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Crack Repair of Single Crystal Turbine Blades Using Laser Cladding Technology
Author(s) -
Boris Rottwinkel,
Christian Nölke,
Stefan Kaierle,
Volker Wesling
Publication year - 2014
Publication title -
procedia cirp
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.683
H-Index - 65
ISSN - 2212-8271
DOI - 10.1016/j.procir.2014.06.151
Subject(s) - materials science , cladding (metalworking) , turbine blade , temperature gradient , microstructure , single crystal , laser , thermal , composite material , mechanical engineering , turbine , structural engineering , metallurgy , optics , engineering , crystallography , chemistry , physics , quantum mechanics , meteorology
The formation of cracks in single crystal (SX) turbine blades is a common problem for aero-engines. To repair cracks, which are located under the tip-area, a new method is to clad with single-crystal-technology. This technology use multi-layer cladding to replace the single crystal material. To regenerate cracked material it is necessary to remove the crack affected material. The used notch geometries to remove the crack-affected area must be weldable and also permit the material solidification in the same oriented plane as the original microstructure. To solidify in the original structure a thermal gradient has to be introduced in order to guide the grain growth. This required gradient can be established by inductive heating. To reduce the thermal effected zone, a laser source is used. In addition, it is also an efficient process to fill the notch. Also the small local heat input and controlled material supply support the epitaxial growth. However, there are requirements to achieve a SX structure without cracks and pores. Current achievements and further challenges are presented in this paper

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