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1.
以未加工的天然橡实粉为原料进行燃料乙醇的生物转化。正交试验优化橡实粉水解的最佳条件为:α-淀粉酶用量30U/g,液化时间2h,糖化酶用量100U/g,糖化时间1.5h,此条件下葡萄糖转化率82.65%。发酵96h后,乙醇浓度达到48.40g/L,发酵效率97.83%。橡实中的单宁对水解糖化过程中的酶抑制较强,但是对酵母影响较小。  相似文献   

2.
本文研究的内容是以橡子为原料发酵生产燃料乙醇。模拟中粮生化能源(肇东)有限公司淀粉液化的条件,对3种不同糖化酶进行发酵工艺的初步研究。结果表明:在配料浓度为30%,复合糖化酶Stargen002添加量为210U.g-1,发酵时间为96h的条件下,发酵产物乙醇的浓度最高,达到11.0%(V/V)。  相似文献   

3.
以木薯粉为原料,浓醪状态下,研究了低温蒸煮对于液糖化效果及乙醇浓度的影响。结果表明,料水比为1∶3.0(干重)与1∶2.6(干重),液化温度为80℃,液化酶用量10U/g木薯粉,液化反应1h,采用SSF发酵方式,温度为35℃,糖化酶用量150U/g木薯粉,ρ(乙醇)分别可以达到120、140g/L。  相似文献   

4.
以糠醛渣为原料,直接同步糖化发酵(SSF)生产乙醇,并与水洗糠醛渣生产乙醇进行对比。通过考察不同条件来优化同步糖化发酵生产工艺条件,并分析表征了SSF过程中乙醇浓度和副产物浓度变化。优化条件为:糠醛渣底物质量分数10%,纤维素酶用量12%,无患子皂素质量浓度0.5g/L,酵母接种量7g/L,同步糖化发酵乙醇得率达到其理论得率的93.1%。与水洗糠醛渣相比,糠醛渣直接SSF过程可将原料吸附的5.50%葡萄糖部分转化为乙醇。水洗糠醛渣SSF生产乙醇所产生的副产物要远低于糠醛渣直接生产所产生的副产物,添加无患子皂素可有效抑制糠醛渣同步糖化发酵过程中副产物的产生。  相似文献   

5.
蒸汽爆破麦草同步糖化发酵转化乙醇的研究   总被引:4,自引:0,他引:4  
罗鹏  刘忠  杨传民  王高升 《化学工程》2007,35(12):42-45
近年来对木质生物资源同步糖化发酵转化乙醇的研究较多,但是,麦草同步糖化发酵转化乙醇的最佳工艺条件还未确定。文中采用正交试验设计的方法,对在混合酶(纤维素酶Celluclast 1.5 1,β-葡萄糖苷酶Novozym 188)与酿酒酵母菌作用下,稀硫酸催化的蒸汽爆破麦草原料同步糖化发酵转化乙醇的工艺条件进行研究,详细讨论了反应温度、底物质量浓度、发酵液pH值、纤维素酶浓度对乙醇质量浓度和得率的影响。结果表明,工艺条件对乙醇质量浓度和得率的影响程度由高到低依次为:底物质量浓度、纤维素酶浓度、发酵液pH值、反应温度。最佳工艺条件为反应温度35℃,底物质量浓度100 g/L,发酵液pH值5.0,纤维素酶浓度30 FPU/g。在此条件下,随着反应时间的延长,乙醇质量浓度持续上升。反应72 h后,乙醇质量浓度和得率分别达到22.7 g/L和65.8%。  相似文献   

6.
利用Trichoderma sp.W2所产的嗜温耐乙醇β-葡萄糖苷酶及耐高温酵母Kluyveromyces marxianus NCYC 587,以气爆秸秆为原料进行高温同步糖化发酵。研究结果表明:在42℃条件下,接种体积分数10%,底物质量分数15%,发酵pH值为4.8,β-葡萄糖苷酶添加量为30 U/g底物条件下发酵效果最好。NCYC 587能迅速利用预水解产生的葡萄糖发酵并积累乙醇,同时能利用部分木糖,但在发酵后期,葡萄糖利用完全后会代谢利用一定量的乙醇,致使发酵过程中乙醇质量浓度始终维持在一个相对较低的水平。乙醇最高质量浓度达到20.56 g/L,乙醇产率达80.64%。添加嗜温耐乙醇β-葡萄糖苷酶于高温同步糖化发酵能有效解决纤维素酶解发酵过程终端产物抑制的难题。  相似文献   

