autothermal operation
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Energies ◽  
2021 ◽  
Vol 14 (9) ◽  
pp. 2581
Author(s):  
Falko Marx ◽  
Paul Dieringer ◽  
Jochen Ströhle ◽  
Bernd Epple

Chemical looping gasification (CLG) is a promising process for the thermochemical solid to liquid conversion route using lattice oxygen, provided by a solid oxygen carrier material, to produce a nitrogen free synthesis gas. Recent advances in lab-scale experiments show that CLG with biomass has the possibility to produce a carbon neutral synthesis gas. However, all experiments have been conducted in externally heated units, not enabling autothermal operation. In this study, the modification of an existing pilot plant for demonstrating autothermal operation of CLG is described. Energy and mass balances are calculated using a validated chemical looping combustion process model extended for biomass gasification. Based on six operational cases, adaptations of the pilot plant are designed and changes discussed. A reactor configuration using two circulating fluidized bed reactors with internal solid circulation in the air reactor is proposed and a suitable operating strategy devised. The resulting experimental unit enables a reasonable range of operational parameters within restrictions imposed from autothermal operation.


Catalysts ◽  
2020 ◽  
Vol 10 (5) ◽  
pp. 548 ◽  
Author(s):  
Jose L. Diaz de Tuesta ◽  
Asunción Quintanilla ◽  
Daniel Moreno ◽  
Víctor R. Ferro ◽  
Jose A. Casas

This work aims to present an industrial perspective on Catalytic Wet Peroxide Oxidation (CWPO) technology. Herein, process simulation and experimental design have been coupled to study the optimal process conditions to ensure high-performance oxidation, minimum H2O2 consumption and maximum energetic efficiency in an industrial scale CWPO unit. The CWPO of phenol in the presence of carbon black catalysts was studied as a model process in the Aspen Plus® v11 simulator. The kinetic model implemented, based on 30 kinetic equations with 11 organic compounds and H2O2 involvement, was valid to describe the complex reaction network and to reproduce the experimental results. The computer experiments were designed on a six-factor Doehlert Matrix in order to describe the influence of the operating conditions (i.e., the different process temperatures, inlet chemical oxygen demands, doses of H2O2 and space time) on each selected output response (conversion, efficiency of H2O2 consumption and energetic efficiency) by a quadratic model. The optimization of the WPO performance by a multi-criteria function highlighted the inlet chemical oxygen demand as the most influential operating condition. It needed to have values between 9.5 and 24 g L−1 for autothermal operation to be sustained under mild operating conditions (reaction temperature: 93–130 °C and pressure: 1–4 atm) and with a stoichiometric dose of H2O2.


AIChE Journal ◽  
2020 ◽  
Vol 66 (6) ◽  
Author(s):  
Zhe Sun ◽  
David H. West ◽  
Pankaj Gautam ◽  
Vemuri Balakotaiah

2019 ◽  
Vol 249 ◽  
pp. 276-285 ◽  
Author(s):  
Joseph P. Polin ◽  
Chad A. Peterson ◽  
Lysle E. Whitmer ◽  
Ryan G. Smith ◽  
Robert C. Brown

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