Development of a New Low-Cost Tandem Variable Geometry Turbocharging Concept for Turbocharger Applications

Author:

Erdmenger Rodrigo R.1,Menter Katya2,Giepman Rogier1,Clancy Cathal3,Vadvadgi Aneesh4,Lavertu Tom5,Leonard Thomas6,Spence Stephen7

Affiliation:

1. GE Global Research, Munich 85748, Germany e-mail:

2. GE Global Research, Munich 83627, Germany e-mail:

3. GE Global Research, Munich SN16 9FX, Germany e-mail:

4. GE Global Research, Bangalore 560066, India e-mail:

5. GE Global Research, Niskayuna, NY 12309-1027 e-mail:

6. School of Mechanical and Aerospace Engineering, Clean Energies Research Centre in Sustainable Energy, Queens University of Belfast, Belfast 69126, UK e-mail:

7. School of Mechanical and Aerospace Engineering, Clean Energies Research Centre in Sustainable Energy,, Queens University of Belfast (QUB), Belfast BT9 5AH, UK e-mail:

Abstract

The air handling system for large diesel/gas engines such as those used on locomotive, marine, and power generation applications require turbochargers with a high reliability and with turbomachinery capable to adjust to different operating conditions and transient requirements. The usage of variable geometry turbocharging (VGT) provides flexibility to the air handling system but adds complexity, cost and reduces the reliability of the turbocharger in exchange for improved engine performance and transient response. For this reason, it was desirable to explore designs that could provide the variability required by the air handling system, without the efficiency penalty of a conventional waste gate and with as little added complexity as possible. The current work describes a new low-cost variable geometry turbine design to address these requirements. The new tandem nozzle concept proposed is applicable to both axial and radial turbines and has been designed using conventional one-dimensional models and two- three-dimensional computational fluid dynamics (CFD) methods. The concept has furthermore been validated experimentally on two different test rigs. In order to avoid the long lead times of procuring castings, the nozzle for the axial turbine was manufactured using new additive manufacturing techniques. Both the axial turbine and the radial turbine designs showed that the concept is capable to achieve a mass flow variability of more than 15% and provide a robust and cost-effective alternative to conventional VGT designs by significantly reducing the number of moveable parts.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

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