期刊论文详细信息
Biotechnology for Biofuels
A novel cost-effective technology to convert sucrose and homocelluloses in sweet sorghum stalks into ethanol
Jihong Li1  Shizhong Li1  Bing Han1  Menghui Yu1  Guangming Li1  Yan Jiang1 
[1] Beijing Engineering Research Center of Biofuels, MOST-USDA joint research center for biofuels, Beijing 100084, People’s Republic of China
关键词: Bioethanol;    Solid-state fermentation;    Alkaline pretreatment;    Sweet sorghum stalks;   
Others  :  794463
DOI  :  10.1186/1754-6834-6-174
 received in 2013-06-21, accepted in 2013-10-22,  发布年份 2013
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【 摘 要 】

Background

Sweet sorghum is regarded as a very promising energy crop for ethanol production because it not only supplies grain and sugar, but also offers lignocellulosic resource. Cost-competitive ethanol production requires bioconversion of all carbohydrates in stalks including of both sucrose and lignocellulose hydrolyzed into fermentable sugars. However, it is still a main challenge to reduce ethanol production cost and improve feasibility of industrial application. An integration of the different operations within the whole process is a potential solution.

Results

An integrated process combined advanced solid-state fermentation technology (ASSF) and alkaline pretreatment was presented in this work. Soluble sugars in sweet sorghum stalks were firstly converted into ethanol by ASSF using crushed stalks directly. Then, the operation combining ethanol distillation and alkaline pretreatment was performed in one distillation-reactor simultaneously. The corresponding investigation indicated that the addition of alkali did not affect the ethanol recovery. The effect of three alkalis, NaOH, KOH and Ca(OH)2 on pretreatment were investigated. The results indicated the delignification of lignocellulose by NaOH and KOH was more significant than that by Ca(OH)2, and the highest removal of xylan was caused by NaOH. Moreover, an optimized alkali loading of 10% (w/w DM) NaOH was determined. Under this favorable pretreatment condition, enzymatic hydrolysis of sweet sorghum bagasse following pretreatment was investigated. 92.0% of glucan and 53.3% of xylan conversion were obtained at enzyme loading of 10 FPU/g glucan. The fermentation of hydrolyzed slurry was performed using an engineered stain, Zymomonas mobilis TSH-01. A mass balance of the overall process was calculated, and 91.9 kg was achieved from one tonne of fresh sweet sorghum stalk.

Conclusions

A low energy-consumption integrated technology for ethanol production from sweet sorghum stalks was presented in this work. Energy consumption for raw materials preparation and pretreatment were reduced or avoided in our process. Based on this technology, the recalcitrance of lignocellulose was destructed via a cost-efficient process and all sugars in sweet sorghum stalks lignocellulose were hydrolysed into fermentable sugars. Bioconversion of fermentable sugars released from sweet sorghum bagasse into different products except ethanol, such as butanol, biogas, and chemicals was feasible to operate under low energy-consumption conditions.

