Conversion of Spirulina platensis into methanol via gasification: Process simulation modeling and economic evaluation

被引:0
|
作者
Shahbaz, Muhammad [1 ,2 ]
Ammar, Muhammad [3 ]
Sukarni, Sukarni [4 ,5 ]
机构
[1] Teesside Univ, Net Zero Ind Innovat Ctr, Sch Comp Engn & Digital Technol, Middlesbrough, England
[2] Hamad Bin Khalifa Univ, Qatar Fdn, Coll Sci & Engn, Doha 5825, Qatar
[3] Univ Teknol PETRONAS, Ctr Biofuel & Biochem Res, Seri Iskandar 32610, Perak, Malaysia
[4] Univ Negeri Malang, Ctr Renewable Fuels Res CRFR, Dept Mech & Ind Engn, Malang, Indonesia
[5] Univ Negeri Malang, Ctr Adv Mat Renewable Energy CAMRY, Malang, Indonesia
来源
关键词
Methanol; H2 rich Syngas; Spirulina platensis (SP); Cost analysis; Simulation; BIOMASS GASIFICATION; TECHNOECONOMIC ASSESSMENT; HYDROGEN-PRODUCTION; CO2; PYROLYSIS; GENERATION; MICROALGAE; PRODUCTS; GAS;
D O I
10.1016/j.dche.2024.100204
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The conversion of bioresources like Spirulina platensis (SP) into value-added chemicals, such as methanol, offers a sustainable replacement of fossil fuels and contributes to greenhouse gas mitigation. This study presents an integrated process simulation model, developed using Aspen Plus v10 (R), for the steam gasification of SP and subsequent methanol production. Process parameters, including temperature range from 650-950 degrees C, steam/feed ratio from 0.5-2, and recycle ratio from 0-9, were investigated to optimize syngas composition and methanol yield. Results demonstrated that increasing temperature enhances H2 and CO production while reducing CO2 and CH4, significantly increasing methanol production from 6500 to 9500 kg/h. The steam/feed ratio also influences syngas composition and methanol yield, with higher ratios promoting H2 and CO2 production and reducing CO and CH4. The economic evaluation of two scenarios, a base case and an optimum case, shows that the capital expenditure (Capex) and operating expenditure (Opex) are 19.3M$ and 9.07M$ for the base case, and 20.018M$ and 10.21M$ for the optimum case. The analysis also reveals that the optimum case, with higher methanol production (7.2 tonnes/h compared to 6.7 tonnes/h in the base case), generates a higher net income (9.76 M$/y) and reduces CO2 emissions (4.918 tonnes CO2-e/y compared to 5.72 tonnes CO2-e/y). The energy flow indicates the input energy requirement, the energy carried by methanol, and the surplus energy, totalling 26740 kW to meet the major system's energy demands. This study provides valuable insights for researchers, policymakers, and commercial entities seeking to develop sustainable and economically viable biofuel production processes.
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页数:11
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