7.
糠醛渣纤维乙醇同步糖化发酵过程研究   总被引:5,自引:1,他引:4  
以过碱化处理的糠醛渣为原料,采用正交试验法进行同步糖化发酵(SSF)转化乙醇工艺条件及过程研究.通过考察反应温度、pH、纤维素酶用量和表面活性剂浓度来优化同步糖化发酵转化工艺条件.在正交优化条件基础上,进行了5 L发酵罐试验,并同步分析表征了发酵过程中还原糖浓度、乙醇浓度、酵母细胞数、纤维素含量及其结构变化.同步糖化发酵转化糠醛渣生成乙醇的优化条件为:反应温度38℃,pH 4.2,纤维素酶用量20 FPU/(g纤维素),吐温-20质量分数0.15%,酵母接种量10%.发酵罐中同步糖化发酵糠醛渣生成乙醇的转化率达到72.33%,过程分析表明反应时间为27 h时,糠醛渣糖化发酵产乙醇的转化率达到最高,比其他纤维原料的反应转化时间大大缩短.同步糖化发酵过程中,糠醛渣纤维素含量逐步降低,纤维索表观结晶度呈下降趋势,纤维素微晶尺寸减小.  相似文献   

8.
研究了利用木薯酒精厂废渣为原料发酵生产乙醇的方法,结果表明:经过简单的机械粉碎后,通过同步糖化发酵生产乙醇是可行的。发酵条件为:木薯酒精渣经粉碎后取粒径小于0.85mm的部分,初始料水比1∶8,纤维素酶添加量为每克木薯渣(干重)30FPU,发酵过程中在24h内分批将剩余木薯渣加入至总料水比达到1∶2.5,利用5L发酵罐进行同步糖化发酵,发酵液中乙醇质量浓度达到52g/L,木薯酒精渣到乙醇的收率达到13%。纤维素酶的添加量对发酵效果影响显著,当达到每克木薯渣(干重)50FPU时,发酵液中乙醇质量浓度可达65g/L,乙醇收率达到16%。  相似文献   

9.
赵鹏翔  吴毅  李强 《现代化工》2013,33(3):46-49
纤维素乙醇预处理过程效率偏低是影响纤维素乙醇发展的一个重要因素。通过改进传统蒸汽爆破预处理方法,在蒸汽爆破前加入稀酸浸渍,有效地提高了后续同步糖化发酵的水平。采用硫酸浸渍气爆预处理后的草浆同步糖化发酵乙醇质量浓度达到27.5 g/L,达到葡萄糖乙醇理论产率的81%;采用乙酸浸渍气爆预处理后的草浆同步糖化发酵乙醇质量浓度达到25.5 g/L,达到葡萄糖乙醇理论产率的77%;相比传统气爆草浆用于同步糖化发酵,稀酸预处理能有效地减少抑制物的生成,提高后续直接利用草浆进行同步糖化发酵的水平,从而提高生产效率,降低生产成本,是可应用于工业化纤维素乙醇生产的重要方法。  相似文献   

10.
自絮凝颗粒酵母发酵菊芋汁生产乙醇   总被引:3,自引:0,他引:3  
分别采用分批和连续发酵方式,对自絮凝颗粒酵母Saccharomyces cerevisiae flo发酵菊芋汁生产乙醇的条件进行了优化. 与先酶解菊芋汁后再用自絮凝酵母发酵的分步糖化发酵相比,分批发酵过程中同时加入菊粉酶和自絮凝酵母的同步糖化发酵乙醇得率高,发酵时间短. 当菊芋汁总糖浓度分别为105和179 g/L时,同步糖化发酵的最高乙醇浓度达50和82.5 g/L,比分步糖化发酵高6.4%和13.8%. 在连续发酵过程中应用同步糖化发酵法,当稀释率为0.02 h-1时,乙醇浓度约为90 g/L时达到稳定状态,乙醇得率达到理论值的90%,生产强度达2.12 g/(L×h).  相似文献   

