Nonequilibrium model of water generation in Aircraft Fuel Tanks

被引:0
作者
Shao, Lei [1 ,2 ]
Yang, Wenju [1 ,2 ]
Chen, Bohan [1 ]
He, Jiawei [1 ,2 ]
Tan, Jingxin [1 ]
Yang, Jiahao [1 ]
机构
[1] Chongqing Jiaotong Univ, Sch Aeronaut, Chongqing 400074, Peoples R China
[2] Chongqing Jiaotong Univ, Green Aerotech Res Inst, Chongqing 401120, Peoples R China
关键词
Aircraft fuel tank; Water contaminant; Heat mass transfer; Numerical simulation; Nonequilibrium; Fuel system; JET FUEL; ICE;
D O I
10.1016/j.csite.2023.103235
中图分类号
O414.1 [热力学];
学科分类号
摘要
To investigate the formation of water contaminants in fuel tanks, a nonequilibrium model based on heat and mass transfer is established, and the dissolved water, suspended water, condensed water, free water are analyzed under different conditions. The results show that: With the increase in the heat transfer time constant between fuel and ullage, the volume of condensed water and free water will reach its maximum. The largest volume of free water calculated in this research occurs when the heat transfer time constant between fuel and ullage is equal to 1 ms(-1) and 0.8889 L of free water are produced. The time constant of condensation has a similar effect on the volume of condensed and free water as the heat transfer time constant between fuel and ullage. Compared with the effect of the heat transfer time constant between fuel and ullage, the volume change of condensed water and free water is smaller. When the time constants are less than 1 ms(-1), the volumes of suspended water, condensate water, and free water increase obviously with the increase of the time constants, and the volume of dissolved water decreases gradually, but these phenomena become less obvious after the time constants increase to 1 ms(-1).
引用
收藏
页数:11
相关论文
共 32 条
[1]   Behaviour of water in jet fuel-A literature review [J].
Baena-Zambrana, S. ;
Repetto, S. L. ;
Lawson, C. P. ;
Lam, J. K. -W. .
PROGRESS IN AEROSPACE SCIENCES, 2013, 60 :35-44
[2]   Biofouling of membrane distillation, forward osmosis and pressure retarded osmosis: Principles, impacts and future directions [J].
Bogler, Anne ;
Lin, Shihong ;
Bar-Zeev, Edo .
JOURNAL OF MEMBRANE SCIENCE, 2017, 542 :378-398
[3]  
Branch A.A.I., 2010, AIRCRAFT ACCIDENT RE, P2010
[4]   Possibilities for conversion of microalgae oil into aviation fuel: A review [J].
Bwapwa, Joseph K. ;
Anandraj, Akash ;
Trois, Cristina .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 80 :1345-1354
[5]  
Charro A., 2015, SAE 2015 AEROTECH C
[6]   Water behavior of current jet fuel versus operating conditions: Storage time, temperature, relative humidity and anti-icing agent [J].
Chen, Teng ;
Xu, Xin ;
Hu, Jianqiang ;
Guo, Li ;
Yang, Shizhao ;
Zhao, Tianxiang ;
Ma, Jun .
FUEL, 2022, 309
[7]  
F.A.A. FAA, 2018, AVIATION MAINTENANCE, V2
[8]   Dissolved water in jet fuels: a low-temperature quality and water solubility study [J].
Fu, Jinxia .
FUEL, 2023, 331
[9]   X-ray tomography for 3D analysis of ice particles in jet A-1 fuel [J].
Haffar, Iheb ;
Flin, Frederic ;
Geindreau, Christian ;
Petillon, Nicolas ;
Gervais, Pierre-Colin ;
Edery, Vincent .
POWDER TECHNOLOGY, 2021, 384 :200-210
[10]  
Hasani R, 2021, AAAI CONF ARTIF INTE, V35, P7657