. The pulsation frequency which maximizes the ethanol productivity, presents a high dependency on the hydraulic residence time and the feeding substrate concentration. When increasing the substrate concentration the optimum pulsation frequency also increases; when increasing the hydraulic residence time the optimum pulsation frequency decreases.  相似文献   

19.
Summary A membrane bioreactor system comprised of a fermenter and a flat pervaporation module was developed for continuous ethanol fermentation by Saccharomyces cerevisiae. In order to obtain the guidelines for high sugar concentration fermentation, the dependence of glucose concentration on the coupled system was investigated. Fed by 158 and 290g glucose/l, the improvement in productivity was obtained with 1. 58 and 1. 86 times, and the ethanol yield was 0. 45 and 0. 395, respectively. With the fermentation proceeding, the permeate flux decreased but the selectivity kept unaltered.  相似文献   

20.
Summary Living Gluconobacter oxydans cells were attached on fibrous nylon carrier. Free gluconic acid was directly continuously produced in an aerated tubular immobilized-cell bioreactor for at least 6 months, with a volumetric productivity of at least 5 g/lh at 100 g/l substrate glucose and about 80 g/l product gluconic acid concentrations. The highest volumetric productivity in respect to glucose concentration was obtained with 175 g/l glucose, with about 120 g/l product gluconic acid level. With self-directing optimization procedure in respect to maximum product gluconic acid level, productivities as high as about 12–15 g/lh were obtained at relatively high substrate feed rate of 0.166 l/lh and relatively low aeration rate of 0.5 l/lmin. The highest glucose conversion of about 96% was obtained with a long residence time, at the lowest substrate feed rate used at a relatively low aeration rate, resulting however in a significant increase in ketogluconic acid production.  相似文献   

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