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Dive into the research topics where Stephan Klumpp is active.

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Featured researches published by Stephan Klumpp.


ASME Turbo Expo 2013: Turbine Technical Conference and Exposition | 2013

A New Inlet Distortion and Pressure Loss Based Design of an Intake System for Stationary Gas Turbines

Jose L. Rodriguez; Stephan Klumpp; Thomas Biesinger; James O’Brien; Tobias Danninger

This paper presents a new design for a Compressor Inlet Manifold (CIM) for a land-based power generation Gas Turbine (turbine). The CIM is the component of the Inlet System (IS) that is directly connected to the turbine via the Compressor Inlet Case (CIC). The design philosophy is to use low fidelity but fast and automated CFD (Computational Fluid Dynamics) for design iterations and then confirm the design with detailed higher accuracy CFD before proceeding to engine tests. New design features include contouring the wall to minimize areas of flow separation and associated unsteadiness and losses, and improvement of the flow quality into the compressor.The CIM in a land-based turbine acts as a nozzle whereas the inlet of an aircraft acts as a diffuser. The flow also enters the CIM at 90 deg to the engine axis. This leads to a pair of counter rotating vortices at the compressor inlet. Three main sources of flow distortions at the face of the compressor are identified: flow separations at outer walls of the IS and CIM struts and the counter rotating vortices. The higher accuracy CFD analysis including the complete IS, CIM and the first compressor stage, simulates the effect of these distortions on the compressor front stage at design conditions. A range of inlet distortion parameters are used to evaluate the inlet design. The well known DC60 based criterion derived from aircraft engines and other less known but published parameters are able to give an indication of how the compressor surge margin of stationary gas turbines is affected.Copyright


Archive | 2015

Compressor for a gas turbine, comprising internal temperature compensation

Stefan Braun; Christopher Butzeck; Matthias Chlebowski; Kevin Kampka; Matthias Kleinenhammann; Stephan Klumpp; Christian Kowalzik; Markus Kunze; Dirk Müller; Peter Schröder; Michael Wagner; Ulrich Waltke; Klaus Werner


Archive | 2015

Design of an axial diffuser taking built-in components into account

Christian Cornelius; Jacob William Hardes; Stephan Klumpp


Archive | 2014

Conception d'un diffuseur axial prenant en compte des éléments intégrés

Christian Cornelius; Jacob William Hardes; Stephan Klumpp


Archive | 2014

Compressor for a gas turbine with internal temperature equalization

Stefan Braun; Christopher Butzeck; Matthias Chlebowski; Kevin Kampka; Matthias Kleinenhammann; Stephan Klumpp; Christian Kowalzik; Markus Kunze; Dirk Müller; Peter Schröder; Michael Wagner; Ulrich Waltke; Klaus Werner


Archive | 2014

Method for controlling a gas mass stream, flow duct and turbomachine with flow duct

Francois Benkler; Stefan Braun; Stephan Klumpp


Archive | 2013

Gas turbine and method for cooling it

Francois Benkler; Stefan Braun; Christopher Butzeck; Stephan Klumpp; Achim Schirrmacher; Ulrich Waltke


Archive | 2012

INTERNALLY COOLABLE COMPONENT FOR A GAS TURBINE WITH AT LEAST ONE COOLING DUCT

Marcel Eifel; Daniel Gloss; Andreas Heselhaus; Stephan Klumpp; Marco Link; Uwe Sieber; Stefan Völker; Michael Wagner


Archive | 2012

Cooling rib system for a cooling passage of a turbine blade

Marcel Eifel; Daniel Gloss; Andreas Heselhaus; Stephan Klumpp; Marco Link; Uwe Sieber; Stefan Völker; Michael Wagner


Archive | 2011

Internally cooled component for a gas turbine with at least one cooling channel

Marcel Eifel; Daniel Gloss; Andreas Heselhaus; Stephan Klumpp; Marco Link; Uwe Sieber; Stefan Völker; Michael Wagner

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