Process Simulation and Economic Evaluation of Bio-Oil Two-Stage Hydrogenation Production

Bio-oil hydrogenation upgrading process is a method that can convert crude bio-oil into high-quality bio-fuel oil, which includes two stages of mild and deep hydrogenation. However, coking in the hydrogenation process is the key issue which negatively affects the catalyst activity and consequently t...

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Main Authors: Xiaoyuechuan Ma, Shusheng Pang, Ruiqin Zhang, Qixiang Xu
Format: Article
Language:English
Published: MDPI AG 2019-02-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/9/4/693
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spelling doaj-af08a0509b764f05ac6f7e57b9d5130c2020-11-25T00:27:24ZengMDPI AGApplied Sciences2076-34172019-02-019469310.3390/app9040693app9040693Process Simulation and Economic Evaluation of Bio-Oil Two-Stage Hydrogenation ProductionXiaoyuechuan Ma0Shusheng Pang1Ruiqin Zhang2Qixiang Xu3College of Chemistry and Molecular Engineering, Zhengzhou University, Zhengzhou 450001, ChinaDepartment of Chemical and Process Engineering, University of Canterbury, Christchurch 8083, New ZealandCollege of Chemistry and Molecular Engineering, Zhengzhou University, Zhengzhou 450001, ChinaCollege of Chemistry and Molecular Engineering, Zhengzhou University, Zhengzhou 450001, ChinaBio-oil hydrogenation upgrading process is a method that can convert crude bio-oil into high-quality bio-fuel oil, which includes two stages of mild and deep hydrogenation. However, coking in the hydrogenation process is the key issue which negatively affects the catalyst activity and consequently the degree of hydrogenation in both stages. In this paper, an Aspen Plus process simulation model was developed for the two-stage bio-oil hydrogenation demonstration plant which was used to evaluate the effect of catalyst coking on the bio-oil upgrading process and the economic performance of the process. The model was also used to investigate the effect of catalyst deactivation caused by coke deposition in the mild stage. Three reaction temperatures in the mild stage (250 °C, 280 °C, and 300 °C) were considered. The simulation results show that 45% yield of final product is obtained at the optimal reaction condition which is 280 °C for the mild stage and 400 °C for the deep stage. Economic analysis shows that the capital cost of industrial production is $15.2 million for a bio-oil upgrading plant at a scale of 107 thousand tons per year. The operating costs are predicted to be $1024.27 per ton of final product.https://www.mdpi.com/2076-3417/9/4/693bio-fuelaspen plushydrogenationsimulationeconomic analysis
collection DOAJ
language English
format Article
sources DOAJ
author Xiaoyuechuan Ma
Shusheng Pang
Ruiqin Zhang
Qixiang Xu
spellingShingle Xiaoyuechuan Ma
Shusheng Pang
Ruiqin Zhang
Qixiang Xu
Process Simulation and Economic Evaluation of Bio-Oil Two-Stage Hydrogenation Production
Applied Sciences
bio-fuel
aspen plus
hydrogenation
simulation
economic analysis
author_facet Xiaoyuechuan Ma
Shusheng Pang
Ruiqin Zhang
Qixiang Xu
author_sort Xiaoyuechuan Ma
title Process Simulation and Economic Evaluation of Bio-Oil Two-Stage Hydrogenation Production
title_short Process Simulation and Economic Evaluation of Bio-Oil Two-Stage Hydrogenation Production
title_full Process Simulation and Economic Evaluation of Bio-Oil Two-Stage Hydrogenation Production
title_fullStr Process Simulation and Economic Evaluation of Bio-Oil Two-Stage Hydrogenation Production
title_full_unstemmed Process Simulation and Economic Evaluation of Bio-Oil Two-Stage Hydrogenation Production
title_sort process simulation and economic evaluation of bio-oil two-stage hydrogenation production
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2019-02-01
description Bio-oil hydrogenation upgrading process is a method that can convert crude bio-oil into high-quality bio-fuel oil, which includes two stages of mild and deep hydrogenation. However, coking in the hydrogenation process is the key issue which negatively affects the catalyst activity and consequently the degree of hydrogenation in both stages. In this paper, an Aspen Plus process simulation model was developed for the two-stage bio-oil hydrogenation demonstration plant which was used to evaluate the effect of catalyst coking on the bio-oil upgrading process and the economic performance of the process. The model was also used to investigate the effect of catalyst deactivation caused by coke deposition in the mild stage. Three reaction temperatures in the mild stage (250 °C, 280 °C, and 300 °C) were considered. The simulation results show that 45% yield of final product is obtained at the optimal reaction condition which is 280 °C for the mild stage and 400 °C for the deep stage. Economic analysis shows that the capital cost of industrial production is $15.2 million for a bio-oil upgrading plant at a scale of 107 thousand tons per year. The operating costs are predicted to be $1024.27 per ton of final product.
topic bio-fuel
aspen plus
hydrogenation
simulation
economic analysis
url https://www.mdpi.com/2076-3417/9/4/693
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AT shushengpang processsimulationandeconomicevaluationofbiooiltwostagehydrogenationproduction
AT ruiqinzhang processsimulationandeconomicevaluationofbiooiltwostagehydrogenationproduction
AT qixiangxu processsimulationandeconomicevaluationofbiooiltwostagehydrogenationproduction
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