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A process integration approach for the production of biological iso-propanol, butanol and ethanol using gas stripping and adsorption as recovery methods

机译:一种采用气提和吸附作为回收方法生产生物异丙醇,丁醇和乙醇的工艺整合方法

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摘要

Biomass fermentation to Iso-propanol, Butanol and Ethanol (IBE) is particularly important as IBE is a common building block in the development of biorefineries and IBE-producing bacteria are robust industrial organisms, capable to utilize the sugars of the lignocellulosic biomass. Research is focused on increasing fermentation yields and the reduction of energy that is required to separate the volatile products. The paper addresses both of these challenges combining experimental innovations with a systems engineering approach. IBE is recovered from a gas-stripped fermenter whose potential for adsorption is researched and integrated with downstream options for separation. Design and integration is assisted using a systems approach that relies on mathematical models that regress and extrapolate experimental data for scale-up calculations. Process integration involves synthesis challenges to define biorefinery portfolios and systems integration to combine fermentation, stripping, adsorption, and distillation. The analysis considers 4 alternative biorefinery cases and presents results with significant savings in energy use and costs (up to 87% savings reported) after the application of energy integration to the IBE plant. Scenarios are analysed economically and confirm benefits in the use of adsorption and viable production yields. (C) 2016 Elsevier B.V. All rights reserved.
机译:生物质发酵成异丙醇,丁醇和乙醇(IBE)尤其重要,因为IBE是生物精炼厂发展中的常见组成部分,而产生IBE的细菌是强大的工业生物,能够利用木质纤维素生物质的糖分。研究集中在提高发酵产量和减少分离挥发性产物所需的能量上。本文针对这两个挑战,将实验创新与系统工程方法相结合。从气提式发酵罐中回收IBE,该发酵罐的吸附潜力已得到研究,并与下游分离方法集成。使用依赖于数学模型的系统方法协助设计和集成,该数学模型对实验数据进行回归和外推以进行放大计算。过程集成涉及到合成挑战,以定义生物精炼厂产品组合,而系统集成则需要结合发酵,汽提,吸附和蒸馏。该分析考虑了4个替代性生物精炼厂案例,并在将能量整合应用于IBE工厂后,呈现出可显着节省能源使用和成本(据报道节省多达87%的成本)的结果。对方案进行了经济分析,并确认了在使用吸附技术和可行的生产收益方面的优势。 (C)2016 Elsevier B.V.保留所有权利。

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