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Field-Scale Testing of a High-Efficiency Membrane Reactor (MR)-Adsorptive Reactor (AR) Process for H2 Generation and Pre-Combustion CO2 Capture
被引:1
|作者:
Margull, Nicholas
[1
]
Parsley, Doug
[2
]
Somiari, Ibubeleye
[1
]
Zhao, Linghao
[3
]
Cao, Mingyuan
[3
]
Koumoulis, Dimitrios
[4
]
Liu, Paul K. T.
[2
]
Manousiouthakis, Vasilios I.
[1
]
Tsotsis, Theodore T.
[3
]
机构:
[1] Univ Calif Los Angeles, Chem & Biomol Engn Dept, Los Angeles, CA 90095 USA
[2] Media & Proc Technol Inc, Pittsburgh, PA 15328 USA
[3] Univ Southern Calif, Mork Family Dept Chem Engn & Mat Sci, Los Angeles, CA 90089 USA
[4] Univ Kentucky, Inst Decarbonizat & Energy Advancement, Lexington, KY 40507 USA
来源:
关键词:
membrane reactor (MR);
adsorptive reactor (AR);
H-2;
generation;
CO2;
capture;
carbon molecular sieve membrane;
WATER-GAS-SHIFT;
ENHANCED HYDROGEN-PRODUCTION;
THERMODYNAMIC ANALYSIS;
PERFORMANCE;
COAL;
ADSORPTION;
BIOMASS;
DESIGN;
SYSTEM;
PLANT;
D O I:
10.3390/membranes14020051
中图分类号:
Q5 [生物化学];
Q7 [分子生物学];
学科分类号:
071010 ;
081704 ;
摘要:
The study objective was to field-validate the technical feasibility of a membrane- and adsorption-enhanced water gas shift reaction process employing a carbon molecular sieve membrane (CMSM)-based membrane reactor (MR) followed by an adsorptive reactor (AR) for pre-combustion CO2 capture. The project was carried out in two different phases. In Phase I, the field-scale experimental MR-AR system was designed and constructed, the membranes, and adsorbents were prepared, and the unit was tested with simulated syngas to validate functionality. In Phase II, the unit was installed at the test site, field-tested using real syngas, and a technoeconomic analysis (TEA) of the technology was completed. All project milestones were met. Specifically, (i) high-performance CMSMs were prepared meeting the target H-2 permeance (>1 m(3)/(m(2).hbar) and H-2/CO selectivity of >80 at temperatures of up to 300 degrees C and pressures of up to 25 bar with a <10% performance decline over the testing period; (ii) pelletized adsorbents were prepared for use in relevant conditions (250 degrees C < T < 450 degrees C, pressures up to 25 bar) with a working capacity of >2.5 wt.% and an attrition rate of <0.2; (iii) TEA showed that the MR-AR technology met the CO2 capture goals of 95% CO2 purity at a cost of electricity (COE) 30% less than baseline approaches.
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