DocumentCode :
2078771
Title :
Numerical simulation of particle impacting on substrate in low temperature and high velocity oxygen/air fuel spraying process
Author :
Zhan, Jun ; Chen, Guiming ; Zhang, Qian
Author_Institution :
Dept. of Mil. Equip. Manage. Eng., Univ. of the Second Artillery Eng. Coll., Xian, China
fYear :
2008
fDate :
22-25 Nov. 2008
Firstpage :
1289
Lastpage :
1292
Abstract :
The impact behavior of spraying copper particle on substrate in low temperature and high velocity oxygen/air fuel(LT-HVO/AF) spraying process is studied by using the method of finite element Lagrange analysis, analyzing the relation of particle velocity, deformation behavior and temperature. It is found that impact velocity directly influences the entire impact process and confirmed that there is the critical velocity for particle deposition and adiabatic shear instability of particle which is about 550 m/s and 650 m/s. As the particle velocity rises, the particle deformation, particle temperature and contact area of particle and substrate increase all increases. When the particle velocity achieves 800 m/s, the highest temperature at the interface with particle and substrate achieves or up to the melting point of particle which leads to the metallurgical bonding of the particle with the substrate.
Keywords :
air; computational fluid dynamics; copper; deformation; finite element analysis; heat treatment; melting point; metallurgy; oxygen; spray coating techniques; sprays; thermal spraying; Cu; Lagrange analysis; O2; adiabatic shear instability; copper particle spray; critical particle velocity; deformation behavior effects; finite element method; low temperature high velocity spraying; metallurgical bonding; oxygen-air fuel spraying process; particle deposition; particle melting point; particle velocity effects; particle-substrate impact; temperature effects; velocity 800 m/s; Bonding; Capacitive sensors; Coatings; Finite element methods; Fuels; Lagrangian functions; Numerical simulation; Plastics; Spraying; Temperature; Spraying; adiabatic shear instability; impact Deformation; numerical simulation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer-Aided Industrial Design and Conceptual Design, 2008. CAID/CD 2008. 9th International Conference on
Conference_Location :
Kunming
Print_ISBN :
978-1-4244-3290-5
Electronic_ISBN :
978-1-4244-3291-2
Type :
conf
DOI :
10.1109/CAIDCD.2008.4730801
Filename :
4730801
Link To Document :
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