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酒精-沼气双发酵耦联工艺中SO42-的控制 总被引:1,自引:0,他引:1
SO2-4是酒精-沼气双发酵耦联工艺稳定运行的重要抑制物.在耦联工艺中,以中温厌氧出水代替自来水配料进行酒精发酵.通过无预糖化工序的同步糖化发酵技术研究,将酒精发酵的初始pH提高到6.0,H2SO4的消耗降低了50%,使SO2-4的质量浓度维持在3g/L的沼气发酵安全范围内.在进行高浓度酒精发酵时,糖化酶的添加量为每克木薯添加140U,发酵54h,最终酒精体积分数达14.7%.糖化酶添加量与常规酒精发酵用量相比,每克木薯增加了糖化酶20 U. 相似文献
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木薯粉与甘蔗汁混合发酵生产高浓度乙醇 总被引:1,自引:0,他引:1
对木薯粉和甘蔗汁混合原料进行高温高浓度乙醇发酵的条件进行了优化,在单因素实验的基础上,先应用Plackett-Burman试验设计筛选出影响发酵的重要参数,再利用正交试验设计确定重要因素的最佳水平,即:木薯粉与甘蔗汁的比例为1∶5(W/V),发酵初始pH为4.0~4.5,尿素添加量为0.25%(W/W),硫酸镁添加量为0.04%(W/W)。最后在发酵过程中采用梯度温度控制,可显著提高发酵效率。在技术集成的基础上,进行了2L发酵罐放大实验,经过48h发酵,发酵成熟醪乙醇浓度可达17.84%(V/V),发酵效率达91.82%。 相似文献
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木质纤维素稀酸水解糖液乙醇发酵研究进展 总被引:1,自引:0,他引:1
以木质纤维素为原料生产燃料乙醇,首先要对原料进行预处理得到可发酵糖,在稀酸水解木质纤维素得到的糖液中,除含有葡萄糖、木糖等六碳糖和五碳糖外,根据水解温度、酸浓度和时间的不同,还含有不同浓度的发酵抑制剂。因此,在研究木质纤维素稀酸水解糖液的乙醇发酵中,对代谢木糖成乙醇的菌种的研究、对耐/代谢发酵抑制剂微生物的研究、对稀酸水解糖液的脱毒方法的研究以及对稀酸水解糖液不同发酵方式的乙醇发酵研究等非常重要。重点介绍了以上几个方面近几年研究的进展。 相似文献
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目前纤维素乙醇成本偏高的根本原因在于没有达到淀粉质乙醇发酵水平的"三高"(高浓度、高转化率和高效率)指标,提高水解糖液浓度和避免发酵抑制物来实现浓醪发酵,是解决问题的关键。文中以常压甘油自催化预处理麦草为底物,尝试采用不同发酵策略,探讨其浓醪发酵产纤维素乙醇的可行性。在优化培养条件(15%底物浓度,加酶量30 FPU/g干底物,温度37℃,接种量10%)下同步糖化发酵72 h,纤维素乙醇产量为31.2 g/L,转化率为73%,发酵效率0.43 g/(L·h);采用半同步(预酶解24 h)糖化发酵72 h,纤维素乙醇浓度达到33.7 g/L,转化率为79%,发酵效率为0.47 g/(L·h),其中(半)同步糖化发酵中90%以上纤维素已被糖化水解用于发酵;采用分批补料式半同步糖化发酵,补料到基质浓度相当于30%,发酵72 h时纤维素乙醇产量达到51.2 g/L,转化率为62%,发酵效率为0.71 g/(L·h)。在所有浓醪发酵中乙酸不足3 g/L,无糠醛和羟甲基糠醛等发酵抑制物。以上结果表明,常压甘油自催化预处理木质纤维素基质适用于纤维素乙醇发酵;分批补料式半同步糖化发酵策略可用来进行浓醪纤维素乙醇发酵;未来工作中提高基质纯度和强化酶解产糖是浓醪纤维素乙醇达到"三高"指标的关键。 相似文献
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利用高温细菌发酵,纤维素乙醇生产有望实现“生物质降解-乙醇发酵-乙醇蒸馏”过程的同步化,从而最大限度地降低纤维素乙醇的生产成本;这是一个目标更高、道路更远、科学性更强的可再生能源发展策略.纤维素乙醇高温发酵研究已经取得了重要进展,目前面临的主要挑战包括发酵乙醇的高温细菌的遗传转化系统不够稳定、缺少内源的高活性和耐热性纤维素酶,以及乙醇代谢调控机理有待进一步解析.这些科技难题将会在DNA生物合成和进化技术、细胞生物学技术,以及合成生物学技术的发展中得到解决. 相似文献
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青贮对柳枝稷制取燃料乙醇转化过程的影响 总被引:1,自引:0,他引:1
青贮是一种传统的生物质原料保存方法,广泛应用于纤维素乙醇炼制领域尚需要考察其对原料品质和下游乙醇转化过程的影响。文中以秋季(初、中和末)收割的柳枝稷为原料,通过青贮、高温水热(LHW)预处理、纤维素酶水解和同步糖化与发酵(SSF)实验对上述问题予以回答。结果显示,秋季初收割的柳枝稷以不同湿度青贮后pH均小于4.0,干重损失小于2%,各主要成分与青贮前相比无明显变化;LHW预处理中青贮样品半纤维素水解率普遍高于未贮存样品,但青贮同样使原料获得了更高的发酵抑制物产生水平;青贮柳枝稷葡萄糖、木糖和半乳糖产量(预处理+酶水解)高于未贮存柳枝稷;经过168 h的SSF,青贮样品乙醇浓度为12.1 g/L,未贮存的秋季初、秋季中和秋季末柳枝稷为底物的浓度分别为10.3 g/L、9.7 g/L和10.6 g/L。综上,青贮有助于提高柳枝稷LHW预处理效率、酶水解率和乙醇产量。 相似文献
