Carbon Neutral Fuels and Chemicals from Standalone Biomass Refineries

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Nallapaneni Sasidhar

Abstract

The urgency to eliminate man-made greenhouse gas emissions and achieve energy security/independence by all countries justifies an energy policy that considers the major role of renewable biomass as a source of organic feedstock for producing adequate organic chemicals and biofuels on a sustainable basis and economically. This paper investigates a three-stage thermochemical process to convert wet biomass into a tailored mix of syngas for producing green methanol, hydrogen, and Fischer-Tropsch products. The three-stage thermochemical process involves the torrefaction of wet biomass using hot carbon monoxide gas, pyrolysis of torrefied biomass to produce biochar, and final gasification of the pyrolysis gases by auto thermal reforming up to 1400o C temperature. The proposed process is suitable to utilize a wide variety of biomass materials such as freshly harvested biomass without field drying, agro waste, forest/plantation litter, organic municipal solid wastes, sludge from sewage water treatment plants, solid biomass rejects from anaerobic digesters, bagasse from sugar or first-generation ethanol plants, organic solid rejects from second-generation ethanol plants, waste glycerides from biodiesel plants, industrial organic waste, etc. The proposed process offers valorization of biomass so that the net income of farmers is enhanced a fewfold by selling freshly harvested biomass. The economic analysis found that carbon-neutral hydrogen, methanol, etc can be produced below the prevailing costs of such products derived from fossil crude oil or natural gas without considering carbon credits. It is feasible in a standalone biomass refinery to use any biomass as only one bulk raw material/feedstock without any harmful emissions to water bodies or the atmosphere except carbon neutral carbon dioxide gas if not sequestrated.

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[1]
Nallapaneni Sasidhar , Tran., “Carbon Neutral Fuels and Chemicals from Standalone Biomass Refineries”, IJEE, vol. 3, no. 2, pp. 1–7, Jan. 2024, doi: 10.54105/ijee.B1845.113223.
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[1]
Nallapaneni Sasidhar , Tran., “Carbon Neutral Fuels and Chemicals from Standalone Biomass Refineries”, IJEE, vol. 3, no. 2, pp. 1–7, Jan. 2024, doi: 10.54105/ijee.B1845.113223.
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References

Dmitrii Glushkov, Galina Nyashina, et al. Current Status of the Pyrolysis and Gasification Mechanism of Biomass. Energies 2021, 14, 7541. https://doi.org/10.3390/en14227541

Jerry Murphy, Peter Weiland, et al. Task 37: Biogas from Crop Digestion, IEA. https://www.ieabioenergy.com/wp-content/uploads/2011/10/Update_Energy_crop_2011.pdf (2011)

Alejandro Nuñez-Jimenez. Review of lignocellulosic biomass pretreatments from a biorefinery perspective. Harvard University http://dx.doi.org/10.13140/RG.2.2.29510.78400 (2015)

Nhut Minh Nguyen, Falah Alobaid, et al. Biomass-Based Chemical Looping Gasification: Overview and Recent Developments. Thermochemical Conversion Processes for Solid Fuels and Renewable Energies: Volume II. https://www.mdpi.com/2076-3417/11/15/7069 (2021)

Dalila Taieb and Ammar Ben Brahim. Electrochemical method for sulphur dioxide removal from flue gases: Application on sulphuric acid plant in Tunisia. Gabe`s University, Gabe`s, Tunisia. https://doi.org/10.1016/j.crci.2012.08.009 (2012)

Rinny Jelita, Iryanti Fatyasari Nata, et al. Potential Alternative Energy of Hybrid Coal from Co-pyrolysis of Lignite with Palm Empty Fruit Bunch and the Kinetic Study. Indonesian Journal of Science and Technology. doi: http://dx.doi.org/10.17509/ijost.v8i1.53149 (2022)

Olds elevator. https://www.oldselevator.com/summary.html

How wood is transformed into charcoal. FAO. https://www.fao.org/3/x5328e/x5328e05.htm#TopOfPage (1983)

Claudia Juliana Gómez Díaz. Understanding Biomass Pyrolysis Kinetics: Improved Modeling Based on Comprehensive Thermokinetic Analysis. Universitat Politècnica de Catalunya, Spain. https://core.ac.uk/display/19925118 (2007)

Flavio Manenti, Renato Pelosato et al. Biogas-fed Solid Oxide Fuel Cell (SOFC) coupled to tri-reforming process: modeling and simulation. International Journal of Hydrogen Energy http://dx.doi.org/10.1016/j.ijhydene.2015.08.055 (2015)

