Andreas Gorbach
Daimler AG
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Publication
Featured researches published by Andreas Gorbach.
International Journal of Engine Research | 2015
Michael Wöhr; Elias Chebli; Markus Müller; Hans Zellbeck; Johannes Leweux; Andreas Gorbach
This article describes the first development phase of a centrifugal compressor with variable geometry which is designed to match the needs of future heavy-duty engines. Requirements of truck engines are analyzed, and their impact on the properties of the compressor map is evaluated in order to identify the most suitable kind of variable geometry. Our approach utilizes the transformation of engine data into pressure ratio and mass flow coordinates that can be displayed and interpreted using compressor maps. One-dimensional and three-dimensional computational fluid dynamics fluid flow calculations are used to identify loss mechanisms and constraints of fixed geometry compressors. Linking engine goals and aerodynamic objectives yields specific recommendations on the implementation of the variable geometry compressor.
Journal of Turbomachinery-transactions of The Asme | 2014
Elias Chebli; Michael Casey; Ricardo Martinez-Botas; Siegfried Sumser; Markus Müller; Stefan Künzel; Johannes Leweux; Andreas Gorbach; Wolfram Schmidt
A variable geometry concept for advanced turbocharger (TC) systems is presented. The variability of the device is based on outlet area changes as opposed to the more common systems that are based on inlet turbine geometry changes. In addition to the conventional variable turbine geometry (VTG), the new variable turbine type is termed variable outlet turbine (VOT). The flow variability is achieved by variation of the flow cross section at the turbine outlet using an axial displacement of a sliding sleeve over the exducer and provides a simple solution for flow variability. In order to predict the aerodynamic performance and to analyze the loss mechanisms of this new turbine, the flow field of the VOT is calculated by means of steady state 3D-CFD (computational fluid dynamics) simulations. The VOT design is optimized by finding a good balance between clearance and outlet losses. Furthermore, experimental results of the VOT are presented and compared to a turbine equipped with a waste gate (WG) that demonstrates an efficiency advantage of 5%. Additionally, engine performance measurements were carried out to investigate the influence of the VOT on fuel consumption and to asses the functionality of the new pneumatic actuating system. The VOT engine tests show also performance advantage in comparison to a WG turbine especially toward high engine loads. It is found that the use of the VOT at this condition shows a turbine efficiency advantage of 6% related to a reduction in engine fuel consumption of 1.4%. The behavior at part load is neutral and the peak turbine efficiency of the VOT is comparable with a fix turbine geometry.
Archive | 2007
Tillmann Braun; Christoph Espey; Andreas Gorbach; Axel Zuschlag
Archive | 2005
Tillmann Braun; Christoph Espey; Andreas Gorbach; Axel Zuschlag
MTZ worldwide | 2013
Elias Chebli; Markus Müller; Johannes Leweux; Andreas Gorbach
Archive | 2007
Tillmann Braun; Andreas Gorbach; Axel Zuschlag
Archive | 2007
Tillmann Braun; Ralf Bruenemann; Andreas Gorbach; Markus Kemmner; Axel Zuschlag
Auto Tech Review | 2013
Elias Chebli; Markus Müller; Johannes Leweux; Andreas Gorbach
Archive | 2007
Tillmann Braun; Christoph Espey; Andreas Gorbach; Axel Zuschlag
Archive | 2007
Tillmann Braun; Christoph Espey; Andreas Gorbach; Axel Zuschlag