首页> 外文会议>European Symposium on Computer Aided Chemical engineering >A Model based analysis in applying Anderson-Schulz-Flory (ASF) equation with CO2 Utilisation on the Fischer Tropsch Gas-to-1iquid Process
【24h】

A Model based analysis in applying Anderson-Schulz-Flory (ASF) equation with CO2 Utilisation on the Fischer Tropsch Gas-to-1iquid Process

机译:应用CO2利用对FISCHER TROPSCH气于1型加法过程的基于模型的分析.PORSON-SCHULZ-FORORES(ASF)方程

获取原文

摘要

Industrial emissions of CO2 have observed a rapid increase since the industrial revolution and is accepted as a major contributor towards global warming.Despite the low market demand for the captured CO2, carbon capture and storage has not seen commercial deployment due to questions regarding economic feasibility.As such, carbon capture and utilisation (CCU) is considered as an alternative and commercially viable CO2 reduction approach, which can contribute effectively to the economy and environment.In CCU systems, captured CO2 is utilised as a feedstock in other processes which require CO2.This includes the synthesis of chemicals and materials such as Fischer-Tropsch Gas-to-liquid (GTL) production.The purpose of this paper is to evaluate the production of LPG, gasoline, diesel and wax using a Fischer-Tropsch (FT) GTL process model utilising mainly synthetic and captured CO2 as a raw material.The aim is to assess the effects of reforming methods, recycle ratio of syngas mixture on the process efficiency.The reforming unit of this study includes both; auto-thermal reforming (ATR) and steam-methane reforming (SMR), to form synthesis gas (syngas).Moreover, the application of the Anderson-Schulz-Flory (ASF) equation on the product distribution of FT synthesis is studied to investigate the growth probability of hydrocarbons (a) affected by CO2 utilisation.This GTL process is modelled using Aspen HYSYS software, and mainly includes a feeding unit, a reforming unit, an FT synthesis unit, upgrading and separation units and recycling units.The unreacted syngas mixture is recycled to the FT synthesis unit to enhance process efficiency and reduce the required amount of fresh feed.This work indicates that the optimal application of ASF with CO2 captured can increase the production rates of paraffin's and olefins depending on the variation of a and H2/CO.Initial results demonstrated promising results for an SMR case with around 27% and 4% increase in CO and H2 production; respectively, when introducing CO2 with around 38% mass flowrate of natural gas.The ATR case demonstrated less potential with only 9% increase in CO production when introducing the same flow rate of CO2.The findings of this study include the effect of this increase on the production of fuel liquids such as gasoline and diesel and the optimization of ASF and H2/CO ratio when introducing the captured CO2.These results can have a positive impact on enhancing the overall process efficiency and reduce significantly the environmental impact.
机译:二氧化碳的工业排放观察到自工业革命以来的迅速增加,被视为全球变暖的主要贡献者。批准捕获二氧化碳的市场需求量低,碳捕获和储存由于经济可行性的问题而言,碳捕获和储存尚未见过商业部署。因此,碳捕获和利用(CCU)被认为是一种替代和商业上可行的二氧化碳还原方法,可以有效地贡献到经济和环境。在CCU系统中,捕获的CO2用作需要CO2的其他过程的原料。这包括合成化学品和材料,例如Fischer-Tropsch气体 - 液体(GTL)的生产。本文的目的是使用Fischer-Tropsch(FT)GTL评估LPG,汽油,柴油和蜡的生产工艺模型主要利用合成和捕获的二氧化碳作为原料。目的是评估重整方法的影响,合成气混合物的再循环比工艺效率。本研究的重整单元包括两者;自动热重整(ATR)和蒸汽 - 甲烷重整(SMR),形成合成气(合成气).Moreover,研究了Anderson-Schulz-Flory(ASF)方程对FT合成产品分布的应用,研究CO2利用影响影响的烃(A)的生长概率。使用Aspen Hysys软件建模的GTL过程,主要包括馈电单元,重整单元,FT合成单元,升级和分离单元和回收单元。未反应的合成气将混合物再循环到FT合成单元中以增强工艺效率并减少新鲜饲料所需的量。此作品表明ASF与CO2的最佳应用可以根据A和H2的变化增加石蜡和烯烃的生产率/co.initial效果表明了SMR案例的有希望的结果约为27%和4%的CO和H2生产增加;当引入大约38%的天然气流量的CO 2时分别。ATR病例在引入同一CO2的流速时,CO生产的潜力较低。该研究的结果包括这种增加的效果在引入捕获的CO2时,生产汽油和柴油等燃料液和ASF和H2 / CO比的优化。这些结果可能对提高整体过程效率并减少环境影响,产生积极影响。

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