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1.
利用响应面法对稀碱-Fenton反应预处理竹粉的条件进行优化,确定最佳的Fenton预处理条件为:1 g 稀碱预处理后竹粉底物加入质量分数30 %的 H2O2 溶液3.4 mL,Fe2+浓度15.8 mmol/L,反应时间12 h,获得的 72 h 酶水解得率为49.98%。与原料和经2%NaOH 预处理后的样品相比,经2%NaOH-Fenton 预处理后的样品中纤维素含量升高,半纤维素和木质素含量降低,72 h酶水解得率为48.24%,分别提高了47.79和37.44个百分点。当纤维素酶和β-葡萄糖苷酶的用量分别为32 FPIU/g和16 IU/g(以纤维素质量计)时,72 h 酶水解得率为76.64%,比单独使用纤维素酶时的酶水解得率提高了22.80%。  相似文献   

2.
采用两段稀酸水解法对用质量分数为5%氢氧化钠溶液预处理后的蔗渣进行了水解糖化研究,考察了液固比、硫酸体积分数、反应时间及催化剂硫酸亚铁对葡萄糖得率及纤维素水解率的影响。结果表明:第一段主要是半纤维素水解,以及少量纤维素水解,最优条件为液固比10 mL/g,硫酸体积分数3%,在121℃下反应3 h,葡萄糖得率为22.16%,纤维素水解率为25.98%;对残渣继续第二段水解,最优条件为液固比8 mL/g,硫酸体积分数为8%,硫酸亚铁质量分数1%,在121℃下反应5.5 h,葡萄糖得率为41.05%,纤维素水解率为56.36%;采用两段稀酸水解法水解蔗渣,葡萄糖总得率为52.68%,纤维素总水解率为67.70%。  相似文献   

3.
亚硫酸钠预处理提高稻草酶水解糖化效率的研究   总被引:1,自引:0,他引:1  
研究了亚硫酸钠预处理对稻草化学组分变化及酶水解性能的影响。结果表明,提高温度或增加Na2SO3用量可以脱除更多的木质素和半纤维素,酶水解效率也相应提高,但木质素脱除率达到50%以后,继续增强预处理条件,对酶水解糖得率无显著的促进作用。相比而言,加大Na2SO3用量更有利于使木质素溶出,提高温度更有利于使高聚糖溶出,加大Na2SO3用量比提高温度对酶水解效率的提高影响更显著。通过实验得到亚硫酸钠预处理稻草的最优条件,在温度为140℃,Na2SO3用量为16%,纤维素酶用量为20 FPU/g(对纤维素)时,总糖转化率达到最大,为74.9%,此时的总糖得率为43.5%。  相似文献   

4.
稀硫酸催化水解稻草秸秆半纤维素的研究   总被引:1,自引:0,他引:1  
对稀硫酸催化水解稻草秸秆半纤维素进行了研究.考察了固液比、稀硫酸质量分数、反应温度、反应时间对半纤维素水解的影响.采用正交实验法,以总还原糖含量为考察指标,对实验结果进行直观和方差分析,探讨稀硫酸催化水解半纤维素的最优反应条件.结果表明,稀硫酸催化水解稻草秸秆半纤维素以固液比(质量体积比)1:10、稀硫酸质量分数25%、反应温度95℃、反应3h为最优条件,在此条件下,10g稻草秸秆粉末水解得到总还原糖2.704g,总还原糖收率达94.9%.  相似文献   

5.
以橡子壳为木质纤维素原料,考察了酸法预处理对其化学组成变化以及酶水解得率的影响,并采用电子扫描电镜(SEM)、红外光谱(IR)和X射线衍射分析(XRD)对橡子壳纤维结构特征进行了表征。结果表明:橡子壳用2%硫酸溶液按固液比1∶8(g∶mL)室温处理48 h,半纤维素和木质素去除率分别为21.6%和6.6%;酶水解得率从42.8%增加至71.4%,总体葡萄糖产率达到71.2%,提高了66.4%。经过121℃(0.15 MPa)处理1 h,半纤维素和木质素的去除率分别为84.6%和24.5%。酶水解得率为72.1%,较处理前提高了68.5%,但由于纤维素损失率较高,导致总体葡萄糖产率增幅不大。经过酸处理后,橡子壳纤维比表面积增大、表面孔洞增加,纤维结构的结晶度下降,有利于纤维素酶水解作用的进行。  相似文献   

