...
首页> 外文期刊>Green chemistry >Techno-economic analysis of a conceptual biofuel production process from bioethylene produced by photosynthetic recombinant cyanobacteria
【24h】

Techno-economic analysis of a conceptual biofuel production process from bioethylene produced by photosynthetic recombinant cyanobacteria

机译:由光合作用重组蓝细菌生产的生物乙烯生产概念性生物燃料的过程的技术经济分析

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Ethylene is a petrochemical produced in large volumes worldwide. It serves as a building block for a wide variety of plastics, textiles, and chemicals, and can be converted into liquid transportation fuels. There is great interest in the development of technologies that produce ethylene from renewable resources, such as biologically derived CO2 and biomass. One of the metabolic pathways used by microbes to produce ethylene is via an ethylene-forming enzyme (EFE). By expressing a bacterial EFE gene in a cyanobacterium, ethylene has been produced through photosynthetic carbon fixation. Here, we present a conceptual design and techno-economic analysis of a process of biofuel production based on the upgradation of ethylene generated by the recombinant cyanobacterium. This analysis focuses on potential near-term to long-term cost projections for the integrated process of renewable fuels derived from ethylene. The cost projections are important in showing the potential of this technology and determining research thrusts needed to reach target goals. The base case for this analysis is a midterm projection using tubular photo-bioreactors for cyanobacterial growth and ethylene production, cryogenic distillation for ethylene separation and purification, a two-step Ziegler oligomerization process with subsequent hydrotreatment and upgradation for fuel production, and a wastewater treatment process that utilizes anaerobic digestion of cyanobacterial biomass. The minimum fuel selling price (MFSP) for the midterm projection is $15.07 per gallon gasoline equivalent (GGE). Near-term and long-term projections are $28.66 per GGE and $5.36 per GGE, respectively. Single-and multi-point sensitivity analyses are conducted to determine the relative effect that chosen variables could have on the overall costs. This analysis identifies several key variables for improving the overall process economics and outlines strategies to guide future research directions. The productivity of ethylene has the largest effect on cost and is calculated based on a number of variables that are incorporated into this cost model (i.e., quantum requirement, photon transmission efficiency, and the percent of energy going to either ethylene or cyanobacterial biomass production).
机译:乙烯是一种在全球范围内大量生产的石油化工产品。它是各种塑料,纺织品和化学药品的基础,并可转化为液体运输燃料。从可再生资源,例如生物来源的二氧化碳和生物质,生产乙烯的技术的发展引起了极大的兴趣。微生物用于生产乙烯的代谢途径之一是通过乙烯形成酶(EFE)。通过在蓝细菌中表达细菌EFE基因,通过光合作用碳固定产生了乙烯。在这里,我们介绍了基于重组蓝细菌产生的乙烯的升级的生物燃料生产过程的概念设计和技术经济分析。该分析着重于从乙烯衍生的可再生燃料的整合过程中潜在的近期至长期成本预测。成本预测对于展示这项技术的潜力以及确定实现目标所需的研究重点非常重要。该分析的基本情况是使用管状光生物反应器进行蓝藻生长和生产乙烯,进行低温蒸馏以分离和纯化乙烯的低温蒸馏,两步齐格勒低聚工艺以及随后的加氢处理和提质以生产燃料以及废水处理的中期预测。利用蓝藻生物质的厌氧消化的过程。中期预测的最低燃料销售价格(MFSP)为每加仑汽油当量(GGE)15.07美元。近期和长期预测分别为每GGE 28.66美元和每GGE 5.36美元。进行单点和多点敏感性分析,以确定所选变量可能对总体成本产生的相对影响。该分析确定了改善整体过程经济性的几个关键变量,并概述了指导未来研究方向的策略。乙烯的生产率对成本的影响最大,并且是根据此成本模型中包含的多个变量(即,量子需求,光子传输效率以及用于乙烯或蓝细菌生物质生产的能量百分比)计算得出的。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号