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Ethanol yields were 2.1 (P = 0.06) to 2.3 (P = 0.01) times higher in simultaneous saccharification and fermentation (SSF) reactions of microcrystalline cellulose when cellulase was physisorbed on silica nanoparticles compared to enzyme in solution. In SSF reactions, cellulose is hydrolyzed to glucose by cellulase while yeast simultaneously ferments glucose to ethanol. The 35°C temperature and the presence of ethanol in SSF reactions are not optimal conditions for cellulase. Immobilization onto solid supports can stabilize the enzyme and promote activity at non-optimum reaction conditions. Mock SSF reactions that did not contain yeast were used to measure saccharification products and identify the mechanism for the improved ethanol yield using immobilized cellulase. Cellulase adsorbed to 40 nm silica nanoparticles produced 1.6 times (P = 0.01) more glucose than cellulase in solution in 96 h at pH 4.8 and 35°C. There was no significant accumulation (<250 μg) of soluble cellooligomers in either the solution or immobilized enzyme reactions. This suggests that the mechanism for the immobilized enzyme's improved glucose yield compared to solution enzyme is the increased conversion of insoluble cellulose hydrolysis products to soluble cellooligomers at 35°C and in the presence of ethanol. The results show that silica-immobilized cellulase can be used to produce increased ethanol yields in the conversion of lignocellulosic materials by SSF. 相似文献
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Helen Golias Geoffrey J. Dumsday Grant A. Stanley Neville B. Pamment 《Biotechnology letters》2000,22(7):617-621
The cellulase, Spezyme CP from Genencor, widely used for the simultaneous saccharification and fermentation (SSF) of cellulose to ethanol, contained substances inhibitory to the growth of Klebsiella oxytoca P2, emphasising the need to check for inhibition effects in SSF experimentation. Also, the preparation contained enough -glucosidase activity to prevent cellobiose accumulation in SSF with a conventional non-cellobiose fermenting yeast: this finding is relevant to attempts to evaluate novel recombinant cellobiose-fermenting microbial strains. 相似文献
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The chemical characteristics, enzymatic saccharification, and ethanol fermentation of autohydrolyzed lignocellulosic material
that was exposed to steam explosion were investigated using bagasse as the sample. The effects of the steam explosion on the
change in pH, organic acids production, degrees of polymerization and crystallinity of the cellulose component, and the amount
of extractive components in the autohydrolyzated bagasse were examined. The steam explosion decreased the degree of polymerzation
up to about 700 but increased the degree of crystallinity and the micelle width of the cellulose component in the bagasse.
