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Dive into the research topics where Ding Wenjiang is active.

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Featured researches published by Ding Wenjiang.


Journal of Materials Science | 2001

Effects of Ca addition on the microstructure and mechanical properties of AZ91magnesium alloy

Wang Qudong; Chen Wenzhou; Zeng Xiaoqin; Lu Yizhen; Ding Wenjiang; Zhu Yan-ping; Xu Xiaoping; Mamoru Mabuchi

The effects of Ca addition on the microstructure and mechanical properties of AZ91 magnesium alloy have been studied. The results show that the Ca addition can refine the microstructure, reduce the quantity of Mg17Al12 phase, and form new Al2Ca phase in AZ91 magnesium alloy. With the Ca addition, the tensile strength and elongation of AZ91magnesium alloy at ambient temperature are reduced, whereas Ca addition confers elevated temperature strengthening on AZ91 magnesium alloy. The tensile strength at 150°C increases with increasing Ca content. The impact toughness of AZ91magnesium alloy increases, and then declines as the Ca content increases. The tensile and impact fractographs exhibit intergranular fracture features, Ca addition changes the pattern and quantity of tearing ridge, with radial or parallel tearing ridge increasing, tensile strength, elongation and impact toughness reduce.


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2001

Effects of bismuth and antimony additions on the microstructure and mechanical properties of AZ91 magnesium alloy

Yuan Guangyin; Sun Yangshan; Ding Wenjiang

The effects of bismuth and antimony additions on the microstructure and mechanical properties of AZ91 alloy have been studied. Results show that a small amount of bismuth or antimony additions to AZ91 increases the yield strength and creep resistance significantly at elevated temperatures up to 200°C. The highest creep resistance has been obtained from the alloy with combined additions of bismuth and antimony. The activation energies of the steady-state creep for AZ91-based alloys studied were close to that of pure magnesium self-diffusion, indicating that dislocation climb is responsible for the creep mechanism under the present conditions. Microstructural observations reveal that the additions of bismuth or antimony have the effect of refining the b (Mg17Al12) precipitates in as-cast alloys and suppressing discontinuous precipitation of the b phase effectively during the aging process. Some rod-shaped Mg3Bi2 or Mg3Sb2 particles distributed mainly at grain boundaries have been observed in the alloys with bismuth or antimony additions. Both Mg3Bi2 and Mg3Sb2 have a high thermal stability and play important roles in improving creep resistance of the alloys at elevated temperatures.


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2003

Microstructure and mechanical properties of Mg–Zn–Si-based alloys

Yuan Guangyin; Liu Manping; Ding Wenjiang; Akihisa Inoue

Abstract A new type of magnesium alloy based on Mg–Zn–Si system has been developed for automobile application. The solidification process, microstructure, mechanical properties and creep resistance of the new alloy have been studied. Results show that the Mg–6Zn–1Si alloy has good comprehensive mechanical properties and its creep resistance is better than that of AZ91 alloy. Proper additions of Ca were found to be efficient in refining the microstructure of Mg–6Zn–1Si alloy. A morphological change in Mg 2 Si particles from coarse Chinese script shape to a small polygonal type was also observed. The modification mechanism of Ca is polygonal type Mg 2 Si particles nucleate from CaSi 2 particles. Such improved microstructure of the Mg–6Zn–1Si–0.25Ca alloy results in significant improvement in tensile properties and creep resistance as compared to the Mg–6Zn–1Si base alloy.


Journal of Materials Processing Technology | 2001

Influence of beryllium and rare earth additions on ignition-proof magnesium alloys

Zeng Xiaoqin; Wang Qudong; Lu Yizhen; Zhu Yan-ping; Ding Wenjiang; Zhao Yunhu

Abstract A kind of magnesium alloy which has excellent ignition-proof performance and approximate chemical composition with AZ91D alloy was obtained by beryllium and rare earth (RE) addition. A high content of beryllium in magnesium alloy could prevent the ignition of the magnesium, but it also makes the grain coarse and decreases the tensile properties. RE elements were added to refine the grains and improve the tensile strength to the level of AZ91D. On the other hand, casting properties such as fluidity and hot-tearing property were better than those of AZ91D alloy.