Santa Margarida Santos, Ana Carolina Assis, et al. Waste Gasification Technologies: A Brief Overview. Waste 2023, 1(1), 140-165. https://www.mdpi.com/2813-0391/1/1/11 (2022)

Shahbeig H., Shafizadeh A., Rosen M.A., Sels B.F. Exergy sustainability analysis of biomass gasification: a critical review. Biofuel Research Journal 33 1592-1607. DOI: 10.18331/BRJ2022.9.1.5 https://www.biofueljournal.com/jufile?ar_sfile=1623821 (2022)

Jitka Hrbek. Status report on thermal gasification of biomass and waste 2019. IEA Bioenergy. https://www.ieabioenergy.com/wp-content/uploads/2019/11/IEABioenergyT33_2pageSummary_StatusReport.pdf (2019)

Low-carbon Technology Packages in Mini Steel Plants: A Compendium. New Delhi: United Nations Development Programme. http://www.indiaenvironmentportal.org.in/files/file/low%20carbon%20technology%20package%20of%20mini%20steel%20plants.pdf (2023)

Elham Amini, Saeed Safdari et al. Characterization of pyrolysis products from slow pyrolysis of live and dead vegetation native to the southern United States. Fuel 235:1475-1491 DOI:10.1016/j.fuel.2018.08.112 (2019)

Air Blast System for Blast Furnace. https://www.ispatguru.com/air-blast-system-for-blast-furnace/

Luca Geissbuhler. Thermocline Thermal Energy Storage: Advances and Applications to CSP, Compressed Air Energy Storage, and Solar Fuels. ETH ZURICH. https://www.research-collection.ethz.ch/handle/20.500.11850/255795?show=full (2017)

Jianmeng Jiao, Bettina Grorud, et al. The Use of Eutectic Fe-Si-B Alloy as a Phase Change Material in Thermal Energy Storage Systems. Materials 2019,12, 2312: https://www.researchgate.net/publication/334607657_The_Use_of_Eutectic_Fe-Si-B_Alloy_as_a_Phase_Change_Material_in_Thermal_Energy_Storage_Systems (2019)

R. J. Breakspere. High-temperature oxidation of aluminium in various gases Journal of Applied Chemistry, July 1970. https://onlinelibrary.wiley.com/doi/10.1002/jctb.5010200702 (1970)

Stefan Zoller, Eric Koepf, et al. A solar tower fuel plant for the thermochemical production of kerosene from H2O and CO2. Joule, Volume 6, Issue 7, 20 July 2022. https://doi.org/10.1016/j.joule.2022.06.012 (2022)

Hanfei Zhang, Ligang Wang, et al. Techno-Economic Optimization of CO2-to-Methanol with Solid-Oxide Electrolyzer. Energies 2019, 12, 3742; http://dx.doi.org/10.3390/en12193742 (2019)

J´ozsef Popp, S´andor Kov´acs, et al. Bioeconomy: Biomass and biomass-based energy supply and demand, New BIOTECHNOLOGY. doi: 10.1016/j.nbt.2020.10.004 (2020)

Nallapaneni Sasidhar. Multipurpose Freshwater Coastal Reservoirs and Their Role in Mitigating Climate Change. Indian Journal of Environment Engineering, Volume-3 Issue-1, May 2023. http://doi.org/10.54105/ijee.A1842.053123 (2023)

Nguyen L., H. (2023). Gasification of MSW and Biomass using Aspen Plus®. In International Journal of Innovative Technology and Exploring Engineering (Vol. 12, Issue 6, pp. 22–25). https://doi.org/10.35940/ijitee.f9536.0512623

Bundela, V. S., & Patel, Dr. A. (2022). MSW Management and Best Suitable Option Virtually Waste to Energy Plant for Resource and Energy Recovery for Bhopal (M.P.) India. In International Journal of Management and Humanities (Vol. 8, Issue 11, pp. 1–15). https://doi.org/10.35940/ijmh.k1501.0781122

Vendoti, S., Muralidhar, Dr. M., & Kiranmayi, Dr. R. (2019). Performance Analysis of Hybrid Power System Along With Conventional Energy Sources for Sustainable Development in Rural Areas. In International Journal of Recent Technology and Engineering (IJRTE) (Vol. 8, Issue 3, pp. 5971–5977). https://doi.org/10.35940/ijrte.f2567.098319

Nematov, D. (2023). Molecular and Dissociative Adsorption of H2O on ZrO2/YSZ Surfaces. In International Journal of Innovative Science and Modern Engineering (Vol. 11, Issue 10, pp. 1–7). https://doi.org/10.35940/ijisme.d7927.10111023