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Bioethanol production through enzymatic saccharification and fermentation of mechanically milled empty palm bunch

机译:机械研磨的空棕榈束通过酶促糖化和发酵生产生物乙醇

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Shortage in supply for petroleum-based liquid fuel have promote researches in the area of alternative energy such as blended fuel containing various amount of bio-ethanol derived from waste lignocellulosic biomass. This paper aims to optimize the enzymatic saccharification by varying reaction temperature, enzyme loading and time required to hydrolyzed palm empty fruit bunch (P-EFB). The best saccharification conditions were used to generate reduced sugar, consisting of glucose, fructose which was then passed through the fermentation process to produce bio-ethanol. Optimal saccharification of P-EFB was found to be conducted at temperature of 45°C, enzyme loading of 20 FPU/g and reaction time of 12 hours. The optimum concentration of reduced sugar produced in the pre-hydrolyzed slurry was 11.4 g/L. Fermentation of pre-hydrolyzed slurry in 5 g/L yeast solution was conducted at 40°C and fermenting time of 24 hours. Product from fermentation contained 29.5 g/L bioethanol or bio-ethanol yield of 68.7 %.
机译:石油基液体燃料的供应短缺已促进了替代能源领域的研究,例如混合燃料中含有来自废木质纤维素生物质的各种量的生物乙醇。本文旨在通过改变反应温度,酶的负载量和水解棕榈空果束(P-EFB)所需的时间来优化酶促糖化作用。最佳糖化条件用于产生由葡萄糖,果糖组成的还原糖,然后将其通过发酵过程以生产生物乙醇。发现P-EFB的最佳糖化是在45℃的温度,20 FPU / g的酶负载和12小时的反应时间下进行的。预水解浆液中产生的还原糖的最佳浓度为11.4 g / L。在40℃和24小时的发酵时间下,在5g / L酵母溶液中进行预水解浆液的发酵。来自发酵的产物包含29.5g / L的生物乙醇或68.7%的生物乙醇产率。

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