11.
木薯干原料同步糖化发酵生产乙醇   总被引:42,自引:0,他引:42  
提出了用木薯干为原料,同步糖化发酵(SSF)开发燃料乙醇的新工艺. 对各个影响条件进行了研究,获得了最佳的工艺条件:原料粉碎粒度0.45 mm,加水比2.8, 100℃下蒸煮30 min,a-淀粉酶、糖化酶的添加量分别为10, 180 U/g, 30℃下发酵48 h. 并与普通的先糖化后发酵(SHF)生产模式进行了对比,认为SSF具有工艺简单、能耗低、发酵迅速、醪液酒精度高等众多优点,值得工业推广.  相似文献   

12.
Due to its merits of drought tolerance and high yield, sweet potatoes are widely considered as a potential alterative feedstock for bioethanol production. Very high gravity (VHG) technology is an effective strategy for improving the efficiency of ethanol fermentation from starch materials. However, this technology has rarely been applied to sweet potatoes because of the high viscosity of their liquid mash. To overcome this problem, cellulase was added to reduce the high viscosity, and the optimal dosage and treatment time were 8 U/g (sweet potato powder) and 1 h, respectively. After pretreatment by cellulase, the viscosity of the VHG sweet potato mash (containing 284.2 g/L of carbohydrates) was reduced by 81%. After liquefaction and simultaneous saccharification and fermentation (SSF), the final ethanol concentration reached 15.5% (v/v), and the total sugar conversion and ethanol yields were 96.5% and 87.8%, respectively.  相似文献   

13.
张强 《化工进展》2015,34(1):91-94,126
餐厨垃圾是指家庭、学校、食堂以及餐饮行业的食物废料和残余,是城市生活垃圾的重要组成部分。本文以学校食堂餐厨垃圾为原料,利用酿酒酵母对餐厨垃圾同步糖化发酵生产燃料酒精的工艺进行了研究。正交试验表明糖化酶和蛋白酶对酒精发酵影响显著,纤维素酶影响较小,糖化酶最适添加量为100U/g,蛋白酶最适添加量为150U/g,纤维素酶为100U/g,自然pH值(5.3)发酵,最佳的发酵周期是120h,最终酒精浓度达到54.6g/L。发酵过程无需添加其他营养物质,说明餐厨垃圾本身所含的营养物质即可以满足菌体生长的需要。  相似文献   

14.
Studies on simultaneous saccharification and fermentation (SSF) of wheat bran flour, a grain milling residue as the substrate using coculture method were carried out with strains of starch digesting Aspergillus niger and nonstarch digesting and sugar fermenting Kluyveromyces marxianus in batch fermentation. Experiments based on central composite design (CCD) were conducted to maximize the glucose yield and to study the effects of substrate concentration, pH, temperature, and enzyme concentration on percentage conversion of wheat bran flour starch to glucose by treatment with fungal α-amylase and the above parameters were optimized using response surface methodology (RSM). The optimum values of substrate concentration, pH, temperature, and enzyme concentration were found to be 200 g/L, 5.5, 65°C and 7.5 IU, respectively, in the starch saccharification step. The effects of pH, temperature and substrate concentration on ethanol concentration, biomass and reducing sugar concentration were also investigated. The optimum temperature and pH were found to be 30°C and 5.5, respectively. The wheat bran flour solution equivalent to 6% (w/V) initial starch concentration gave the highest ethanol concentration of 23.1 g/L after 48 h of fermentation at optimum conditions of pH and temperature. The growth kinetics was modeled using Monod model and Logistic model and product formation kinetics using Leudeking-Piret model. Simultaneous saccharificiation and fermentation of liquefied wheat bran starch to bioethanol was studied using coculture of amylolytic fungus A. niger and nonamylolytic sugar fermenting K. marxianus.  相似文献   

