Thermochemical biofuel production in hydrothermal media: A review of sub- and supercritical water technologies

Термохимическое производство биотоплива в гидротермальных средах: обзор технологий с использованием субкритической и сверхкритической воды
Michael Jerry Antal, Andrew A. Peterson, Jefferson W. Tester, Russell P. Lachance, Frédéric Vogel, Morgan Fröling
2008-01-01

biomass hydrothermal conversionhydrothermal technologiessubcritical watersupercritical waterthermochemical biofuel production
Hydrothermal technologies are broadly defined as chemical and physical transformations in high-temperature (200–600 °C), high-pressure (5–40 MPa) liquid or supercritical water. This thermochemical means of reforming biomass may have energetic advantages, since, when water is heated at high pressures a phase change to steam is avoided which avoids large enthalpic energy penalties. Biological chemicals undergo a range of reactions, including dehydration and decarboxylation reactions, which are influenced by the temperature, pressure, concentration, and presence of homogeneous or heterogeneous catalysts. Several biomass hydrothermal conversion processes are in development or demonstration. Liquefaction processes are generally lower temperature (200–400 °C) reactions which produce liquid products, often called “bio-oil” or “bio-crude”. Gasification processes generally take place at higher temperatures (400–700 °C) and can produce methane or hydrogen gases in high yields.
1
Biomass constituents undergo reactions such as dehydration and decarboxylation, controlled by temperature, pressure, concentration, and catalyst type.
2
High-pressure heating can avoid water vaporization, potentially reducing the enthalpic energy penalty compared with steam-based processing.
3
Hydrothermal biomass conversion operates in liquid or supercritical water at 200–600 °C and 5–40 MPa.
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Hydrothermal gasification generally occurs at higher temperatures, around 400–700 °C, and can produce methane or hydrogen in high yields.
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Hydrothermal liquefaction generally uses 200–400 °C conditions to produce liquid bio-oil or biocrude products.

Biomass undergoing hydrothermal (sub- and supercritical water) thermochemical conversion processes

temperature-, pressure-, concentration-, and catalyst-dependent thermochemical reaction pathways and product formation, including liquefaction to bio-oil/biocrude and gasification to methane or hydrogen

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2008-01-01
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Michael Jerry Antal
Andrew A. Peterson
Jefferson W. Tester
Russell P. Lachance
Frédéric Vogel
Morgan Fröling
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