Advanced Characterization Techniques for Turbine Blade Wear and Damage

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OriginalspracheEnglisch
Seiten (von - bis)83-88
Seitenumfang6
FachzeitschriftProcedia CIRP
Jahrgang59
PublikationsstatusVeröffentlicht - 2 März 2017
Veranstaltung5th International Conference on Through-life Engineering Services, TESConf 2016 - Cranfield, Großbritannien / Vereinigtes Königreich
Dauer: 1 Nov. 20162 Nov. 2016

Abstract

This paper presents four complementary non-destructive measurement techniques for material characterization and damage detection of turbine blades. The techniques are macroscopic fringe projection with inverse fringe projection algorithms, robot guided microscale fringe projection, high frequency eddy current and pulsed high frequency induction thermography, both in the megahertz range. The specimen on which the measurements were carried out is a blade of the 1st stage high pressure turbine of a modern airplane jet engine. The turbine blade was characterized with regard to the macroscopic and microscopic geometry, cracks in the base material as well as the condition of the protective layer system.

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Advanced Characterization Techniques for Turbine Blade Wear and Damage. / Schlobohm, Jochen; Bruchwald, Oliver; Frackowiak, Wojciech et al.
in: Procedia CIRP, Jahrgang 59, 02.03.2017, S. 83-88.

Publikation: Beitrag in FachzeitschriftKonferenzaufsatz in FachzeitschriftForschungPeer-Review

Schlobohm, J, Bruchwald, O, Frackowiak, W, Li, Y, Kästner, M, Pösch, A, Reimche, W, Maier, HJ & Reithmeier, E 2017, 'Advanced Characterization Techniques for Turbine Blade Wear and Damage', Procedia CIRP, Jg. 59, S. 83-88. https://doi.org/10.1016/j.procir.2016.09.005
Schlobohm, J., Bruchwald, O., Frackowiak, W., Li, Y., Kästner, M., Pösch, A., Reimche, W., Maier, H. J., & Reithmeier, E. (2017). Advanced Characterization Techniques for Turbine Blade Wear and Damage. Procedia CIRP, 59, 83-88. https://doi.org/10.1016/j.procir.2016.09.005
Schlobohm J, Bruchwald O, Frackowiak W, Li Y, Kästner M, Pösch A et al. Advanced Characterization Techniques for Turbine Blade Wear and Damage. Procedia CIRP. 2017 Mär 2;59:83-88. doi: 10.1016/j.procir.2016.09.005
Schlobohm, Jochen ; Bruchwald, Oliver ; Frackowiak, Wojciech et al. / Advanced Characterization Techniques for Turbine Blade Wear and Damage. in: Procedia CIRP. 2017 ; Jahrgang 59. S. 83-88.
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AU - Schlobohm, Jochen

AU - Bruchwald, Oliver

AU - Frackowiak, Wojciech

AU - Li, Yinan

AU - Kästner, Markus

AU - Pösch, Andreas

AU - Reimche, Wilfried

AU - Maier, Hans Jürgen

AU - Reithmeier, Eduard

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N2 - This paper presents four complementary non-destructive measurement techniques for material characterization and damage detection of turbine blades. The techniques are macroscopic fringe projection with inverse fringe projection algorithms, robot guided microscale fringe projection, high frequency eddy current and pulsed high frequency induction thermography, both in the megahertz range. The specimen on which the measurements were carried out is a blade of the 1st stage high pressure turbine of a modern airplane jet engine. The turbine blade was characterized with regard to the macroscopic and microscopic geometry, cracks in the base material as well as the condition of the protective layer system.

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KW - Fringe projection

KW - high-frequency eddy current testing

KW - thermography

KW - turbine blade

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DO - 10.1016/j.procir.2016.09.005

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JO - Procedia CIRP

JF - Procedia CIRP

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