【 授权许可】

   
2013 Li et al.; licensee BioMed Central Ltd.

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【 参考文献 】
  • [1]Bailey BK: Performance of ethanol as a transportation fuel. In handbook on bioethanol: production and utilization. Edited by Wyman CE. Washington DC: Taylor and Francis; 1996:37-60.
  • [2]Sipos B, Reczey J, Somorai Z, Kada Z, Dienes D, Reczey K: Sweet sorghumas feedstock for ethanol production: enzymatic hydrolysis of steam-pretreatedbagasse. Appl Biochem Biotechnol 2009, 153:151-162.
  • [3]Ratnavathi C, Chakravarthy S, Komala V, Chavan U, Patil J: Sweet sorghum as feedstock for biofuel production: a review. Sugar Tech 2011, 13:399-407.
  • [4]Matsakas L, Christakopoulos P: Optimization of ethanol production from high drymatter liquefied dry sweet sorghum stalks. Biomass Bioenerg 2013, 51:91-98.
  • [5]FAO: Sweet sorghum in China. Rome, Italy: Food and Agriculture Organization of the United Nations (FAO); 2002.
  • [6]Li SZ, Chan-Halbrendt C: Ethanol production in (the) People’s Republic of China: potential and technologies. Appl Energy 2009, 86:S162-S169.
  • [7]Gnansounou E, Dauriat A, Wyman CE: Refining sweet sorghum to ethanol and sugar: economic trade-offs in the context of North China. Bioresour Technol 2005, 96:985-1002.
  • [8]Chohnan S, Nakane M, Rahman MH, Nitta Y, Yoshiura T, Ohta H, Kurusu Y: Fuel ethanol production from sweet sorghumusing repeated batch fermentation. J Biosci Bioeng 2011, 111:433-436.
  • [9]Ratnavathi CV, Suresh K, Kumar BSV, Pallavi M, Komala VV, Seetharama N: Study on genotypic variation for ethanolproduction from sweet sorghum juice. Biomass Bioenerg 2010, 34:947-952.
  • [10]Wang EQ, Li SZ, Tao L, Geng X, Li TC: Modeling of rotating drum bioreactor for anaerobic solid-state fermentation. Appl Energy 2010, 87:2839-2845.
  • [11]Yu ZL, Zhang X, Tan TW: Ethanol production by solid state fermentation of sweet sorghum using thermotolerant yeast strain. Fuel Process Technol 2008, 89:1056-1059.
  • [12]Bryan WL: Solid-state fermentation of sugars in sweet sorghum. Enzyme and microb technol 1990, 12:437-442.
  • [13]Yu J, Zhong J, Zhang X, Tan T: Ethanol production from H2SO3-steampretreatedfresh sweet sorghum stem by simultaneous saccharification andfermentation. Appl Biochem Biotechnol 2010, 160:401-409.
  • [14]Sun Y, Cheng J: Hydrolysis of lignocellulosic materials forethanol production: a review. Bioresour Technol 2002, 83:1-11.
  • [15]Antizar-Ladislao B, Turrion-Gomez J: Second-generation biofuels and local bioenergy systems. Biofuels Bioprod Bior 2008, 2:455-469.
  • [16]Agbor VB, Cicek N, Sparling R, Berlin A, Levin DB: Biomass pretreatment: fundamentals toward application. Biotechnology Adv 2011, 29:675-685.
  • [17]Taherzadeh MJ, Karimi K: Pretreatment of lignocellulosic wastes to improve ethanol and biogas production: a review. Int J Mol Sci 2008, 9:1621-1651.
  • [18]Xu J, Cheng JJ, Sharma-Shivappa RR, Burns JC: Sodium hydroxide pretreatment of switchgrass for ethanol production. Energy Fuels 2010, 24:2113-2119.
  • [19]Zhang J, Ma X, Yu J, Zhang X, Tan T: The effects of four different pretreatments on enzymatic hydrolysis of sweet sorghum bagasse. Bioresour Technol 2011, 102:4585-4589.
  • [20]Cao WX, Sun C, Liu RH, Yin RZ, Wu XW: Comparison of the effects of five pretreatment methods on enhancing the enzymatic digestibility and ethanol production from sweet sorghum bagasse. Bioresour Technol 2012, 111:215-221.
  • [21]Billa E, Koullas DP, Monties B, Koukios EG: Structure and composition of sweet sorghum stalk components. Ind Crop Prod 1997, 6:297-302.
  • [22]Li SZ, Li GM, Zhang L, Zhou Z, Han B, Hou W, Wang J, Li T: A demonstration study of ethanol production from sweet sorghum stems with advanced solid state fermentation technology. Appl Energy 2013, 102:260-265.
  • [23]Mclntosh S, Vancov T: Ethanol enzyme saccharification of Sorghum bicolor straw using dilute alkali pretreatment. Bioresour Technol 2010, 101:6718-6727.
  • [24]Gupta R, Lee YY: Investigation of biomass degradation mechanism inpretreatment of switchgrass by aqueous ammonia and sodiumhydroxide. Bioresour Technol 2010, 101:8185-8191.
  • [25]Rabelo SC, Filho RM, Costa AC: Lime pretreatment and fermentation of enzymatically hydrolyzed sugarcane bagasse. Appl Biochem Biotechnol 2013, 169:1696-1712.
  • [26]Chen Y, Stevens MA, Zhu Y, Holmes J, Xu H: Understanding of alkaline pretreatment parameters for corn stover enzymaticsaccharification. Biotech for Biofuels 2013, 6:1-10. BioMed Central Full Text
  • [27]Chang VS, Holtzapple MT: Fundamental factors affecting biomass enzymatic reactivity. Appl Biochem Biotechnol 2000, 84–86:5-37.
  • [28]Laureno-Perez L, Teymouri F, Alizadeh H, Dale B: Understanding factors that limit enzymatic hydrolysis of biomass characterization of pretreated corn stover. Appl Biochem Biotechnol 2005, 124:1081-1099.
  • [29]Gable M, Sassner P, Wingren A, Zacchi G: Process engineering economics of bioethanol production. Adv Biochem Eng/Biotechnol 2007, 108:303-327.
  • [30]Lai YZ: Wood and Cellulose Chemistry. In Chemical Degradation. 2nd edition. Edited by Hon DNS, Shiraishi N. New York: Marcel Dekker Inc; 1991:455-473.
  • [31]Zhu JY, Zhuang XS: Conceptual net energy output for biofuel production from lignocellulosic biomass through biorefining. Prog Energ Combust 2012, 38:583-598.
  • [32]Farrell AE, Plevin RJ, Turner BT, Jones AD, O’Hare M, Kammen DM: Ethanol can contribute to energy and environmental goals. Science 2006, 311:506-508.
  • [33]Sluiter A, Hames B, Ruiz R, Scarlata C, Sluiter J, Templeton D, Crocker D: Determination of structural carbohydrates and lignin in biomass: Laboratory Analytical Procedure. 2008. NREL/TP-510-42618. Updated 2010
  • [34]Sluiter A, Hyman D, Payne C, Wolfe J: Determination of total solids in biomass and total dissolved solids in liquid process samples. http://www.nrel.gov/biomass/pdfs/42621.pdf webcite
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