The steam explosion, at a pressure of 2.55 MPa for 3 mins, was the most effective for the delignification of bagasse. 40 g/L
of glucose and 20 g/L of xylose were produced from 100 g/L of the autohydrolyzed bagasse by the enzymatic saccharification
using mixed cellulases, acucelase and meicelase. The maximum ethanol concentration, 20 g/L, was obtained from the enzymatic
hydrolyzate of 100 g/L of the autohydrolyzed bagasse by the ethanol fermentation usingPichia stipitis CBS 5773; the ethanol yield from sugars was 0.33 g/g sugars. 相似文献
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Aspergillus awamori and Saccharomyces cerevisiae have been used to convert dextrinized cassava root flour into ethanol. A batch culture of the combined microorganisms produced 4.3% alcohol by weight from 15% cassava flour slurry in 39 h. Two-stage continuous fermentation was done using A. awamori in an airlift fermenter and yeast in a tower fermenter. A residence time of 12.5 h for the first stage resulted in 12.5% sugar concentration and a saccharification efficiency of 88%. A residence time of 5.6 h for the second stage gave an alcohol concentration of 5.3% alcohol and a starch-into-ethanol conversion efficiency of 72.5%. 相似文献
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High solid simultaneous saccharification and fermentation of wet oxidized corn stover to ethanol 总被引:7,自引:0,他引:7
In this study ethanol was produced from corn stover pretreated by alkaline and acidic wet oxidation (WO) (195 degrees C, 15 min, 12 bar oxygen) followed by nonisothermal simultaneous saccharification and fermentation (SSF). In the first step of the SSF, small amounts of cellulases were added at 50 degrees C, the optimal temperature of enzymes, in order to obtain better mixing condition due to some liquefaction. In the second step more cellulases were added in combination with dried baker's yeast (Saccharomyces cerevisiae) at 30 degrees C. The phenols (0.4-0.5 g/L) and carboxylic acids (4.6-5.9 g/L) were present in the hemicellulose rich hydrolyzate at subinhibitory levels, thus no detoxification was needed prior to SSF of the whole slurry. Based on the cellulose available in the WO corn stover 83% of the theoretical ethanol yield was obtained under optimized SSF conditions. This was achieved with a substrate concentration of 12% dry matter (DM) acidic WO corn stover at 30 FPU/g DM (43.5 FPU/g cellulose) enzyme loading. Even with 20 and 15 FPU/g DM (corresponding to 29 and 22 FPU/g cellulose) enzyme loading, ethanol yields of 76 and 73%, respectively, were obtained. After 120 h of SSF the highest ethanol concentration of 52 g/L (6 vol.%) was achieved, which exceeds the technical and economical limit of the industrial-scale alcohol distillation. The SSF results showed that the cellulose in pretreated corn stover can be efficiently fermented to ethanol with up to 15% DM concentration. A further increase of substrate concentration reduced the ethanol yield significant as a result of insufficient mass transfer. It was also shown that the fermentation could be followed with an easy monitoring system based on the weight loss of the produced CO2. 相似文献
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鹰嘴豆孢克鲁维酵母利用菊芋原料同步糖化与发酵生产乙醇 总被引:4,自引:0,他引:4
菊芋含有大量的菊粉多糖,且种植简单、产量高,是极具开发价值的替代玉米等粮食作物生产燃料乙醇的原料。文中研究了鹰嘴豆孢克鲁维酵母Y179利用菊芋原料同步糖化与发酵生产乙醇。鹰嘴豆孢克鲁维酵母Y179具有高效分泌菊粉酶的能力,摇瓶试验显示Y179酵母能够利用完全由菊芋原料配制而成的培养基良好生长并发酵产生乙醇。通气及温度对乙醇产量影响明显,相对厌氧环境对Y179酵母发酵产乙醇具有促进作用,30℃发酵温度相对37℃和42℃更有利于乙醇产量提高。种子液培养时间及接种量对乙醇产量影响较小。在5 L发酵罐中以10%(V/V)量接入预培养36 h的Y179种子液,发酵液完全由菊芋干粉配制而成,总糖含量22%(W/V),30℃不通气,300 r/min搅拌,发酵144 h时,乙醇浓度达到12.3%(V/V),糖醇转化效率86.9%,糖利用率大于93.6%。初步研究结果显示鹰嘴豆孢克鲁维酵母Y179在利用菊芋原料生产乙醇方面具有良好应用前景。 相似文献
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响应面法优化耐高温酵母生产高浓度乙醇 总被引:2,自引:0,他引:2
利用耐高温酵母GXASY-10菌株对木薯粉同步糖化(SSF)法生产高浓度乙醇的发酵条件进行了优化。在单因素实验的基础上,首先应用Plackett-Burman试验设计筛选影响酒精高温高浓度发酵的重要参数,采用最陡爬坡实验逼近最大酒精生产区域后,利用Box-Behnken设计确定重要参数的最佳水平。筛选结果表明,影响酒精产量的重要参数是液化时间、糖化酶用量和初始木薯粉(底物)浓度。最佳工艺条件为:液化时间为35min,糖化酶添加量为1.21AGU/g底物,底物浓度为37.62%。20L发酵罐在此条件下(发酵温度37℃,转速100r/min)经过48h发酵,酒精浓度可达16.07%(V/W)。优化条件与初始条件相比较,酒精浓度提高了33%。 相似文献