System Optimization for Fischer–Tropsch Liquid Fuels Production via Solar Hybridized Dual Fluidized Bed Gasification of Solid Fuels

2017 ◽  
Vol 31 (2) ◽  
pp. 2033-2043 ◽  
Author(s):  
Peijun Guo ◽  
Woei L. Saw ◽  
Philip J. van Eyk ◽  
Ellen B. Stechel ◽  
Peter J. Ashman ◽  
...  
2015 ◽  
Vol 29 (4) ◽  
pp. 2738-2751 ◽  
Author(s):  
Peijun Guo ◽  
Philip J. van Eyk ◽  
Woei L. Saw ◽  
Peter J. Ashman ◽  
Graham J. Nathan ◽  
...  

2019 ◽  
Vol 142 (2) ◽  
Author(s):  
Kamil Idziak ◽  
Tomasz Czakiert ◽  
Jaroslaw Krzywanski ◽  
Anna Zylka ◽  
Wojciech Nowak

Abstract The results of investigations on solids flow in a cold model of the dual fluidized bed reactor designed for chemical looping combustion of solid fuels (DFB-CLC-SF) are presented in this paper. The constructed unit consists of two interconnected reactors. The first one, so-called fuel reactor (FR), is operated under bubbling fluidized bed (BFB) conditions, whereas the second one, so-called air reactor (AR), is structurally divided into two sections. The bottom part of AR works under BFB while the upper part, i.e., the riser, is operated in the fast fluidized bed (FFB) regime. In these studies, the air was used for fluidization process in all parts of the DFB-CLC-SF reactor. The glass beads with similar parameters to oxygen carriers (OCs) used in the CLC process were utilized as an inventory. The fluidization conditions are controlled by using the sets of pressure sensors installed around the circulation loop. The experimental data acquired in the tests are further employed to the analysis of solids behavior in a cold model of the DFB-CLC-SF reactor. The main goal of these studies was to establish the conditions for smooth fluidization, which concurrently provide the required residence time of solids in both reactors that is one of the most crucial factors in the CLC process. It was found that the fluidizing gas velocity in reactors has a significant impact on solids behavior and the investigated parameters. However, what is the most important, it was confirmed that the operation condition of the DFB-CLC-SF reactor can be adjusted to meet the requirements resulting from the properties of OCs.


Fuel ◽  
2014 ◽  
Vol 127 ◽  
pp. 151-160 ◽  
Author(s):  
Ajay R. Bidwe ◽  
Craig Hawthorne ◽  
Yu Xizhi ◽  
Heiko Dieter ◽  
Günter Scheffknecht

Author(s):  
Cong-Binh Dinh ◽  
Shu-San Hsiau ◽  
Chien-Yuan Su ◽  
Meng-Yuan Tsai ◽  
Yi-Shun Chen ◽  
...  

2021 ◽  
Vol 11 (1) ◽  
pp. 189-203
Author(s):  
A. Lunzer ◽  
S. Kraft ◽  
S. Müller ◽  
H. Hofbauer

Author(s):  
Sébastien Pissot ◽  
Robin Faust ◽  
Panida Aonsamang ◽  
Teresa Berdugo Vilches ◽  
Jelena Maric ◽  
...  

Energies ◽  
2021 ◽  
Vol 14 (2) ◽  
pp. 399
Author(s):  
Selina Hafner ◽  
Max Schmid ◽  
Günter Scheffknecht

Finding a way for mitigating climate change is one of the main challenges of our generation. Sorption-enhanced gasification (SEG) is a process by which syngas as an important intermediate for the synthesis of e.g., dimethyl ether (DME), bio-synthetic natural gas (SNG) and Fischer–Tropsch (FT) products or hydrogen can be produced by using biomass as feedstock. It can, therefore, contribute to a replacement for fossil fuels to reduce greenhouse gas (GHG) emissions. SEG is an indirect gasification process that is operated in a dual-fluidized bed (DFB) reactor. By the use of a CO2-active sorbent as bed material, CO2 that is produced during gasification is directly captured. The resulting enhancement of the water–gas shift reaction enables the production of a syngas with high hydrogen content and adjustable H2/CO/CO2-ratio. Tests were conducted in a 200 kW DFB pilot-scale facility under industrially relevant conditions to analyze the influence of gasification temperature, steam to carbon (S/C) ratio and weight hourly space velocity (WHSV) on the syngas production, using wood pellets as feedstock and limestone as bed material. Results revealed a strong dependency of the syngas composition on the gasification temperature in terms of permanent gases, light hydrocarbons and tars. Also, S/C ratio and WHSV are parameters that can contribute to adjusting the syngas properties in such a way that it is optimized for a specific downstream synthesis process.


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