会议论文详细信息
2016 2nd International Conference on Mechanical and Aeronautical Engineering (ICMAE 2016)
Experimental Study of an On-board Fuel Tank Inerting System
机械制造;航空航天工程
Wu, Fei^1 ; Lin, Guiping^1 ; Zeng, Yu^1 ; Pan, Rui^1 ; Sun, Haoyang^1
School of Aeronautic Science and Engineering, Beihang University, Beijing
100191, China^1
关键词: Concentrated flow;    Hollow fiber membranes;    Inerting systems;    Nitrogen-enriched;    On-board fuels;    Operating parameters;    Oxygen concentrations;    Utilization efficiency;   
Others  :  https://iopscience.iop.org/article/10.1088/1757-899X/187/1/012010/pdf
DOI  :  10.1088/1757-899X/187/1/012010
学科分类:航空航天科学
来源: IOP
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【 摘 要 】

A simulated aircraft fuel tank inerting system was established and experiments were conducted to investigate the performance of the system. The system uses hollow fiber membrane which is widely used in aircraft as the air separation device and a simplified 20% scale multi compartment fuel tank as the inerting object. Experiments were carried out to investigate the influences of different operating parameters on the inerting effectiveness of the system, including NEA (nitrogen-enriched air) flow rate, NEA oxygen concentration, NEA distribution, pressure of bleeding air and fuel load of the tank. Results showed that for the multi compartment fuel tank, concentrated flow washing inerting would cause great differences throughout the distribution of oxygen concentration in the fuel tank, and inerting dead zone would exist. The inerting effectiveness was greatly improved and the ullage oxygen concentration of the tank would reduce to 12% successfully when NEA entered three compartments evenly. The time span of a complete inerting process reduced obviously with increasing NEA flow rate and decreasing NEA concentration, but the trend became weaker gradually. However, the reduction of NEA concentration will decrease the utilization efficiency of the bleeding air. In addition, the time span can also be reduced by raising the pressure of bleeding air, which will improve the bleeding air utilization efficiency at the same time. The time span decreases linearly as the fuel load increases.

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