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Featured researches published by Guang Xu.


Metals and Materials International | 2017

New Insights to the Promoted Bainitic Transformation in Prior Deformed Austenite in a Fe-C-Mn-Si Alloy

Haijiang Hu; Guang Xu; Mingxing Zhou; Qing Yuan

The varying trends of the amount and rate of bainitic transformation with strains at low temperature were investigated through metallography, X-ray diffraction and dilatometry. The results show that deformation at 573 K promotes bainitic transformation, whereas the promotion degree on bainite transformation by ausforming is nonlinear with strains. The amount of bainite in deformed austenite first increases and then decreases with the increase of strains. There exists a maximum value of the promotion effect corresponding to a critical small strain at a low temperature. Bainitic transformation rate can be increased by ausforming at low temperature, whereas a large strain weakens the acceleration effect. The amount of bainite in deformed materials is synthetically depended on the effect of enhanced nucleation and repressed growth. In addition, the volume fraction of retained austenite is not completely consistent with carbon content, indicating that ausforming plays a important role in determining the amount of austenite.


Transactions of The Indian Institute of Metals | 2018

In Situ Observation of the Lengthening Rate of Bainite Sheaves During Continuous Cooling Process in a Fe–C–Mn–Si Superbainitic Steel

Junyu Tian; Guang Xu; Li Wang; Mingxing Zhou; Haijiang Hu

The evolution of lengthening rate of bainite sheaves during continuous cooling process in a Fe–C–Mn–Si superbainitic steel was investigated by in situ observation on high-temperature laser scanning confocal microscope. The lengthening rates of bainite sheaves in three temperature ranges were calculated. The results indicate that the lengthening rate of bainite sheaves continuously decreases with the decrease of temperature during continuous cooling process. The lengthening rate of bainite sheaf depends on undercooling, transformation temperature, the diffusion of carbon atoms and the carbon content in parent austenite etc. The lengthening rate at high temperature is large due to the favorable carbon diffusion, smaller carbon content and less plastic deformation in untransformed austenite. Additionally, the microstructures after different isothermal holding temperatures were analyzed, indicating that the larger lengthening rate of bainite sheaves due to the high isothermal transformation temperature does not mean more amount of bainite transformation. Lower bainitic transformation temperature results in more and finer bainite plates.


Transactions of The Indian Institute of Metals | 2018

A Method to Reduce the Oxide Scale of Silicon-Containing Steels by Adjusting the Heating Route

Qing Yuan; Guang Xu; Bei He; Mingxing Zhou; Haijiang Hu

A method to reduce the scale of silicon-containing steels by adjusting the heating route has been proposed in the present study. The influence of heating rate on the oxidizing behavior of steels containing Si was studied by simultaneous thermal analyzer with various heating rates under the condition of the fixed heating time and same heating temperature. The heating process was divided into two sections, i.e., fast heating stage and slow-heating stage. Three kinds of heating route with different end temperatures at fast heating stage and different heating rates at slow-heating stage were designed. Additionally, the solidification process of Fe2SiO4 at different cooling rates was observed by in situ observation. The results showed that the amount of Fe2SiO4 and oxidation mass gain both decreased with the decrease of end temperature at fast-heating stage. Likewise, the net-like distribution of Fe2SiO4 became less apparent with the decrease of end temperature at fast-heating stage and the increase of the heating rate at slow-heating stage. Therefore, it would be beneficial for descaling with a heating route of a lower end heating temperature at the fast-heating stage and a higher heating rate at slow-heating stage. Besides, the solidifying point of Fe2SiO4 decreased apparently at a higher cooling rate.


Metals and Materials International | 2018

Kinetics model of bainitic transformation with stress

Mingxing Zhou; Guang Xu; Haijiang Hu; Qing Yuan; Junyu Tian

Thermal simulations were conducted on a Gleeble 3800 simulator. The main purpose is to investigate the effects of stress on the kinetics of bainitic transformation in a Fe-C-Mn-Si advanced high strength bainitic steel. Previous studies on modeling the kinetics of stress affected bainitic transformation only considered the stress below the yield strength of prior austenite. In the present study, the stress above the yield strength of prior austenite is taken into account. A new kinetics model of bainitic transformation dependent on the stress (including the stresses below and above the yield strength of prior austenite) and the transformation temperature is proposed. The new model presents a good agreement with experimental results. In addition, it is found that the acceleration degree of stress on bainitic transformation increases with the stress whether its magnitude is below or above the yield strength of austenite, but the increasing rate gradually slows down when the stress is above the yield strength of austenite.


