中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Development and application of ANN model for property prediction of supercritical kerosene

文献类型:期刊论文

作者Li B(李波)1,2; Lee YC(李亚超)1,2; Yao W(姚卫)1,2; Fan XJ(范学军)1,2
刊名Computers and Fluids
出版日期2020-09
卷号209期号:2020页码:1-18
ISSN号0045-7930
关键词Artificial Neural Network (Ann) Principle Of Extended Corresponding State (Ecs) Rp-3 Kerosene Superitical Pressure Openfoam
DOI10.1016/j.compfluid.2020.104665
英文摘要

Three artificial neural network (ANN) models were developed to predict the fluid properties of China RP3 kerosene under supercritical pressure in replacement of the time-consuming property calculations by the principle of Extended Corresponding State (ECS). The analysis shows that the properties predicted by the trained ANN models agree well with the calculations by the ECS method. The correlation coefficients (R) between the ANN predictions and the ECS calculations are higher than 0.99, and most of the relative errors are lower than 0.1%. The prediction by the ANN models is of several orders (104) faster than that by the ECS method, especially near the critical points. The trained ANN model was further coupled with the CFD modeling of a realistic kerosene jet, where high efficiency and satisfactory accuracy were shown compared with the direct ECS calculations.

分类号二类
语种英语
WOS记录号WOS:000556841200011
其他责任者yao w, fan xj
源URL[http://dspace.imech.ac.cn/handle/311007/84807]  
专题力学研究所_高温气体动力学国家重点实验室
通讯作者Yao W(姚卫); Fan XJ(范学军)
作者单位1.School of Engineering Science, University of Chinese Academy of Science,
2.State Key Laboratory of High Temperature Gas Dynamics, Institute of Mechanics, CAS
推荐引用方式
GB/T 7714
Li B,Lee YC,Yao W,et al. Development and application of ANN model for property prediction of supercritical kerosene[J]. Computers and Fluids,2020,209(2020):1-18.
APA Li B,Lee YC,Yao W,&Fan XJ.(2020).Development and application of ANN model for property prediction of supercritical kerosene.Computers and Fluids,209(2020),1-18.
MLA Li B,et al."Development and application of ANN model for property prediction of supercritical kerosene".Computers and Fluids 209.2020(2020):1-18.

入库方式: OAI收割

来源:力学研究所

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