首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Bioethanol production from wheat straw by phosphoric acid plus hydrogen peroxide (PHP) pretreatment via simultaneous saccharification and fermentation (SSF) at high solid loadings
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Bioethanol production from wheat straw by phosphoric acid plus hydrogen peroxide (PHP) pretreatment via simultaneous saccharification and fermentation (SSF) at high solid loadings

机译:通过高固载体同时糖化和发酵(SSF)通过同时糖化和发酵(SSF)通过同时糖化(PHP)预处理从麦乙醇生产的生物乙醇生产

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摘要

Phosphoric acid plus hydrogen peroxide (PHP) pretreatment was employed on wheat straw for ethanol conversion by simultaneous saccharification and fermentation (SSF) at high loadings. Results showed solid loading of PHP-pretreated wheat straw can be greatly promoted to 20%. Although more enzyme input improved ethanol conversion significantly, it still can be potentially reduced to 10-20 mg protein/g cellulose. Increasing yeast input also promoted ethanol conversion, however, the responses were not significant. Response surface method was employed to optimize SSF conditions with the strategy of maximizing ethanol conversion and concentration and minimizing enzyme and yeast input. Results indicated that ethanol conversion of 88.2% and concentration of 69.9 g/L were obtained after 120 h SSF at solid loading of 15.3%, and CTec2 enzyme and yeast were in lower input of 13.2 mg protein/g cellulose and 1.0 g/L, respectively. Consequently, 15.5 g ethanol was harvested from 100 g wheat straw in the optimal conditions.
机译:通过在高载荷下通过同时糖化和发酵(SSF)在麦秸秆上使用磷酸加氢过氧化氢(PHP)预处理。结果表明,PHP预处理小麦秸秆的固体负载可以大大提升至20%。虽然更多的酶输入显着改善乙醇转化,但它仍然可以降低到10-20mg蛋白质/ g纤维素。酵母投入增加还促进了乙醇转化,然而,应对不显着。采用响应面法优化SSF条件,其策略最大化乙醇转化率和浓度,最小化酶和酵母输入。结果表明,在120h SSF的固体负载量为15.3%的固体负载下获得88.2%和浓度为69.9g / l的乙醇转化率,CTEC2酶和酵母较低输入13.2mg蛋白/ g纤维素和1.0g / L.分别。因此,在最佳条件下从100g小麦秸秆收获15.5g乙醇。

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