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A Cost-effective Integrated Process to Convert Sweet Sorghum Stalks into Biofuels

机译:一种经济高效的综合过程,可将甜高粱秸秆转化为生物燃料

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Biofuel is a renewable and sustainable energy as an substitute of fossil fuel. In China, the key challenge to develop biofuels is how to balance the competition of food and bioenergy and supply a sustainable feedstock. Sweet sorghum is highlighted as a multiple platform plant which can supply grain, sugar, cellulose and feed. In addition, sweet sorghum has so good tolerance of drought and sterilize that it can grow on marginal land. However, the loose stalk pith of sweet sorghum results in the infeasibility of liquid fermentation technology due to the considerably high energy consumption.In present research, 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 process was optimized according to the yield of sugar-ethanol and amounts of monosaccharide released from SSB. In our novel process, energy consumption of mechanically squeeze and pretreatment of SSB was avoided. Meanwhile, the recalcitrance of lignocellulose was destructed and the biodegradation of lignocellulose into chemical products is feasible to achieve. Cellulosic ethanol as a model product was studied by using this novel integrated process. The mass balance of the overall process was calculated, and 91.9 kg was achieved from one tonne of fresh sweet sorghum stalk. Energy consumption for raw materials preparation and pretreatment were reduced or avoided in our process. To produce 1 tonne of ethanol, the energy input in this process was 12,481.2 MJ/tonne, while the energy input in other cellulosic ethanol processes is from 17,430 to 33,330 MJ/tonne.Based on this technology, the recalcitrance of lignocellulose was destructed via a cost-efficient process and structural carbohydrates in sweet sorghum stalks 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. So it is considered as a promising process to produce biofuels at commercial scale.
机译:生物燃料是一种可再生和可持续的能源作为化石燃料的替代品。在中国,开发生物燃料的主要挑战是如何平衡食品和生物能源的竞争,并提供可持续的原料。甜高粱被突出显示为可以提供谷物,糖,纤维素和饲料的多平台厂。此外,甜心高粱具有如此良好的耐受性和灭菌,即它可以在边缘土地上生长。然而,甜高粱的松散茎杆导致液体发酵技术的可行性由于大量高能耗。在目前的研究中,在这项工作中提出了一种综合过程,结合了先进的固态发酵技术(ASSF)和碱性预处理。使用碎茎直接使用碎茎首先将甜高粱茎中的可溶性糖转化为乙醇。然后,将乙醇蒸馏和碱性预处理结合的操作同时在一个蒸馏反应器中进行。根据SSB释放的糖乙醇的产率和量的单糖的产率优化该方法。在我们的新工艺中,避免了机械挤压和SSB预处理的能耗。同时,木质纤维素的重核被破坏,木质纤维素生物降解到化学产品中是可行的。通过使用这种新的综合方法研究了纤维素乙醇作为模型产品。计算总体过程的质量平衡,从一吨新鲜甜高粱茎达91.9千克。在我们的过程中减少或避免了原料制备和预处理的能量消耗。为了生产1吨乙醇,该过程中的能量输入为12,481.2MJ /吨,而其他纤维素乙醇工艺的能量输入为17,430至33,330 MJ /吨。基于这项技术,木质纤维素的克累积通过A破坏将甜高粱秸秆中的经济高效的方法和结构碳水化合物水解成可发酵的糖。从甜点高粱蔗渣释放的可发酵糖的生物转化释放到除乙醇,如丁醇,沼气和化学品之外的不同产品是在低能量消耗条件下运行的可行性。因此,它被认为是在商业规模中生产生物燃料的有希望的过程。

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