Title of article :
Surface nanodeformations caused by ultrashort laser pulse
Author/Authors :
Inogamov، نويسنده , , N.A. and Zhakhovsky، نويسنده , , V.V. and Ashitkov، نويسنده , , S.I. and Emirov، نويسنده , , Yu.N. and Faenov، نويسنده , , L.Ya. and Petrov، نويسنده , , Yu.V. and Khokhlov، نويسنده , , V.A. and Ishino، نويسنده , , M. and Demaske، نويسنده , , B.J. and Tanaka، نويسنده , , M. and Hasegawa، نويسنده , , N. and Nishikino، نويسنده , , M. and Tamotsu، نويسنده , , S. and Pikuz، نويسنده , , T.A. and Skobelev، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2015
Pages :
10
From page :
328
To page :
337
Abstract :
Ultrashort laser pulse is a unique nanometallurgical tool which operates at extreme conditions: ultimate strength of material, the smallest spatiotemporal scales, and nonequlibrium crystallization. Approaches to ultimate strength and to highly nonequlibrium crystallization are tightly coupled with the smallness of spatiotemporal scales. Usage of the tool opens new opportunities to create materials with enhanced surface hardness, anticorrosion properties, and diverted optical constants. To use these advantages we have first of all to develop clear and reliable physical model. The paper presents new results concerning interactions of optical or X-ray lasers with metals. It is shown that ultrashort laser pulse melts surface layer, sends shock into bulk, and foams molten metal. Dense dislocation bilayer is created thanks to fast recrystallization (the first sublayer) and plastic transformations behind strong shock (the second sublayer). Plastic shock generated at moderate laser intensities attenuates sharply during its propagation into metal. During this attenuation, a plastic shock regenerates into a powerful elastic shock. This process defines boundary between the second dislocation sublayer and undamaged solid. Mechanical breaking of foam after its strong stretching and fly away of a part of melt together with fast freezing are responsible for appearance of chaotic frozen nanostructures at an irradiated surface.
Keywords :
Nanometallurgy with ultrafast lasers , Mechanical action of X-ray and optical short pulse lasers , Laser nanospallation and nanostructuring
Journal title :
Engineering Failure Analysis
Serial Year :
2015
Journal title :
Engineering Failure Analysis
Record number :
2340509
Link To Document :
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