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Acta Metallurgica Sinica | 2013

DISLOCATION MECHANISM OF SURFACE MODIFICATION FOR COMMERCIAL PURITY ALUMINUM AND ALUMINUM ALLOY BY LASER SHOCK PROCESSING

Luo Xinmin; Chen Kangmin; Zhang Jingwen; Lu Jinzhong; Ren Xudong; Luo Kaiyu; Zhang Yongkang

Surface modification experiment of the commercial purity aluminum(α-Al) and AlCu -Mg alloyed aviation aluminum alloy 2A02 by laser shock processing(LSP) was implemented.The surface strengthening effect of both the target materials was investigated from dislocation mechanisms of microstructural response by means of TEM method.The results show that the strengthening effect of the two kinds of materials by laser shock processed is significantly different.The strengthening mechanism of a-Al by laser shock can be attributed to the multiplication of a large number of dislocations. With the increase of the impact number of laser shock and the degree of deformation,the new-generated dislocations will pile up and interact with the forest dislocations,and the dislocation lines will gradually evolve into waved-like,or wind into dislocation tangles and dislocation networks. But the hardness curve of the laser shocked(α-Al) will fast and linearly decline due to Bauschinger effect(BE) and stress wave damping.The laser shock strengthening mechanisms of the aging-hardened aluminum alloy 2A02 can be summarized to the enhancement of the matching between the elastic energy of dislocations with the ultra-high energy of laser shock processing due to the higher matrix strength and the dislocation-pinning effect of large number of dispersed precipitates,as well as the complex dislocation networks in between the precipitates constructed by the dislocations induced by laser shock. The matrix strengthened by laser shock processing and the precipitates keep the extra-semi-coherent relationship to coordinate the total deformation,with the number of laser shock increase,dislocation multiplication and the vacancy motion constitutes geometrically necessary boundaries(GNBs),which consists of the sub-grain boundaries to refine the matrix into the nanometer-grains.The strengthening mechanism of surface modification of aluminum alloy by laser shock processing is formed of the internal stress state caused by the combination of the complex dislocation configurations and the Hall-Petch effect of the nanocrystalline grains.


Frontiers in Mechanical Engineering | 2007

Effects on mechanical properties in electron beam welding of TC4 alloy by laser shock processing

Lu Jinzhong; Zhang Yongkang; Kong De-Jun; Ren Xudong; Ge Tao

The surface of TC4 titanium alloy welding line by electron beam welding (EBW) was processed by high power Q-switched and repetition-rate Nd: glass laser. Effects of laser power and spot diameter on residual stress and microhardness of the TC4 alloy welding line by laser shock processing (LSP) have been analyzed. Results show that residual stresses almost do not change as laser power is 45.9 J, spot diameter is ϕ9 mm; While laser power is 45.9 J, spot diameter less than ϕ3 mm, the distribution of residual stress in welding line occurs obvious variation, which residual stress increase obviously with spot diameter decrease. When power density is bigger than 1.8 × 1010 W/cm2, residual stresses of electron beam welding line occur change by LSP, which improve obviously residual stress distribution; while laser power is bigger than 1.2 × 1010 W/cm2, the surface micro-hardness of electron beam welding line occurs change by LSP, which improve obviously micro-hardness distribution. Mechanical properties of TC4 titanium alloy welding line will be improved by LSP, which provides experimental foundation for further controlling the distributions of residual stress and micro-hardness during laser shock processing.


Acta Metallurgica Sinica | 2015

SURFACE LAYER HIGH-ENTROPY STRUCTURE AND ANTI-CORROSION PERFORMANCE OF AERO-ALUMINUM ALLOY INDUCED BY LASER SHOCK PROCESSING

Luo Xinmin; Wang Xiang; Chen Kangmin; Lu Jinzhong; Wang Lan; Zhang Yongkang

7075 aluminum alloy is an ultra-high strength alloy containing Al, Zn, Mg, Cu and Cr elements,and is widely used in the aviation industry, but it has severe intergranular corrosion characteristics. The high-entropy alloys are composed of more than five major metallic elements and possess excellent corrosion resistance.When laser shock, featuring ultra high energy as well as the thermodynamic and kinetic loading characteristics farfrom-equilibrium states, acts on the surface of alloys with multiple elements, high-entropy alloy surface layer with specific properties may be obtained. In this work, surface modification of 7075-T76 aluminum alloy by laser shock was investigated. The microstructure, formation cause of the amorphous/nano- crystalline composite high- entropy alloy surface layer obtained by laser shock, hardness and corrosion resistance of the laser were analyzed by means of SEM and TEM. The results show that the adiabatic shear thermal effect induced by super high energy, ultra-fast process of laser shock causes surface alloy system to occur entropy increase effect and partitioning. The high mixing entropy contributes to the randomization increase of the alloy system. Thus, the elements in the system spontaneously self- organize in accordance with the law of Boltzmann. The dynamical formation of the nano- crystalline grains coordinates the thermodynamic equilibrium during the process. The strain- hardened layer is composed of amorphous microstructure and nanocrystalline grains, and the total depth of it reaches up to about 100 μm. After 1time laser shock,the depth of the surface high entropy layer is about 20 μm, of which the diameter of the nanocrystalline grains is 6~8 nm. After 3 times laser shock, the thickness of the layer can increase to more than 40 μm, and the diameter of the nanocrystalline grains is 2~3 nm. Meanwhile, the intense ultra high strain-rate induced by the laser shock makes precipitates deform, producing parallelly distribution of deformation twins in order to balance the laser energy. After repeated laser shocks, the hardness of the amorphous/nanocrystalline layer gradually closes to that of the matrix of the alloy because of the disappearing of the support of grain boundaries to the strength, the dislocation strengthening effect in nano-crystalline grains, and the coherent relationship between precipitates and matrix. Due to that the amorphous microstructure can prevent galvanic effect around precipitates, and nano-crystalline has good chemical stability, the nano-crystalline/amorphous composite high-entropy layer on surface of 7075-T76 aluminum alloy induced by laser shock can significantly improve the corrosion resistance, and effectively block the intergranular corrosion of the alloy.


Archive | 2013

Method and device for remanufacturing sheet metal welding piece by utilizing laser

Luo Kaiyu; Lu Jinzhong; Yin Jinsong; Luo Mi; Zhang Lei; Qi Han; Chen Yanlong; Liu Juan


Archive | 2013

Method and device for laser shock forming on the basis of polyurethane rubber film

Yang Chaojun; Ye Zhen; Lu Jinzhong; Zhang Yongkang; Feng Aixin; Zhou Jianzhong


Archive | 2014

Laser welding method for metal sheets applied to ultra low temperature environment

Yin Jinsong; Lu Jinzhong; Luo Kaiyu; Zhong Jinshan; Luo Mi; Chen Yanlong


Archive | 2013

Combination method and apparatus for laser shock processing of engine blade

Gong Shuili; Zhang Yongkang; Dai Fengze; Zou Shikun; Lu Jinzhong


Archive | 2013

Laser shock method

Yin Jinsong; Zhang Lei; Lu Jinzhong; Dai Fengze; Zhang Yongkang; Zhang Jianhong


Archive | 2015

Manufacturing method and device for fibre laser and electrochemical complex nanosecond pulse deposition

Zhang Chaoyang; Lu Jinzhong; Li Zhongyang; Ren Xudong; Mao Weiping; Ge Tao


Archive | 2015

High efficiency apparatus and method based on laser shock wave for manufacturing micro grooves

Dai Fengze; Lu Jinzhong; Zhang Yongkang; Zhang Lei; Wang Qingwei; Ren Xudong

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