6.
本研究以提高纤维素转化率和还原糖得率为目标,以玉米秸秆制备的碳基固体酸为催化剂,采用Na OH冷冻-HCl再生为预处理方法,考察了预处理过程中Na OH浓度及纤维素水解过程中水解温度和水解时间对纤维素水解效果的影响。结果表明,在水解温度180℃、水解时间3h、纤维素0.15g、催化剂用量0.45g的条件下,纤维素水解还原糖得率38.78%,纤维素的转化率45.6%,与相同工艺条件下未经预处理的纤维素相比,还原糖得率及纤维素转化率分别提高了30.88%和31.1%,说明Na OH冷冻-HCl再生处理纤维素能够辅助提高碳基固体酸催化水解纤维素的效率。  相似文献   

7.
探讨了不同Na2CO3用量下两段碳酸钠―氧(Na2CO3-O2)预处理对麦草化学成分及酶水解效率的影响。Na2CO3-O2预处理麦草浆料得率随Na2CO3用量增大而下降,木质素脱除率随之增加。预处理后废液的pH值约为9,可有效避免碳水化合物的碱性水解和二次剥皮反应,保持较高的预处理浆料得率。预处理后浆料经过由纤维素酶、木聚糖酶和β-纤维二糖酶组合而成的混合酶水解,当预处理Na2CO3用量(以Na2O计)从12%增至18%时,预处理浆料总糖得率的增加较为显著。经20 PFU/g纤维素酶水解48 h后,总用碱量为18%的两段Na2CO3-O2预处理浆料的酶水解总糖得率为40.8%,总糖转化率为67.0%。  相似文献   

8.
以湖北稻草秸秆为研究对象,研究了超低酸水解木质纤维素的适宜条件,测定了适宜条件下的超低酸法水解15种不同种类秸秆的纤维素及半纤维素的转化率、还原糖得率及结晶度的变化。实验结果表明:秸秆投料量3 g、硫酸投料量45 mL(硫酸质量分数0.05%)、搅拌转速500 r/min、反应温度210 ℃、反应时间10 min为适宜的水解条件。对15种不同种类秸秆的水解结果统计得到,随着秸秆中木质素含量的增大,纤维素和半纤维素的转化率都逐渐降低,还原糖得率逐渐降低;通过SEM和X衍射分析水解前后的木质纤维素结构,得到了木质素影响水解过程的方式:1)木质素含量越大,纤维素的结晶度越大,纤维素的非晶化越困难,从而影响了纤维素的水解;2)原木质素不溶于反应体系且在酸性条件下相对稳定,富木质素层的木质素阻碍反应物与产物扩散,使富木质素层内的纤维素、半纤维素水解速率降低;3)木质素含量越高,木质纤维素的富木质素层越厚、强度越大,水解时难以从颗粒表面脱落,进一步降低水解速率。  相似文献   

9.
玉米秸秆蒸爆渣的氨基酸辅助纤维素酶水解   总被引:4,自引:1,他引:3  
以商品纤维素酶C2730酶解玉米秸秆蒸汽爆破渣,研究了不同氨基酸、氨基酸浓度、温度对水洗蒸汽爆破渣纤维素酶水解的影响,优化纤维素酶水解条件,提高纤维素酶水解得率。实验结果表明,纤维素酶水解蒸汽爆破渣的优化氨基酸为苯丙氨酸,优化水解条件为每克纤维素酶用量15FPIU,苯丙氨酸质量浓度为1.5 g/L,温度为50℃,水解时间为48 h,还原糖和葡萄糖得率分别为51.38%和36.78%。  相似文献   

