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Featured researches published by Liang Ruan.


Advanced Materials Research | 2011

Effects of Laser Multiple Processing on Properties of Heat-Resistant Steel

Liang Ruan; X.D. Ren; Yong Zhuo Huangfu; Yong Kang Zhang

The heat-resistant steel after aluminized was treated by laser shock processing (LSP) with high power Nd:YAG laser, and then was tensile tested at 400°C. The effects of the high-temperature behavior after LSP were analyzed from residual stress and fracture organization. The results showed that the yield strength and tensile strength of heat-resistant steel after aluminized were improved obviously during the tensile testing at high temperature, and the High-temperature fatigue life of 00Cr12 with composite processing was enhanced vastly. Compared with the LSP, the High-temperature fatigue life of 00Cr12 heat-resistant steel by aluminizing and LSP had a larger increase.


Advanced Materials Research | 2011

Effects of Laser Shock Processing on Fatigue Lives of Heat-Resistant Steel and Estimation of Fatigue Safe Lives

Yong Zhuo Huangfu; X.D. Ren; Liang Ruan; Yong Kang Zhang; Da Wei Jiang

Fatigue tensile treatment was performed on 00Cr12 heat-resistant steel specimens which had been treated by laser shock processing (LSP). The unilateral tolerance factor statistical analysis method and the two-dimensional Weibull distribution method were used to predict the values of fatigue safe lives of the specimens respectively. The results indicate that the fatigue lives of 00Cr12 specimens were enhanced greatly after LSP, and improved by 62% compared with the specimens which were not treated by LSP. The unilateral tolerance factor method obtained an exact estimation value of the fatigue safe life; while the two-dimensional Weibull distribution method can get a range of values of fatigue safe lives, the fatigue safe lives of the specimens which after LSP were a range from 116570 to 150230, the average value was 132330. The two-dimensional Weibull distribution method has more engineering applicability and can be used to estimate the fatigue safe lives with fewer experiments.


Materials & Design | 2013

The effects of residual stress on fatigue behavior and crack propagation from laser shock processing-worked hole

Xudong Ren; Q.B. Zhan; H.M. Yang; Fengze Dai; C.Y. Cui; Guifang Sun; Liang Ruan


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2011

Effect of laser shock processing on the fatigue crack initiation and propagation of 7050-T7451 aluminum alloy

Xudong Ren; Yongkang Zhang; H.F. Yongzhuo; Liang Ruan; Da Wei Jiang; Tao Zhang; Kangmin Chen


Surface & Coatings Technology | 2013

Metallographic structure evolution of 6061-T651 aluminum alloy processed by laser shock peening: Effect of tempering at the elevated temperatures

Xudong Ren; Liang Ruan; S.Q. Yuan; H.M. Yang; Q.B. Zhan; L.M. Zheng; Y. Wang; Fengze Dai


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2013

Dislocation polymorphism transformation of 6061-T651 aluminum alloy processed by laser shock processing: Effect of tempering at the elevated temperatures

Xudong Ren; Liang Ruan; S.Q. Yuan; Naifei Ren; L.M. Zheng; Q.B. Zhan; J.Z. Zhou; H.M. Yang; Y. Wang; F.Z. Dai


Archive | 2012

Laser thermomechanical effect strengthening method and laser thermomechanical effect strengthening system for automotive LED (light-emitting diode) headlight molds

Xudong Ren; Liang Ruan; Yongzhuo Huangfu; Yongkang Zhang; H.M. Yang; Q.B. Zhan; J.Z. Zhou; Guifang Sun; Fengze Dai


Archive | 2011

Method and apparatus for laser to induce plasma to inject into substrate

Xudong Ren; Yinghong Li; Yongzhuo Huangfu; Cheng Wang; Liang Ruan; Weifeng He; Xin Zhou; Wei Chu; Yongkang Zhang; Fengze Dai; Tian Zhang


Archive | 2011

Method for changing material surface nano property

Xudong Ren; Yongzhuo Huangfu; Yongkang Zhang; Yijun Zhou; Liang Ruan; Dawei Jiang; Tian Zhang


Archive | 2011

Method and device for inducing nanocrystallization of metal surface through shock wave-accelerated nano particles

Xudong Ren; Yinghong Li; Liang Ruan; Cheng Wang; Wei Chu; Weifeng He; Xin Zhou; Yongzhuo Huangfu; Yongkang Zhang; Fengze Dai; Tian Zhang

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