Lipeng Ding
Chongqing University
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Publication
Featured researches published by Lipeng Ding.
Metallurgical and Materials Transactions A-physical Metallurgy and Materials Science | 2017
Zhihong Jia; Lipeng Ding; Lingfei Cao; Robert E. Sanders; Shichen Li; Qing Liu
The natural aging (NA) and artificial aging (AA) behavior of Al-Mg-Si-Cu alloys with different Mg/Si ratios and Cu additions were systematically investigated by means of hardness test, atom probe tomography, transmission electron microscopy, and Monte Carlo simulation. The Si-rich low-Cu alloys displayed higher hardness compared to the Mg-rich equivalents because Si atoms play a dominant role in clustering of solute atoms during both natural and artificial aging. In the high-Cu alloys, Cu did not obviously change the cluster distribution during NA, but significantly refines the clusters and precipitates due to the strong interaction of Cu atoms with Mg atoms during AA. In contrast to the low-Cu alloys, the Mg-rich high-Cu alloys exhibit higher hardness in the early and over-aged stages of artificial aging, with similar or slightly higher hardness in the peak aging condition compared to their Si-rich counterparts. Three types of precipitates (β″, Q′, and L) are favored in the high-Cu alloys. The Mg-rich high-Cu alloy has more L phase, while the Si-rich variant is abundant in Q′ phase. The negative effect of NA on subsequent AA behavior is less dependent on Mg/Si ratio in the high-Cu alloys due to a synergistic action of the residual Si and Cu atoms, but is closely related to Mg/Si ratio in low-Cu alloys.
Transactions of Nonferrous Metals Society of China | 2016
Zhihong Jia; Lipeng Ding; Yaoyao Weng; Zhang Wen; Qing Liu
Abstract The influences of high temperature pre-straining (HT-PS) on the natural aging and bake hardening of Al–Mg–Si alloys were investigated by Vickers microhardness measurements, differential scanning calorimetry (DSC) analysis and transmission electron microscopy (TEM) characterization. The results show that pre-straining at 170 °C immediately after quenching can effectively resolve the rather high T4 temper hardness caused by the conventional room temperature (RT) pre-straining treatment, and give a better bake hardening response (BHR) after paint-bake cycle. HT-PS 7% at 170 °C for 10 min is chosen as the optimum process as it provides lower T4 temper hardness and better BHR. The simultaneous introduction of dislocations and Cluster (2) can significantly suppress the natural aging and promote the precipitation of β″ phase, and reduce the effects of deformation hardening by dynamic recovery.
Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2015
Lipeng Ding; Zhihong Jia; Zhiqing Zhang; Robert E. Sanders; Qing Liu; Guang Yang
Journal of Alloys and Compounds | 2015
Lipeng Ding; Yang He; Zhang Wen; Pizhi Zhao; Zhihong Jia; Qing Liu
Acta Materialia | 2018
Lipeng Ding; Zhihong Jia; Jian Feng Nie; Yaoyao Weng; L.F. Cao; Houwen Chen; Xiaozhi Wu; Qing Liu
Journal of Alloys and Compounds | 2017
Yaoyao Weng; Zhihong Jia; Lipeng Ding; Yanfeng Pan; Yingying Liu; Qing Liu
Journal of Alloys and Compounds | 2016
Lipeng Ding; Zhihong Jia; Yingying Liu; Yaoyao Weng; Qing Liu
Scripta Materialia | 2016
Lipeng Ding; Hai Hu; Zhihong Jia; Yaoyao Weng; Xiaozhi Wu; Qing Liu
Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2016
Lipeng Ding; Yaoyao Weng; Sainan Wu; Robert E. Sanders; Zhihong Jia; Qing Liu
Journal of Alloys and Compounds | 2017
Yang He; Zhihong Jia; Robert E. Sanders; Yingying Liu; Lipeng Ding; Yuan Xing; Qing Liu