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Featured researches published by Pingan Chen.


International Journal of Materials Research | 2016

The relationship between the pore size distribution and the thermo-mechanical properties of high alumina refractory castables

Yaxiong Li; Xiangcheng Li; Boquan Zhu; Pingan Chen

Abstract A series of high alumina refractory castables were prepared via casting with tabular alumina aggregates (0.088 – 5 mm), fine powders, and calcium aluminate cement as starting materials. The effect of the median diameter of alumina (D50 = 7.26 μm, 5.33 μm, 2.37 μm) on the thermo-mechanical properties of the refractory castables was investigated. The results indicate that the decrease in the alumina particle size from 7.26 μm to 2.37 μm has little influence on both the apparent porosity and bulk density of castables. However, the median pore size of castables fired after 1 600 °C decreased drastically from 4.7 μm to 2.4 μm correspondingly, which led to significant growth in the strength and thermal shock resistance of castables. The cold modulus of rupture and crushing strength were increased by 201 % and 120 %, respectively. At the same time, the hot modulus of rupture and elastic modulus were also increased by 143 % and 127 %, respectively. The residual elastic modulus was enhanced twice after three thermal cycles.


International Journal of Materials Research | 2016

In-situ formation of MgO whiskers and CNTs and their influence on the mechanical properties of low-carbon MgO–C refractory composites

Wei Luo; Boquan Zhu; Xiangcheng Li; Pingan Chen; Zheng Ma; Xuan Wang

Abstract The influence of the addition of Ni(NO3)2 · 6H2O on the microstructure and mechanical properties of low-carbon MgO–C refractory composites was investigated. The results indicated that MgO whiskers and carbon nanotubes could be generated in low-carbon MgO–C refractory composites with Ni(NO3)2 · 6H2O in a reducing atmosphere at 1 200 °C. The magnitudes of the cold crushing strength, the cold modulus of rupture, the fracture displacement, and the residual cold crushing strength are increased by 47 %, 66 %, 8 % and 26 %, respectively. The MgO–C refractory composites with the addition of 0.6 wt.% Ni(NO3)2 · 6H2O result in better overall properties. The MgO whiskers were generated via a dissolution–diffusion–precipitation mechanism, and their growth is in accordance with the vapour–liquid–solid model.


Materials | 2018

Effect of Colloidal Silica on the Hydration Behavior of Calcium Aluminate Cement

Feng Wang; Pingan Chen; Xiangcheng Li; Boquan Zhu

The effect of colloidal silica (CS) on the hydrate phases and microstructure evolution of calcium aluminate cement (CAC) was investigated. Samples hydrated with CS were obtained and characterized by X-ray diffraction (XRD), Field Emission Scanning Electron Microscopy (FESEM), Fourier Transform Infrared spectroscopy (FT-IR), hydration heat measurement and Nuclear Magnetic Resonance (NMR). The results revealed that SiO2 nanoparticles may affect the hydrates crystallization process. There was a compact structure in the CAC paste with CS, while petal-shaped hydrates with a porous structure were formed in the pure CAC paste. The maximum value of electrical conductivity for CAC paste with CS suggested that the early stage of hydration for CAC was accelerated. However, the hydration heat curves revealed that the late stage of the CAC hydration process was inhibited, and the hydration degree was reduced, this result was in accordance with Thermogravimetry-Differential scanning calorimetry(TG-DSC) curves. The fitting results of hydration heat curves further showed that the hydration degree at NG (nucleation and crystal growth) process stage was promoted, while it was limited at the phase boundaries stage, and the diffusion stage in the hydration reaction was brought forward due to the addition of CS. According to these results and analyses, the differences in the hydration process for CAC with and without CS can be attributed to the distribution and nucleation effect of SiO2 nanoparticles.


Materials | 2018

Research Status and Prospect on Vanadium-Based Catalysts for NH3-SCR Denitration

Jie Zhang; Xiangcheng Li; Pingan Chen; Boquan Zhu

Selective catalytic reduction of NOx with NH3 is one of the most widely used technologies in denitration. Vanadium-based catalysts have been extensively studied for the deNOx process. V2O5/WO3(MoO3)TiO2 as a commercial catalyst has excellent catalytic activity in the medium temperature range. However, it has usually faced several problems in practical industrial applications, including narrow windows of operation temperatures, and the deactivation of catalysts. The modification of vanadium-based catalysts will be the focus in future research. In this paper, the chemical composition of vanadium-based catalysts, catalytic mechanism, the broadening of the temperature range, and the improvement of erosion resistance are reviewed. Furthermore, the effects of four major systems of copper, iron, cerium and manganese on the modification of vanadium-based catalysts are introduced and analyzed. It is worth noting that the addition of modified elements as promoters has greatly improved the catalytic performance. They can enhance the surface acidity, which leads to the increasing adsorption capacity of NH3. Surface defects and oxygen vacancies have also been increased, resulting in more active sites. Finally, the future development of vanadium-based catalysts for denitration is prospected. It is indicated that the main purpose for the research of vanadium-based modification will help to obtain safe, environmentally friendly, efficient, and economical catalysts.


