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Impact of pretreatment and downstream processing technologies on economics and energy in cellulosic ethanol production

机译:预处理和下游加工技术对纤维素乙醇生产中的经济和能源的影响

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Background While advantages of biofuel have been widely reported, studies also highlight the challenges in large scale production of biofuel. Cost of ethanol and process energy use in cellulosic ethanol plants are dependent on technologies used for conversion of feedstock. Process modeling can aid in identifying techno-economic bottlenecks in a production process. A comprehensive techno-economic analysis was performed for conversion of cellulosic feedstock to ethanol using some of the common pretreatment technologies: dilute acid, dilute alkali, hot water and steam explosion. Detailed process models incorporating feedstock handling, pretreatment, simultaneous saccharification and co-fermentation, ethanol recovery and downstream processing were developed using SuperPro Designer. Tall Fescue (Festuca arundinacea Schreb) was used as a model feedstock. Results Projected ethanol yields were 252.62, 255.80, 255.27 and 230.23 L/dry metric ton biomass for conversion process using dilute acid, dilute alkali, hot water and steam explosion pretreatment technologies respectively. Price of feedstock and cellulose enzymes were assumed as $50/metric ton and 0.517/kg broth (10% protein in broth, 600 FPU/g protein) respectively. Capital cost of ethanol plants processing 250,000 metric tons of feedstock/year was $1.92, $1.73, $1.72 and $1.70/L ethanol for process using dilute acid, dilute alkali, hot water and steam explosion pretreatment respectively. Ethanol production cost of $0.83, $0.88, $0.81 and $0.85/L ethanol was estimated for production process using dilute acid, dilute alkali, hot water and steam explosion pretreatment respectively. Water use in the production process using dilute acid, dilute alkali, hot water and steam explosion pretreatment was estimated 5.96, 6.07, 5.84 and 4.36 kg/L ethanol respectively. Conclusions Ethanol price and energy use were highly dependent on process conditions used in the ethanol production plant. Potential for significant ethanol cost reductions exist in increasing pentose fermentation efficiency and reducing biomass and enzyme costs. The results demonstrated the importance of addressing the tradeoffs in capital costs, pretreatment and downstream processing technologies.
机译:背景技术虽然已经广泛报道了生物燃料的优点,但是研究也突出了大规模生产生物燃料的挑战。纤维素乙醇工厂中乙醇的成本和过程能源的使用取决于用于原料转化的技术。过程建模可以帮助识别生产过程中的技术经济瓶颈。使用一些常见的预处理技术对纤维素原料转化为乙醇进行了全面的技术经济分析:稀酸,稀碱,热水和蒸汽爆炸。使用SuperPro Designer开发了包含原料处理,预处理,同时糖化和共发酵,乙醇回收和下游加工的详细过程模型。将高羊茅(Festuca arundinacea Schreb)用作模型原料。结果预计用于稀酸,稀碱,热水和蒸汽爆炸预处理技术的转化过程的乙醇产量分别为252.62、255.80、255.27和230.23 L /干吨生物量。假定原料和纤维素酶的价格分别为50美元/公吨和0.517 / kg肉汤(肉汤中10%的蛋白质,600 FPU / g蛋白质)。对于使用稀酸,稀碱,热水和蒸汽爆炸预处理的工艺,每年处理250,000吨原料的乙醇工厂的资本成本分别为1.92美元,1.73美元,1.72美元和1.70美元/ L。估计使用稀酸,稀碱,热水和蒸汽爆炸预处理的生产过程的乙醇生产成本分别为$ 0.83,$ 0.88,$ 0.81和$ 0.85 / L。使用稀酸,稀碱,热水和蒸汽爆炸预处理的生产过程中的用水量分别估计为5.96、6.07、5.84和4.36 kg / L乙醇。结论乙醇价格和能源使用高度依赖于乙醇生产厂所使用的工艺条件。大幅降低乙醇成本的潜力存在于提高戊糖发酵效率以及降低生物质和酶成本方面。结果表明解决资本成本,预处理和下游加工技术之间的折衷的重要性。

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