Study on oxygen transport and titanium oxidation in coating cracks under parallel gas flow based on LBM modelling
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Study on oxygen transport and titanium oxidation in coating cracks under parallel gas flow based on LBM modelling
Study on oxygen transport and titanium oxidation in coating cracks under parallel gas flow based on LBM modelling
中国化学工程学报(英文版)2023年56卷第4期 页码:15-24
Affiliations:
1. Department of Engineering Physics, Tsinghua University,Beijing,China,100084
2. Department of Mechanics and Aerospace Engineering, Southern University of Science and Technology,Shenzhen,China,518055
3. Institute for Aero Engine, Tsinghua University,Beijing,China,100084
4. Shenzhen Smart Hua Information Technology Research Co., Ltd.,Shenzhen,China,518000
5. School of Aerospace Engineering, Tsinghua University,Beijing,China,100084
6. Chinese Academy of Agricultural Mechanization Sciences,Beijing,China,100084
Author bio:
Funds:
DOI:
中图分类号:
纸质出版:2023
Accepted:
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Shengfeng Luo, Song Zhang, Yiping Zeng, 等. Study on oxygen transport and titanium oxidation in coating cracks under parallel gas flow based on LBM modelling[J]. 中国化学工程学报(英文版), 2023,56(4):15-24.
Shengfeng Luo, Song Zhang, Yiping Zeng, Hui Zhang, Lili Zheng, Zhaopeng Xu. Study on oxygen transport and titanium oxidation in coating cracks under parallel gas flow based on LBM modelling[J]. Chinese Journal of Chemical Engineering, 2023, 56(4): 15-24.
Shengfeng Luo, Song Zhang, Yiping Zeng, 等. Study on oxygen transport and titanium oxidation in coating cracks under parallel gas flow based on LBM modelling[J]. 中国化学工程学报(英文版), 2023,56(4):15-24.DOI:
Shengfeng Luo, Song Zhang, Yiping Zeng, Hui Zhang, Lili Zheng, Zhaopeng Xu. Study on oxygen transport and titanium oxidation in coating cracks under parallel gas flow based on LBM modelling[J]. Chinese Journal of Chemical Engineering, 2023, 56(4): 15-24.DOI:
Study on oxygen transport and titanium oxidation in coating cracks under parallel gas flow based on LBM modelling
摘要
Abstract
The oxygen transportation from surrounding air to coating cracks is an important factor in the oxidation and ignition of titanium alloy. In this work
the oxygen transport and surface oxidation of titanium in inclined cracks of coating under parallel airflow are studied with the lattice Boltzmann method (LBM). A boundary scheme of LBM about surface reaction is developed. The conversion factors are utilized to build the relationship between the physical scale and the lattice scale. The reliability of the LBM model is validated by the finite element method (FEM). The results show that the convective mass transport driven by the surrounding airflow and the vortex structure formed inside the crack are the two significant factors that influence the oxygen transport in cracks. The convective mass transfer plays a major role in oxygen transport when the inclination angle of the crack is small. For the cases with a large inclination angle
the oxygen transfer from the top to the bottom of the crack is mainly controlled by mass diffusion mechanism. The oxygen concentration in inclined cracks is generally less than that in vertical cracks
and oxidation and ignition of the substrate titanium might be more likely to occur in relatively vertical cracks.
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相关作者
Li Xinyu
Song Yiwen
Teng Shenglong
Zeng Dewang
Xu Jingxin
Xiao Liang
Xu Jiahui
Dai Jiawei
相关机构
Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education, School of Energy and Environment, Southeast University
State Key Laboratory of Low-carbon Smart Coal-fired Power Generation and Ultra-clean Emission, China Energy Science and Technology Research Institute Co.,Ltd.
Zhejiang Key Laboratory of Surface and Interface Science and Engineering for Catalysts, College of Chemical Engineering, Zhejiang University of Technology
Xiangjiang Laboratory
School of Petrochemical Engineering, Changzhou University