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Nucleation in Metallic Melt on the Ground and under Elevated Gravity 被引量:9
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作者 kuiying chen Zhuangqi HU and Bingzhe DING (State Key Lab of RSA, Institute of Metal Research, Chinese Academy of Sciences, Shenyang, 110015, China)(To whom correspondence should be addressed) 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 1994年第4期307-309,共3页
The expressions for nucleation rate in metallic melt on the ground and under elevated gravity have been derived theoretically and the effects of gravity and elevated gravity on nucleation rate have been discussed. A c... The expressions for nucleation rate in metallic melt on the ground and under elevated gravity have been derived theoretically and the effects of gravity and elevated gravity on nucleation rate have been discussed. A comparison of nucleation rate under microgravity with those on the ground and under elevated gravity has also been made 展开更多
关键词 exp Nucleation in Metallic Melt on the Ground and under Elevated Gravity
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Bonding Characteristics of TiC and TiN
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作者 kuiying chen Sami Kamran 《Modeling and Numerical Simulation of Material Science》 2013年第1期7-11,共5页
Using ab initio density functional theory calculations, the electron localization function (ELF) of typical transition metal carbide TiC and nitride TiN were computed and analyzed to reveal their nature of the chemica... Using ab initio density functional theory calculations, the electron localization function (ELF) of typical transition metal carbide TiC and nitride TiN were computed and analyzed to reveal their nature of the chemical bonds. The ELF approach was initially validated through typical examples of covalent-bonding Diamond (C) and ionic-bonding sodium chloride NaCl. Our results clearly demonstrate the dominantly ionic bonding characteristics of TiC and TiN. It is also suggested that the high mechanical hardness of TiC and TiN can be explained without evoking strong covalence. 展开更多
关键词 Ab INITIO Calculation Chemical BOND ELECTRON LOCALIZED Function TIC TIN
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Erosion Resistance of Stellite Alloys under Solid-Particle Impact
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作者 Sydney Nsoesie Rong Liu +1 位作者 kuiying chen Matthew Yao 《材料科学与工程(中英文B版)》 2013年第9期555-566,共12页
关键词 司太立合金 固体颗粒 铬钴合金 性能 水蚀 侵蚀试验 撞击速度 金属间化合物
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Analytical modeling of oxide thickness variation of metals under high temperature solid-particle erosion 被引量:1
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作者 Ju chen kuiying chen +1 位作者 Rong Liu Ming Liang 《International Journal of Modeling, Simulation, and Scientific Computing》 EI 2014年第3期1-16,共16页
The paper presents a study of model development for predicting the oxide thickness on metals under high temperature solid-particle erosion.The model is created based on the theory of solid-particle erosion that charac... The paper presents a study of model development for predicting the oxide thickness on metals under high temperature solid-particle erosion.The model is created based on the theory of solid-particle erosion that characterizes the erosion damage as deformation wear and cutting wear,incorporating the effect of the oxide scale on the eroded surface under high temperature erosion.Then the instantaneous oxide thickness is the result of the synergetic effect of erosion and oxidation.The developed model is applied on a Ni-based Al-containing(Ni–Al)alloy to investigate the oxide thickness variation with erosion duration of the alloy at high temperatures.The results show that the thickness of the oxide scale on the alloy surface increases with the exposure time and temperature when the surface is not attacked by particles.However,when particles impact on the alloy surface,the oxide thickness is reduced,although oxidation is continuing.This indicates that oxidation does not benefit the erosion resistance of this alloy at high temperatures due to the low growth rate of the oxide. 展开更多
关键词 EROSION oxidation high temperature oxide scale thickness particle impact velocity particle impinging angle
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Modeling study of solid-particle erosion with consideration of particle velocity dependent model parameters
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作者 Shijie Qian kuiying chen +1 位作者 Rong Liu Ming Liang 《International Journal of Modeling, Simulation, and Scientific Computing》 EI 2016年第3期243-262,共20页
An advanced erosion model that correlates two model parameters—the energies required to remove unit mass of target material during cutting wear and deformation wear,respectively,with particle velocity,particle size a... An advanced erosion model that correlates two model parameters—the energies required to remove unit mass of target material during cutting wear and deformation wear,respectively,with particle velocity,particle size and density,as well as target material properties,is proposed.This model is capable of predicting the erosion rates for a material under solid-particle impact over a specific range of particle velocity at the impingement angle between 0◦and 90◦,provided that the experimental data of erosion rate for the material at a particle velocity within this range and at impingement angles between 0◦and 90◦are available.The proposed model is applied on three distinct types of materials:aluminum,perspex and graphite,to investigate the dependence behavior of the model parameters on particle velocity for ductile and brittle materials.The predicted model parameters obtained from the model are validated by the experimental data of aluminum plate under Al2O3 particle impact.The significance and limitation of the model are discussed;possible improvements on the model are suggested. 展开更多
关键词 Solid-particle erosion particle impact velocity particle impingement angle cutting wear deformation wear erosion rate
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