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耗氧型惰化系统反应器性能理论
引用本文:谢辉辉,冯诗愚,彭孝天,潘俊,王洋洋.耗氧型惰化系统反应器性能理论[J].北京航空航天大学学报,2019,45(11):2312-2319.
作者姓名:谢辉辉  冯诗愚  彭孝天  潘俊  王洋洋
作者单位:南京航空航天大学航空学院飞行器环境控制与生命保障工业和信息化部重点实验室,南京,210016;中国航空工业集团有限公司南京机电液压工程研究中心航空机电系统综合航空科技重点实验室,南京,211106
基金项目:中央高校基本科研业务费专项资金江苏省研究生科研与实践创新计划KYCX19_0198江苏高校优势学科建设工程
摘    要:为了研究耗氧型燃油惰化系统中反应器的工作特性,在Fluent 17.0软件多孔介质模型基础上以用户自定义变量(UDS)形式添加固相能量方程来建立气-固两相耦合传热的两温度反应器模型,以大庆RP-3燃油为对象并通过实验测试了其反应动力学方程,然后以用户自定义函数(UDF)源项的形式添加化学反应,对反应器进行了仿真。研究了不同工况对反应器惰化效率的影响,以及反应器在惰化过程中的内部温度及RP-3浓度变化特性。结果显示:反应物浓度对转化率的影响与氧浓度饱和值有关系,在没有额外冷却的情况下反应器会飞温,化学反应主要发生在反应器的后半段,且靠近反应器轴线处。因此在未来设计反应器时,应当考虑额外冷却措施以防止飞温,使催化床温度均匀分布来提高反应器工作效率。 

关 键 词:催化燃烧  反应器  燃油箱  惰化系统  RP-3
收稿时间:2019-03-20

Theoretical of reactor performance in oxygen consumption based inerting system
Institution:1.Key Laboratory of Aircraft Environmental Control and Life Support of Ministry of Industry and Information Technology, College of Aerospace Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China2.Aviation Key Laboratory of Science and Technology on Aero-Electromechanical System Integration, Nanjing Engineering Institute of Aircraft Systems, Aviation Industry Corporation of China, Nanjing 211106, China
Abstract:In order to research the working performance of the reactor in oxygen consumption based fuel tank inerting system, the solid phase energy equation was added in the form of UDS to establish the two temperatures reactor model with gas-solid two-phase coupled heat transfer on the basis of Fluent 17.0 software porous medium model, the reaction kinetic equation was tested experimentally with Daqing RP-3 fuel as the object, and the chemical reaction was added in the form of UDF source terms to simulate the reactor. This paper studied the effects of different operating conditions on the inerting efficiency of the reactor, as well as the internal temperature of the reactor in inerting process and variation characteristics of RP-3 concentration. The results show that the effect of reactant concentration on conversion is related to the saturation value of oxygen concentration; the absence of additional cooling will lead to temperature run-away, and the chemical reaction mainly occurs in the second half section of the reactor and is close to the reactor axis. Therefore, when designing the reactor in the future, additional cooling measures should be considered to prevent the temperature run-away and make the temperature of the catalytic bed evenly distributed to improve the work efficiency of the reactor. 
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