International Journal of Materials Research | 2018

Oxidation resistance and wettability of graphite/SiC composite

Chaofan Yin; Xiangcheng Li; Pingan Chen; Girish M. Kale; Boquan Zhu

Abstract A graphite/SiC composite was synthesized at different calcination temperatures using microsilica and carboxymethylated cellulose. The oxidation resistance and wettability (with water) of graphite/SiC were investigated. The results showed that carboxymethylated cellulose could react with microsilica to form a coating of SiC on the surface of graphite at elevated temperatures. Consequently, SiO2 phase was converted into SiC phase above 1 600 °C. The microstructure of the SiC coating on graphite became denser with the increase in temperature. Thermogravimetric curves revealed that the weight loss of graphite was approximately 97.3 wt.% whereas the value decreased to 29.78 wt.% when SiC was formed. Differential scanning calorimetry analysis showed that the SiC coating decreased the enthalpy of the carbon oxidation reaction from 12.02 kJ g−1 to 1.14 kJ g−1, confirming excellent oxidation resistance. Furthermore, the water contact angle of graphite was approximately 78.5° whereas that of the graphite/SiC composite was reduced to 43°. The study of the formation of graphite/SiC composite showed that SiO2 could be reduced using carboxymethylated cellulose to SiO (g), which was deposited on the graphite to form SiC coating.


Interceram - International Ceramic Review | 2015

Effect of Nano Metallic Fe on Al 5 O 6 N Synthesis in Al 2 O 3 -C Refractories

Xiumin Tan; Zhang Zhao; Pingan Chen; Xiangcheng Li; Boquan Zhu

Al2O3-C refractory samples were prepared using corundum, flake graphite, Al and Si powders and phenolic resin as raw materials. The in-situ synthesis mechanism of Al5O6N in Al2O3-C refractories was studied and the effect of adding nano metallic Fe on the formation and microstructure of Al5O6N phase was also investigated. Thermodynamic calculations show that Al5O6N can potentially be synthesized in a reducing atmosphere at 1600°C over a narrow range of N2 and CO pressures. Experimental results proved that Al5O6N phase was synthesized after 1600°C heat treatment when nano Fe was added to Al2O3-C refractories. As the content of nano Fe increases, Al5O6N particles show disappearance of oriented growth, with octahedron shapes turning into spherical agglomerations.


Ceramics International | 2016

Microstructure evolution during the heating process and its effect on the elastic properties of CAC-bonded alumina castables

Yulong Wang; Xiangcheng Li; Boquan Zhu; Pingan Chen


Materials Chemistry and Physics | 2015

Synthesis and hydration kinetics of calcium aluminate cement with micro MgAl2O4 spinels

Boquan Zhu; Yanan Song; Xiangcheng Li; Pingan Chen; Zheng Ma


Ceramics International | 2016

Effect of dispersants on the hydrate morphologies of spinel-containing calcium aluminate cement and on the properties of refractory castables

Yulong Wang; Boquan Zhu; Xiangcheng Li; Pingan Chen


Ceramics International | 2015

In-situ synthesis mechanism of plate-shaped β-Sialon and its effect on Al2O3–C refractory properties

Xing Deng; Xiangcheng Li; Boquan Zhu; Pingan Chen

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Boquan Zhu

Wuhan University of Science and Technology

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Xiangcheng Li

Wuhan University of Science and Technology

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Yulong Wang

Wuhan University of Science and Technology

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Binxiang Fang

Wuhan University of Science and Technology

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Jianwei Lian

Wuhan University of Science and Technology

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Chaofan Yin

Wuhan University of Science and Technology

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Dingqiao Guo

Wuhan University of Science and Technology

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Xing Deng

Wuhan University of Science and Technology

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Yanan Song

Wuhan University of Science and Technology

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Yaxiong Li

Wuhan University of Science and Technology

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