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Life Assessment of Large Gas Turbine Blades
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Abstract
Large gas turbine nickel based superalloys blades are typically manufactured using an investment casting process. In spite of superior processing and quality control, large turbine blades may contain manufacturing induced discontinuities such as porosities, segregation, chemical inhomogeneities, particles, etc in few of the manufactured parts. These manufacturing discontinuities can significantly influence the reliable component life if they are under a load condition where they will form a crack. A typical engineering approach is to treat these discontinuities as a crack from the beginning of the part life. This leads to a conservative life prediction, as crack nucleation and influencing geometrical details of the discontinuities are neglected. This paper presents a framework and path forward for a comprehensive life assessment. It includes computer tomography (CT) analysis, metallographic analysis, local stress analysis, crack formation, as well as state of the art fracture mechanics analysis. For instance, CT and destructive tests reveal details of the geometry of a porous region and thereby enabling the calculation of crack formation life. A subsequent fracture mechanics analysis by engineering tool, FRANC3D can then yield a comprehensive life assessment for comparisons to experimental findings and fleet experience. This approach enables Siemens to diligently ensure that comprehensive life predication assessment has been performed for the components for robust and reliable operation.
American Society of Mechanical Engineers
Title: Life Assessment of Large Gas Turbine Blades
Description:
Abstract
Large gas turbine nickel based superalloys blades are typically manufactured using an investment casting process.
In spite of superior processing and quality control, large turbine blades may contain manufacturing induced discontinuities such as porosities, segregation, chemical inhomogeneities, particles, etc in few of the manufactured parts.
These manufacturing discontinuities can significantly influence the reliable component life if they are under a load condition where they will form a crack.
A typical engineering approach is to treat these discontinuities as a crack from the beginning of the part life.
This leads to a conservative life prediction, as crack nucleation and influencing geometrical details of the discontinuities are neglected.
This paper presents a framework and path forward for a comprehensive life assessment.
It includes computer tomography (CT) analysis, metallographic analysis, local stress analysis, crack formation, as well as state of the art fracture mechanics analysis.
For instance, CT and destructive tests reveal details of the geometry of a porous region and thereby enabling the calculation of crack formation life.
A subsequent fracture mechanics analysis by engineering tool, FRANC3D can then yield a comprehensive life assessment for comparisons to experimental findings and fleet experience.
This approach enables Siemens to diligently ensure that comprehensive life predication assessment has been performed for the components for robust and reliable operation.
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