10.
采用分段酶水解木质纤维原料的方法,以NaOH-Fenton试剂预处理桑木为原料,通过在反应过程中及时移除葡萄糖和纤维二糖,减轻产物的抑制作用,最终达到提高酶水解得率和缩短酶解反应时间的目的。实验结果表明:纤维素酶用量为15FPIU/g(以纤维素计,下同)时,在三段(8+8+8h)水解过程中,经第一段水解,纤维素酶反应速率从1.25g/(L·h)提高到2.21g/(L·h),第二段水解后,酶反应速率为1.54g/(L·h),比未分段水解的酶反应速率提高了73%;当纤维素酶用量为40FPIU/g时,三段(8+8+8h)水解得率增至88.08%;三段(8+8+8h)水解充分利用了酶解残渣上的结合酶进行后续水解。对纤维素酶在预处理桑木上的吸附情况进行研究,发现桑木经NaOH-Fenton试剂预处理后,对纤维素酶的最大吸附量为8.08mg/g,预处理增加了纤维素酶与桑木间的吸附位点。  相似文献   

11.
The pretreatment of lignocellulosic residues has been extensively studied as a method to disrupt the cellulose–hemicelluloses–lignin complex in biomass to access the sugars in their respective components. In this work, we carried out a study using sulfuric acid pretreatment of sugarcane bagasse by varying the following operational parameters: solid loading (10–30% of bagasse relative to the volume of the sulfuric acid solution), sulfuric acid concentration (0.5–2.5% relative to the dry mass of bagasse), reaction time (5–25?min), and temperature (135–195°C). The obtained solids from each pretreatment condition were submitted to enzymatic hydrolysis under the same process conditions: 0.232?g of Celluclast 1.5?L and 0.052?g of Novozym 188 per g of pretreated sugarcane bagasse, 72?h of hydrolysis, and 200?rpm of agitation at 50°C. Using central composite rotational design configuration in the experiments and analysis of variance, the results indicate that the conditions that produced larger quantities of glucose by enzymatic hydrolysis (0.35?g glucose/g pulp) with minimum amounts of degradation products were as follows: 20% solids loading, 15?min of reaction time, 1.5% sulfuric acid, and a minimum temperature of reaction of 170°C.  相似文献   

12.
研究了121℃下硫酸和氢氧化钠预处理对麻竹酶水解还原糖收率的影响,测定了不同预处理液质量分数和预处理时间对还原糖收率的影响,以及预处理后的预处理液中还原糖含量。结果表明,氢氧化钠预处理能显著提高还原糖收率,在氢氧化钠质量分数为2%,预处理时间60min时还原糖收率可达0.367g/gDS。硫酸预处理对还原糖收率的提高幅度不大。但硫酸预处理后的预处理液中还原糖含量较高,在硫酸预处理液质量分数为2%,预处理时间为90min时还原糖收率可达0.152g/gDS。两种预处理方法在121℃下的还原糖收率均高于100℃下的还原糖收率。  相似文献   

13.
预处理可以打破木质纤维素原料纤维素、半纤维素和木质素三大组分间的顽抗结构,从而提升纤维素基质可酶解性。本文针对目前常压甘油有机溶剂预处理花费时间过长的问题,尝试开展酸催化的常压甘油有机溶剂预处理研究以缩短预处理时间。实验通过单因素选择和响应面Box-Behnken设计优化,获得酸催化常压甘油有机溶剂预处理的最佳条件为:预处理温度245℃,预处理时间38min,硫酸添加质量0.1%。在此条件下获得基质48h酶解率的响应面预测值为94.0%,实际值为91.4%。结果表明响应面优化方案和回归模型适用于本实验,预处理显著提高了基质可酶解性。高浓度基质(15%~20%)酶解进一步证明了预处理后基质具有突出的可酶解性,20%浓度基质在酶载量5FPU/g干基质条件下批次酶解72h,酶解率达60%,葡萄糖浓度达83.4g/L。酸催化常压甘油有机溶剂酸预处理在明显缩短预处理时间的同时,能显著提高木质纤维素基质可酶解性,使后续工业化意义的浓醪酶解糖化成为可能。  相似文献   

