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Showing 1 to 4 of 4 for “"Fast-hydropyrolysis"”.

  1. High Pressure Micro-Scale Studies of Fast-Hydropyrolysis and Catalytic Hydrogenation of Biomass and Related Model Compounds

    … reducing the dependence on fossil based sources. Fast pyrolysis of biomass followed by catalytic hydrodeoxygenation of bio-oil is considered a promising biomass conversion route to produce drop in hydrocarbon fuels. The H2Bioil process was proposed as an integrated high pressure fast

    purdue-thes Repository record for High Pressure Micro-Scale Studies of Fast-Hydropyrolysis and Catalytic Hydrogenation of Biomass and Related Model Compounds (opens in a new tab)

  2. Lab-scale fast-hydropyrolysis and vapor-phase catalytic hydrodeoxygenation for producing liquid fuel range hydrocarbons from intact biomass

    … heated in a hydrogen environment to produce fast-hydropyrolysis vapors that are catalytically upgraded in downstream hydrodeoxygenation (HDO) to produce hydrocarbons. This process has been modeled to have high carbon and energy efficiencies of ~70% and ~75%, respectively.</p> <p>This …

    purdue-thes Repository record for Lab-scale fast-hydropyrolysis and vapor-phase catalytic hydrodeoxygenation for producing liquid fuel range hydrocarbons from intact biomass (opens in a new tab)

  3. High-Pressure Vapor-Phase Catalytic Hydrodeoxygenation of Lignin-Derived Compounds to Hydrocarbons on Bimetallic Catalysts in the Range of 0.2-2.4 MPa.

    … 25 wt%) of biomass. Several processes (including fast-pyrolysis, fast-hydropyrolysis, and liquid phase processing) are able to process all components of lignocellulosic biomass, including lignin which is converted to aromatic oxygenated compounds. Many challenges still remain in the high-yield …

    purdue-thes Repository record for High-Pressure Vapor-Phase Catalytic Hydrodeoxygenation of Lignin-Derived Compounds to Hydrocarbons on Bimetallic Catalysts in the Range of 0.2-2.4 MPa. (opens in a new tab)

  4. Energy Systems Analysis for a Solar Economy

    … gasification/Fischer-Tropsch (FT) synthesis and fast-hydropyrolysis/hydrodeoxygenation. For &eta<sub>carbon =70-95%, the synergistic gain of the optimal integrated process is evidenced from the 28-156% lower solar energy consumption compared to augmented gasification/FT processes. To accommodate …

    purdue-thes Repository record for Energy Systems Analysis for a Solar Economy (opens in a new tab)