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Biobutanol - An impending biofuel for future: A review on upstream and downstream processing tecniques

机译:生物丁醇-即将到来的生物燃料:上游和下游加工技术的回顾

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Driven by the increase in industrialization and population, the global demand for energy and material products is steadily growing. Since the world primary sources for energy and chemicals are fossil fuels, this growth raises significant issues at environmental, economic and social levels. To meet the increasing demand of energy sources, biomass resources are extremely promising. For the sustainable production of renewable energy, the production of biobutanol through ABE fermentation was investigated by upstream and downstream processing, techniques. ABE fermentation was achieved using Clostridium species whose genes help in the conversion biomass into butanol. Further, genetic engineering techniques are used to modify these organisms to increase the yield of butanol. Biobutanol is found to be efficient fuel compared to other known biofuels both by physic and chemical properties. In order to accomplish the increasing demand of this fuel; selection of specie identification of subtrates, pre-treatment, genetic engineering techniques and various downstream processing techniques (pervaporation, gas stripping, etc.) are inculcated which are been discussed in this review. This review also focuses on economics of biobutanol across the globe.
机译:在工业化和人口增长的推动下,全球对能源和材料产品的需求稳步增长。由于全球能源和化学物质的主要来源是化石燃料,因此这种增长在环境,经济和社会层面引发了重大问题。为了满足日益增长的能源需求,生物质资源是非常有前途的。为了可持续生产可再生能源,通过上游和下游加工技术研究了通过ABE发酵生产生物丁醇。使用梭状芽胞杆菌属物种实现ABE发酵,其基因有助于将生物质转化为丁醇。此外,基因工程技术被用于修饰这些生物以增加丁醇的产率。从物理和化学性质来看,与其他已知的生物燃料相比,发现生物丁醇是有效的燃料。为了满足对这种燃料不断增长的需求;灌输了亚种的种属选择,预处理,基因工程技术和各种下游加工技术(全蒸发,气提等),本综述对此进行了讨论。这篇综述还着眼于全球生物丁醇的经济学。

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