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Gasification of diosgenin solid waste for hydrogen production in supercritical water
Authors:Wen Cao  Changqing Cao  Liejin Guo  Hui Jin  Matthew Dargusch  Debra Bernhardt  Xiangdong Yao
Affiliation:1. State Key Laboratory of Multiphase Flow in Power Engineering, Xi''an Jiaotong University, Xi''an 710049, China;2. Queensland Micro- and Nanotechnology Center, Nathan Campus, Griffith University, Brisbane 4111, Australia;3. School of Mechanical and Mining Engineering, The University of Queensland, St Lucia, QLD 4072, Australia;4. Centre for Computational Molecular Science, AIBN, The University of Queensland, St Lucia, QLD 4072, Australia
Abstract:The potential of diosgenin solid waste (DSW) to be a proper feedstock for hydrogen production from supercritical water gasification was assessed through thermodynamic analysis and experimental study. The thermodynamic analysis of DSW gasification in SCW was performed by Aspen Plus software based on the principle of minimum Gibbs free energy. The effects of temperature (500–650 °C), flow ratio of feedstock slurry to preheated water on the gasification were studied. K2CO3 and black liquor were used to catalyze the gasification of DSW. The morphological structures of DSW and residue char were characterized by SEM. The results showed that DSW was almost completely gasified at 650 °C without catalyst and the carbon gasification efficiency reached up to 98.55%. K2CO3 could significantly promote the gasification reactivity of DSW at a lower temperature. H2 yield was remarkably improved by adding black liquor. The SEM analysis indicated that parts of the organic matters reacted to form gases and liquid products, and K2CO3 was found to migrate into the residue char during the reactions.
Keywords:Supercritical water  Diosgenin solid waste  Catalyst  Black liquor  Char  DZW  DSW  diosgenin solid waste  SEM  scanning electron microscope  SCW  supercritical water  SCWG  supercritical water gasification  LHV  lower heating value  TGA  thermogravimetric analyzer  TG  thermogravimetric graves  DTG  differential thermogravimetric graves  GC  gas chromatography  CE  carbon gasification efficiency  HE  hydrogen gasification efficiency  AES  auger electron spectroscopy  EPMA  electron probe microanalysis  PR-BM  Peng-Robinson equation of state with Boston-Mathias function
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