14.
Although many previous studies have been carried on the enzymatic hydrolysis of corn stover after pretreatment with dilute sulfuric acid, this paper emphasizes the use of different conditions to attain the highest yields of two sugars, xylose and glucose, from both stages. The pretreatment was performed at a range of sulfuric acid concentrations of 2, 4 and 6 % at 80, 100 and 120 °C. Up to 77 % xylose yield was obtained while the glucose yield was only 8.4 %. The corresponding solid phase was hydrolyzed by cellulase and the influences of five factors and their interactions on enzyme hydrolysis were evaluated by response surface methodology based on one‐factor‐at‐a‐time experiments. The optimal levels for each variable to obtain the highest reducing sugar yield were as follows: enzyme concentration of 22 FPU/g substrate, substrate concentration of 77 g/L, temperature of 49 °C, pH 4.8 and reaction time of 38 h. A reducing sugar yield of 42.11 g/100 g substrate was achieved, which was consistent with the predicted value of 42.13 g/100 g substrate. Compared with the one‐factor‐at‐a‐time experiments, there was a 9.4 % increase in reducing sugar yield when the enzyme concentration was decreased to 3 FPU/g substrate, the substrate concentration increased to 17 g/L and the reaction time dropped to 22 h. The total sugar released from the two stages was 62.81 g/100 g substrate.  相似文献   

15.
Oil palm frond (OPF) fiber, a lignocellulosic waste from the palm oil industry, contains high cellulose and hemicellulose content, thus it is a potential feedstock for simple sugars production. This paper describes the two-stage hydrolysis process focusing on the use of low-temperature dilute acid hydrolysis to convert the hemicellulose in OPF fiber to simple sugars (xylose, arabinose, and glucose). The objective of the present study was to evaluate the effect of operating conditions of dilute sulfuric acid hydrolysis undertaken in a 1 L self-built batch reactor on xylose production from OPF fiber. The reaction conditions were temperatures (100–140°C), acid concentrations (2–6%), and reaction times (30–240 min). The mass ratio of solid/liquid was kept at 1:30. Analysis of the three main sugars glucose, xylose, and arabinose were determined using high-pressure liquid chromatography. The optimum reaction temperature, reaction time, and acid concentration were found to be 120°C, 120 min, and 2% acid, respectively. Based on the potential amount of xylose (10.8 mg/mL), 94% conversion (10.15 mg/mL) was obtained under the optimum conditions with small amount of furfural (0.016 mg/mL). To enhance the effectiveness of dilute acid hydrolysis, the hydrolysis of OPF fiber was also performed using ultrasonic-pretreated OPF fiber. The effects of ultrasonic parameters power (40–80%) and ultrasonication times (20–60 min) were determined on sugar yields under optimum hydrolysis conditions (2% acid sulfuric, 120°C and 120 min). However, the use of ultrasonication was found to have detrimental effect on the yield of simple sugars due to the 10-fold increase in the formation of furfural.  相似文献   

16.
Five elephant grass cultivars, Pennisetum purpureum. cv. Huanan (Huanan), P. purpureum. cv. N51 (N51), P. purpureum. cv. Sumu No. 2 (Sumu-2), (Pennisetum americanum × P. purpureum) × P. purpureum cv. Guimu No. 1 (Guimu-1) and P. americanum cv. Tift23A × P. purpureum cv. Tift N51 (Hybrid Pennisetum), at three harvest stages were studied. With dilute sulfuric acid pretreatment followed by enzymatic hydrolysis, it is found that cel-lulose conversion of the five elephant grass cultivars harvested in August and September is higher than that har-vested in October. The cellulose conversion for elephant grass cultivars harvested in August and September follows an order of Hybrid Pennisetum N Sumu-2 N Huanan N Guimu-1 N N51. This may be explained by the fact that lignification is gradual y strengthened with time, inhibiting degradation of cellulose and hemicellulose. Moreover, cellulose conversions of Hybrid Pennisetum, Sumu-2 and Huanan harvested in August and September are higher based on hierarchical clustering results.  相似文献   

