Sustainability Outlook of Thermochemical-Based Second-Generation Biofuel Production: Exergy Assessment

被引:5
作者
Meramo, Samir [1 ]
Puello, Plinio [2 ]
Rodriguez, Julio [2 ]
机构
[1] Tech Univ Denmark, Novo Nordisk Fdn Ctr Biosustainabil, Sustainable Innovat Off, Kemitorvet 220, DK-2800 Lyngby, Denmark
[2] Univ Cartagena, Syst Engn Program, Piedra Bolivar, Piedra Bolivar,St 30 48-152, Cartagena 130000, Colombia
来源
APPLIED SCIENCES-BASEL | 2021年 / 11卷 / 19期
关键词
exergy analysis; sustainability; pyrolysis; gasification; second-generation biomass; biofuels; CHEMICAL-PROCESSES; LIGNOCELLULOSIC BIOMASS; BIOHYDROGEN PRODUCTION; EARLY-STAGE; INDICATORS; PYROLYSIS; MICROALGAE; GASIFICATION; INTEGRATION; CHALLENGES;
D O I
10.3390/app11198851
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Since the last century, the idea of replacing traditional fossil sources with renewable alternatives has attracted much attention. As a result, auspicious renewable biofuels, such as biohydrogen or bio-oil, have emerged as suitable options. This study provides some knowledge on combining process design, modeling, and exergy analysis as a united framework to support decision making in energy-based projects. The assessment also included a final evaluation, considering sustainability indicators to evaluate process performance. Feedstock selection is crucial for producing bio-oil and hydrogen for process sustainability; this aspect is discussed, considering second-generation sources. Second-generation bio-oil and biohydrogen production are assessed and compared under the proposed framework. Process simulation was performed using ASPEN PLUS. Exergy analysis was developed using data generated in the process simulation stage, containing material and energy balances, thermodynamic properties, chemical reactions, etc. A mathematical formulation for the exergy analysis shows the exergy of utilities, waste, exergy efficiency, and exergy intensity of both processes, based on the same functional unit (1 kg of product). The sustainability evaluation included quantifying side parameters, such as the renewability index, energy efficiency, or global warming potential. The results indicate that pyrolysis obtained the highest resource exergy efficiency (11%), compared to gasification (3%). The exergy intensity shows that more exergy is consumed in the gasification process (4080.21 MJ/kg) than pyrolysis (18.64 MJ/kg). Similar results are obtained for total irreversibility (327.41 vs. 48.75 MJ/kg) and exergy of wastes (51.34 vs. 18.14 MJ/kg).
引用
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页数:14
相关论文
共 53 条
[1]   Exergetic and thermoeconomic analyses of diesel engine powered cogeneration: Part 1-Formulations [J].
Abusoglu, Aysegul ;
Kanoglu, Mehmet .
APPLIED THERMAL ENGINEERING, 2009, 29 (2-3) :234-241
[2]   Co-Production of Hydrogen and Methanol Using Fuel Mix Systems: Technical and Economic Assessment [J].
Ahmed, Usama ;
Zahid, Umer ;
Onaizi, Sagheer A. ;
Jameel, Abdul Gani Abdul ;
Ahmad, Nauman ;
Ahmad, Nabeel ;
AlMohamadi, Hamad .
APPLIED SCIENCES-BASEL, 2021, 11 (14)
[3]   Energy analysis and techno-economic assessment of a hybrid PV/HKT/BAT system using biomass gasifier: Cuenca-Ecuador case study [J].
Cano, Antonio ;
Arevalo, Paul ;
Jurado, Francisco .
ENERGY, 2020, 202
[4]   Current status of biohydrogen production from lignocellulosic biomass, technical challenges and commercial potential through pyrolysis process [J].
Chen, Wei-Hsin ;
Farooq, Wasif ;
Shahbaz, Muhammad ;
Naqvi, Salman Raza ;
Ali, Imtiaz ;
Al-Ansari, Tareq ;
Amin, Nor Aishah Saidina .
ENERGY, 2021, 226
[5]   Biohydrogen production from lignocellulosic feedstock [J].
Cheng, Chieh-Lun ;
Lo, Yung-Chung ;
Lee, Kuo-Shing ;
Lee, Duu-Jong ;
Lin, Chiu-Yue ;
Chang, Jo-Shu .
BIORESOURCE TECHNOLOGY, 2011, 102 (18) :8514-8523
[6]   Simultaneous water and energy integration with isothermal and non-isothermal mixing - A P-graph approach [J].
Chin, Hon Huin ;
Foo, Dominic C. Y. ;
Lam, Hon Loong .
RESOURCES CONSERVATION AND RECYCLING, 2019, 149 :687-713
[7]  
Constantinescu M, 2019, MATER PLAST, V56, P721
[8]   A comprehensive review on the pyrolysis of lignocellulosic biomass [J].
Dhyani, Vaibhav ;
Bhaskar, Thallada .
RENEWABLE ENERGY, 2018, 129 :695-716
[9]  
Douboni M., 2002, CLEAN TECHNOL ENVIR, V4, P246, DOI DOI 10.1007/S10098-002-0166-7
[10]   Integrating compositional features in model compounds for a kinetic mechanism of hemicellulose pyrolysis [J].
Dussan, Karla ;
Dooley, Stephen ;
Monaghan, Rory .
CHEMICAL ENGINEERING JOURNAL, 2017, 328 :943-961