Materials at High Temperatures | 2018

New insight to the oxidation kinetics of silicon-containing steel at high temperature

Bei He; Guang Xu; Qing Yuan; Mingxing Zhou; Weicheng Liang

Abstract This study investigated the oxidation kinetics of silicon-containing steel at 1150–1300 °C using a Simultaneous Thermal Analyzer under atmospheric conditions similar to that of an industry reheating furnace. There is a critical time point for the oxidation kinetics at an oxygen concentration of 4·0 vol.-%., following which the oxidation rate constant increases with the increasing oxidation temperature. The model coefficient A in the kinetic oxidation equation was found to be constant. However, before the critical time point, the oxidation rate constant remained unchanged; the model coefficient A decreased with the increasing temperature. Therefore, the kinetic model of silicon-containing steel for isothermal oxidation was observed to be a modified one on the basis of the experimental data. In addition, the critical time point was prolonged with the increasing isothermal oxidation temperature. Moreover, the oxidation activation energy of the tested silicon-containing steel was 366·16 kJ mol−1.


International Journal of Minerals Metallurgy and Materials | 2018

Effects of oxygen content on the oxidation process of Si-containing steel during anisothermal heating

Qing Yuan; Guang Xu; Weicheng Liang; Bei He; Mingxing Zhou

The oxidizing behavior of Si-containing steel was investigated in an O2 and N2 binary-component gas with oxygen contents ranging between 0.5vol% and 4.0vol% under anisothermal-oxidation conditions. A simultaneous thermal analyzer was employed to simulate the heating process of Si-containing steel in industrial reheating furnaces. The oxidation gas mixtures were introduced from the commencement of heating. The results show that the oxidizing rate remains constant in the isothermal holding process at high temperatures; therefore, the mass change versus time presents a linear law. A linear relation also exists between the oxidizing rate and the oxygen content. Using the linear regression equation, the oxidation rate at different oxygen contents can be predicted. In addition, the relationship between the total mass gain and the oxygen content is linear; thus, the total mass gain at oxygen contents between 0.5vol%–4.0vol% can be determined. These results enrich the theoretical studies of the oxidation process in Si-containing steels.


Metallography, Microstructure, and Analysis | 2017

Effects of Nb Addition on Transformation Kinetics and Microstructure Properties in Low-Carbon Bainitic Steels

Rong Hou; Guang Xu; Haijiang Hu; Mingxing Zhou

Abstract To investigate the effects of Nb addition on transformation kinetics and microstructure properties in low-carbon bainitic steels, two C–Si–Mn bainitic steels were designed, one of which was added with 0.025 (wt%) Nb and the other was C–Si–Mn steel. Heat treatment experiments were carried out on thermal simulator. The microstructures were observed by scanning electron microscope. The results show that lath-like bainite is obtained in both two steels. Film-like retained austenite distributes between bainite laths. In addition, Nb retards bainite transformation owing to smaller parent austenite grains in steel with Nb addition. However, Nb improves the strength of the low-carbon bainitic steel by grain refinement. Moreover, transformation kinetics equations for two tested steels are established based on the experimental data. The experimental results are useful to clarify the function of Nb in low-carbon bainitic steels and provide the theoretical reference for the composition design of low-carbon bainitic steels.


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2015

New insights to the effects of ausforming on the bainitic transformation

Haijiang Hu; Hatem S. Zurob; Guang Xu; David Embury; Gary R. Purdy


Metallurgical and Materials Transactions A-physical Metallurgy and Materials Science | 2014

Mechanical Behavior of Carbide-free Medium Carbon Bainitic Steels

Xiaoxu Zhang; Guang Xu; Xiang Wang; David Embury; Olivier Bouaziz; Gary R. Purdy; Hatem S. Zurob


Steel Research International | 2017

Effects of Strain and Deformation Temperature on Bainitic Transformation in a Fe–C–Mn–Si Alloy

Haijiang Hu; Guang Xu; Li Wang; Mingxing Zhou

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Haijiang Hu

Wuhan University of Science and Technology

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Mingxing Zhou

Wuhan University of Science and Technology

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Qing Yuan

Wuhan University of Science and Technology

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Junyu Tian

Wuhan University of Science and Technology

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Bei He

Wuhan University of Science and Technology

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Weicheng Liang

Wuhan University of Science and Technology

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