Study on Zero CO2 Emission Atmospheric Pressure SOFC Hybrid Power System Integrated With OTM

Author(s):  
Liqiang Duan ◽  
Kexin Huang ◽  
Yongping Yang ◽  
Xinming Chen ◽  
Xiaohui Song ◽  
...  

Based on a benchmark SOFC hybrid power system without CO2 capture, a zero CO2 emission atmospheric pressure SOFC hybrid power system integrated with oxygen ion transport membrane (OTM) is proposed. The oxygen is produced by the OTM for the oxy-fuel combustion afterburner, and the anode outlet gas of the SOFC is injected into the afterburner and then burns with the oxygen from OTM. So the combustion products of the afterburner are only composed of CO2 and H2O, CO2 in the flue gas can be separated and captured by a simple condensation method. After the recovery of heat and work by the heat recovery steam generator (HRSG) and steam turbine, part of the outlet flue gas from the HRSG is injected into the afterburner to reduce the outlet flue gas temperature of the afterburner to about 1100°C, 200°C higher than the operating temperature of OTM. The rest exits the system and CO2 is captured. The fuel utilization factor of SOFC and the pressure ratio (π) between two sides of OTM membrane as the key factors which greatly influence the overall system performance are analyzed and optimized. The research results show that the efficiency of the zero CO2 emission atmospheric pressure SOFC hybrid power system integrated with OTM is around 58.36%, only 2.48% lower than that of the benchmark system (60.84%) but 0.96% higher than that of the zero CO2 emission atmospheric pressure SOFC hybrid system integrated with the cryogenic air separation unit. The research achievements from this paper will help for further study on zero CO2 emissions SOFC hybrid power system with higher efficiency.

2012 ◽  
Vol 14 ◽  
pp. 470-475 ◽  
Author(s):  
Yuanyuan Li ◽  
Na Zhang ◽  
Ruixian Cai

2014 ◽  
Vol 38 (11) ◽  
pp. 1403-1415 ◽  
Author(s):  
Liqiang Duan ◽  
Kexin Huang ◽  
Yongping Yang ◽  
Xinming Chen ◽  
Xiaohui Song

2019 ◽  
Vol 139 (4) ◽  
pp. 259-268
Author(s):  
Effat Jahan ◽  
Md. Rifat Hazari ◽  
Mohammad Abdul Mannan ◽  
Atsushi Umemura ◽  
Rion Takahashi ◽  
...  

Energies ◽  
2019 ◽  
Vol 12 (10) ◽  
pp. 1889 ◽  
Author(s):  
Nicu Bizon ◽  
Valentin Alexandru Stan ◽  
Angel Ciprian Cormos

In this paper, a systematic analysis of seven control topologies is performed, based on three possible control variables of the power generated by the Fuel Cell (FC) system: the reference input of the controller for the FC boost converter, and the two reference inputs used by the air regulator and the fuel regulator. The FC system will generate power based on the Required-Power-Following (RPF) control mode in order to ensure the load demand, operating as the main energy source in an FC hybrid power system. The FC system will operate as a backup energy source in an FC renewable Hybrid Power System (by ensuring the lack of power on the DC bus, which is given by the load power minus the renewable power). Thus, power requested from the batteries’ stack will be almost zero during operation of the FC hybrid power system based on RPF-control mode. If the FC hybrid power system operates with a variable load demand, then the lack or excess of power on the DC bus will be dynamically ensured by the hybrid battery/ultracapacitor energy storage system for a safe transition of the FC system under the RPF-control mode. The RPF-control mode will ensure a fair comparison of the seven control topologies based on the same optimization function to improve the fuel savings. The main objective of this paper is to compare the fuel economy obtained by using each strategy under different load cycles in order to identify which is the best strategy operating across entire loading or the best switching strategy using two strategies: one strategy for high load and the other on the rest of the load range. Based on the preliminary results, the fuel consumption using these best strategies can be reduced by more than 15%, compared to commercial strategies.


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