17.
采用过氧化氢-乙酸(HPAC)对甘蔗渣(SCB)进行了联合预处理。以预处理后的甘蔗渣为原料, 先进行酶水解, 然后将水解液进行乙醇发酵, 探讨预处理对甘蔗渣酶解和发酵的影响。实验结果表明: 20 g甘蔗渣, 加入150 mL过氧化氢水溶液(75 mL过氧化氢(30%)和75 mL水)和150 mL乙酸(99%), 硫酸用量为过氧化氢-乙酸溶液体积的0.5%, 在70 ℃反应2 h时, HPAC预处理脱除了88.85%的木质素, 并使90.10%的纤维素保留在底物中。底物(HPAC/70-SCB-0.5)的酶可及度是80.30 mg/g, 与相同条件下单独过氧化氢预处理(HP/70-SCB)和单独乙酸预处理(AC/70-SCB)相比, 分别增加了38.26%和31.08%, 甘蔗渣木质素的表面覆盖率从原料的0.66降低至0.22。酶解上清液在酶用量为5 FPIU/g(以底物计)条件下水解后, 葡萄糖得率是87.63%, 分别是HP/70-SCB和AC/70-SCB的6.89和20.62倍, 发酵产乙醇质量浓度是7.57 g/L, 分别是HP/70-SCB和AC/70-SCB的7.65和22.94倍。  相似文献   

18.
BACKGROUND: Lignocellulose should undergo pretreatment to enhance its enzymatic digestibility before being saccharified. Peracetic acid (PAA) is a strong oxidant that can remove lignin under mild conditions. The sulfuric acid in the PAA solution also can cause degradation of hemicelluloses. The objective of the present work is to investigate the effect of several factors on peracetic acid pretreatment of sugarcane bagasse. RESULTS: It was found that PAA charge, liquid/solid (l/s) ratio, temperature, time, interactions between PAA charge and l/s ratio, temperature and time, all had a very significant effect on the enzymatic conversion ratio of cellulose. The relative optimum condition was obtained as follows: PAA charge 50%, l/s ratio 6:1, temperature 80 °C and time 2 h. More than 80% of the cellulose in bagasse treated under the above conditions was converted to glucose by cellulase of 20 FPU g?1 cellulose. Compared with H2SO4 and NaOH pretreatments under the same mild conditions, PAA pretreatment was the most effective for enhancement of enzymatic digestibility. CONCLUSION: PAA pretreatment could greatly enhance the enzymatic digestibility of sugarcane bagasse by removing hemicelluloses and lignin, but removal of lignin was more helpful. This study can serve as a step to further optimization of PAA pretreatment and understanding the mechanism of enhancement of enzymatic digestibility. Copyright © 2007 Society of Chemical Industry  相似文献   

19.
用微波可高效对生物质烘焙预处理,考察了不同微波烘焙过程对玉米秸秆主要组分的降解作用及酸、碱、甘油催化剂对纤维素转化效率的影响,并对预处理的玉米秸秆进行酶解实验。结果表明,单纯的微波预处理对玉米秸秆中主要组分纤维素、半纤维素和木质素均有强烈的转化作用。无催化剂微波烘焙后,样品中纤维素含量降低了30%。在微波烘焙中添加酸、碱、甘油催化剂,可选择性降解玉米秸秆中的半纤维素或木质素,有效提高预处理后玉米秸秆中的纤维素含量,添加NaOH后纤维素含量增加最明显,由33%增至42%,纤维素最高转化率达65%。  相似文献   

20.
殷艳飞 《精细化工》2011,28(12):1173-1177,1182
研究了在氨水中添加少量KOH或K3PO4预处理慈竹机械浆(RMP)的工艺。考察了预处理条件对酶解还原糖产率的影响。单因素实验得到氨水加KOH最佳预处理条件为:预处理温度120℃、固液比〔即1 g绝干浆加入液体的体积(mL),下同〕1∶6、时间3.5 h、氨水用量70%(即氨水质量占绝干浆质量的百分数,下同)、KOH用量5%(即KOH质量占绝干浆质量的百分数,下同)。在此最佳条件下,慈竹RMP的纤维素保留率为90.66%,半纤维素保留率为92.90%,木质素脱除率为41.05%;在pH=4.8、加酶量20 FPU/g预处理后底物、反应温度50℃的条件下酶解24 h,还原糖产率为23.95%,纤维素转化率为44.61%。虽然氨水加K3 PO4预处理酶解纤维素转化率可达56.95%,但是纤维素保留率仅为74.59%,与氨水加KOH相比,纤维素损失较大。  相似文献   

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