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 1999

Study on the fluidity of AZ91+xRE magnesium alloy

Wang Qudong; Lu Yizhen; Zeng Xiaoqin; Ding Wenjiang; Zhu Yan-ping; Li Qinghua; Lan Jie

Influence of section thickness, pouring temperature, mould temperature and content of rare earth (RE) element on the fluidity of AZ91 magnesium alloy has been studied through fluidity specimens with different section thickness cast in metal mould. The results show that the relation curve of filling length versus section thickness can be divided into two parts: (i) the filling length in the thin section increases slowly with increasing section thickness, after a critical thickness; and (ii) the filling length in the thick section increases rapidly with increasing section thickness. Elevating the pouring temperature has little influence on the fluidity in the thin section, but increases the filling length in the thick section remarkably. As mould temperature increases, the fluidity in the thin section increases a little, but the fluidity in the thick section rapidly increases. As RE content increases, the fluidity in the thin section changes from increasing to decreasing, and the fluidity in the thick section changes from increasing to decreasing, and to increasing again. Moreover, the critical thickness separating region of thin and thickness section behavior moves to higher values.


Journal of Materials Science | 2002

High temperature deformation behavior of permanent casting AZ91 alloy with and without Sb addition

Yuan Guangyin; Wang Qudong; Ding Wenjiang

AbstractThe elevated temperature deformation behavior of permanent cast magnesium alloy AZ91 with and without Sb addition has been investigated using slow strain rate (5.0 × 10−4s−1) elevated temperature tensile and constant load creep testing at 150°C and 50 MPa. The alloy with 0.4 wt% Sb showed a higher elevated temperature tensile strength and creep resistance due to the formation of thermal stable Mg3Sb2 precipitates and a smaller microstructure as well as the suppressing of the discontinuous precipitation. Plastic deformation of AZ91 based alloys is determined by motion of dislocation in basal plane and non-basal slip systems. The dislocation motion in a slip system is influenced by temperature, precipitates and other lattice defects. Dislocations jog, grain boundaries and/or precipitates are considered as obstacles for moving dislocations. The


Acta Metallurgica Sinica | 2010

LPSO STRUCTURE AND AGING PHASES IN Mg-Gd-Zn-Zr ALLOY

Zeng Xiao-Qi; Wu Yujuan; Peng Li-Meng; Lin Dongliang; Ding Wenjiang


Acta Metallurgica Sinica | 2010

EFFECT OF COOLING RATE ON THE FORMATION OF 14H–LPSO STRUCTURE IN GWZ1032K ALLOY

Zhang Song; Yuan An-Yin; Ding Wenjiang; Lu Chen

(01\overline 1 2)


无机材料学报 | 2012

添加Co对AB 3.5 型储氢合金结构及性能影响的理论与实验研究

Ying Yan-Jun; Cheng Li-Fang; Zeng Xiaoqin; Zou Jianxin; Ding Wenjiang


Scripta Materialia | 2000

Effects of sb addition on the microstructure and mechanical properties of AZ91 magnesium alloy

Yuan Guangyin; Sun Yangshan; Ding Wenjiang

deformation twinning were founded in the creep process by TEM. Cross slip of dislocations was taken into account as the main softening mechanism for permanent cast AZ91 alloy during elevated temperature deformation process.

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Wu Guohua

Shanghai Jiao Tong University

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Zeng Xiaoqin

Shanghai Jiao Tong University

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Peng Liming

Shanghai Jiao Tong University

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Yuan Guangyin

Shanghai Jiao Tong University

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Wang Qudong

Shanghai Jiao Tong University

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Fu Penghuai

Shanghai Jiao Tong University

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Dong Jie

Northeastern University

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Zhu Yongkui

Shanghai Jiao Tong University

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Jiang Haiyan

Shanghai Jiao Tong University

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Zhai Chunquan

Shanghai Jiao Tong University

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