15.
研究了甘薯渣同步糖化发酵乙醇的最佳工艺条件,考察了不同酵母接种量、水料比、发酵时间和 pH 对甘薯渣发酵乙醇的影响。通过单因素、正交试验,最终确定同步糖化发酵乙醇的最佳条件为:接种量1.4%,水料比25:1,发酵时间108h,pH 5.5。在此条件下乙醇得率为34.78%,糖利用率为73.76%。  相似文献   

16.
Studies on simultaneous saccharification and fermentation (SSF) of wheat bran flour, a grain milling residue as the substrate using coculture method were carried out with strains of starch digesting Aspergillus niger and nonstarch digesting and sugar fermenting Kluyveromyces marxianus in batch fermentation. Experiments based on central composite design (CCD) were conducted to maximize the glucose yield and to study the effects of substrate concentration, pH, temperature, and enzyme concentration on percentage conversion of wheat bran flour starch to glucose by treatment with fungal α-amylase and the above parameters were optimized using response surface methodology (RSM). The optimum values of substrate concentration, pH, temperature, and enzyme concentration were found to be 200 g/L, 5.5, 65°C and 7.5 IU, respectively, in the starch saccharification step. The effects of pH, temperature and substrate concentration on ethanol concentration, biomass and reducing sugar concentration were also investigated. The optimum temperature and pH were found to be 30°C and 5.5, respectively. The wheat bran flour solution equivalent to 6% (w/V) initial starch concentration gave the highest ethanol concentration of 23.1 g/L after 48 h of fermentation at optimum conditions of pH and temperature. The growth kinetics was modeled using Monod model and Logistic model and product formation kinetics using Leudeking-Piret model. Simultaneous saccharificiation and fermentation of liquefied wheat bran starch to bioethanol was studied using coculture of amylolytic fungus A. niger and nonamylolytic sugar fermenting K. marxianus.  相似文献   

17.
陈鑫  杨敏丽 《广州化工》2010,38(4):65-68
以马铃薯干粉为原料进行酒精浓醪发1:2.2酵,对液化过程中的条件进行了研究和优化,得出最佳的液化条件为:液化pH值5.0~6.0;液化酶用量为10U/g马铃薯粉;温度90℃;料水比为1:2.2;液化时间为1h,在此条件下,液化醪还原糖含量达到14%~15%,为后续的糖化和浓醪发酵奠定基础。  相似文献   

18.
Cellulose rich barley straw, which has a glucan content of 62.5%, followed by dilute acid pretreatment, was converted to bioethanol by simultaneous saccharification and fermentation (SSF). The optimum fractionation conditions for barley straw were an acid concentration of 1% (w/v), a reaction temperature of 158 °C and a reaction time of 15 min. The maximum saccharification of glucan in the fractionated barley straw was 70.8% in 72 h at 60 FPU/gglucan, while the maximum digestibility of the untreated straw was only 18.9%. With 6% content WIS (water insoluble solid) for the fractionated barley straw, 70.5 and 83.2% of the saccharification yield were in SHF and SSF (representing with glucose equivalent), respectively, and a final ethanol concentration of 18.46 g/L was obtained under the optimized SSF conditions: 34 °C with 15 FPU/g-glucan enzyme loading and 1 g dry yeast cells/L. The results demonstrate that the SSF process is more effective than SHF for bioethanol production by around 18%.  相似文献   

19.
The batch simultaneous saccharification and fermentation (SSF) of microwave/acid/alkali/H2O2 pretreated rice straw to ethanol was optimized using cellulase from Trichoderma reesei and Saccharomyces cerevisiae YC-097 cells prior to the fed-batch SSF studies. The batch SSF optima were 10% w/v substrate, 40°C, 15 mg cellulase/g substrate, initial pH 5.3, and 72 hours. Under the optimum conditions the ethanol concentration and its yield were 29.1 g/L and 61.3% respectively. Based on the optimal batch SSF, the fed-batch SSF was investigated and its operation parameters were optimized. Under its optimal conditions the ethanol concentration reached 57.3 g/L, while its productivity and yield were only slightly less than those in the batch SSF. This suggests that fed-batch SSF is a potential operation mode for effective ethanol production from microwave/acid/alkali/H2O2 pretreated rice straw.  相似文献   

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